zsh/ported/exec.rs
1//! Faithful Rust ports of free functions and file-static globals from
2//! `Src/exec.c`. The wordcode-VM dispatch tree (`execlist` / `execpline`
3//! / `execcmd` / `execsimple` etc.) that drives execution in C zsh is
4//! NOT replicated here — zshrs runs the fusevm bytecode VM instead
5//! (see `src/vm_helper.rs` + `src/fusevm_bridge.rs`).
6//!
7//! What lives here are the parts of `Src/exec.c` that ARE faithful
8//! ports and don't depend on the C-side wordcode walker:
9//!
10//! - **`trap_state` / `trap_return` / `forklevel`** — file-static
11//! integer globals from `Src/exec.c:134 / :155 / :1052`, exposed as
12//! atomics shared between this module, `Src/signals.c`'s port at
13//! `src/ported/signals.rs`, and `Src/params.c`'s port at
14//! `src/ported/params.rs`.
15//! - **`gethere`** (`Src/exec.c:4573`) — turn a here-document into a
16//! here-string. Called from the lexer port (`src/ported/lex.rs`).
17//! - **`getoutput`** (`Src/exec.c:4712`) — command-substitution body
18//! runner. Called from the parameter-expansion port
19//! (`src/ported/subst.rs`).
20//! - **`loadautofn`** + **`getfpfunc`** (`Src/exec.c:5050` / `:5260`)
21//! — `$fpath` walker + autoload file installer. Called from
22//! `bin_autoload` / `bin_functions -c` in `src/ported/builtin.rs`.
23//! - **`resolvebuiltin`** (`Src/exec.c:2703`) — module-autoload guard
24//! used by the dispatch walk in `execcmd_exec`.
25//! - **`execcmd_compile_head`** — fusevm-bytecode-time head resolver
26//! mirroring the head section (`c:2904-3275`) of C's `execcmd_exec`.
27//! NOT a faithful port; the canonical 7-arg `execcmd_exec` port lives
28//! alongside it.
29//! - **`execcmd_exec`** (`Src/exec.c:2900`) — canonical 7-arg port of
30//! the C function (locals + dispatch walk through builtin/shfunc/external
31//! invocation). Used by future tree-walker callers; the fusevm
32//! bytecode flow goes through `execcmd_compile_head` instead.
33
34use std::os::unix::fs::PermissionsExt;
35use std::sync::atomic::Ordering;
36
37// `with_executor` import removed — all ShellExecutor reach-in calls
38// routed through `crate::ported::exec::*` fn-ptrs installed by
39// fusevm_bridge at startup. See memory feedback_no_exec_script_from_ported.
40use crate::ported::builtin::{cd_able_vars, fixdir, BUILTINS, DOPRINTDIR, EXIT_VAL, LASTVAL};
41use crate::ported::builtins::rlimits::setlimits;
42use crate::ported::builtins::sched::zleactive;
43use crate::ported::compat::zgettime_monotonic_if_available;
44use crate::ported::config_h::DEFAULT_PATH;
45use crate::ported::context::{zcontext_restore, zcontext_save};
46use crate::ported::hashtable::{
47 cmdnam_unhashed, cmdnamtab_lock, dircache_set, hashdir, pathchecked, shfunctab_lock,
48};
49use crate::ported::hist::{strinbeg, strinend};
50use crate::ported::init::{shout, underscorelen, underscoreused, zunderscore, SHTTY};
51use crate::ported::input::{inpop, inpush};
52use crate::ported::jobs::{expandjobtab, get_usage, release_pgrp, waitforpid, JOBTAB, THISJOB};
53use crate::ported::lex::{
54 hgetc, parsestr, tok, untokenize, ztokens, LEXERR, LEX_LEXSTOP, LEX_LINENO,
55};
56use crate::ported::mem::{dupstring, dyncat, popheap, pushheap};
57use crate::ported::modules::clone::mypgrp;
58use crate::ported::options::{dosetopt, opt_state_set, sticky};
59use crate::ported::params::{
60 endparamscope, getsparam, locallevel, paramtab, setiparam, zgetenv, zputenv,
61};
62use crate::ported::parse::{closedumps, ecrawstr, parse_list};
63use crate::ported::prompt::{cmdpop, cmdpush};
64use crate::ported::signals::{
65 intrap, queue_signals, settrap, signal_mask, signal_unblock, sigtrapped, trapisfunc,
66 traplocallevel, unqueue_signals, unsettrap,
67};
68use crate::ported::signals_h::{
69 child_block, child_unblock, dont_queue_signals, signal_default, signal_ignore, winch_unblock,
70 SIGCOUNT,
71};
72use crate::ported::subst::{quotesubst, singsub};
73use crate::ported::utils::{
74 errflag, fdtable_get, fdtable_set, gettempfile, gettempname, inc_locallevel, movefd, pathprog,
75 printprompt4, quotedzputs, redup, unmeta, unmetafy, write_loop, zclose, zerr, zwarn,
76 ERRFLAG_ERROR, MAX_ZSH_FD,
77};
78use crate::ported::zsh_h::{
79 builtin, cmdnam, emulation_options, eprog, execstack, funcwrap, hashnode, isset, jobfile,
80 multio, redir, shfunc, unset, wc_code, Emulation_options, Inang, Inpar, Meta, Nularg, Outpar,
81 Pound, BINF_BUILTIN, BINF_CLEARENV, BINF_COMMAND, BINF_DASH, BINF_EXEC, BINF_PREFIX, CHASEDOTS,
82 CHASELINKS, CLOBBER, CLOBBEREMPTY, CS_CMDSUBST, ERRFLAG_INT, FDT_EXTERNAL, FDT_INTERNAL,
83 FDT_PROC_SUBST, FDT_SAVED_MASK, FDT_TYPE_MASK, FDT_UNUSED, FDT_XTRACE, HASHDIRS, INP_LINENO,
84 INTERACTIVE, IS_CLOBBER_REDIR, IS_DASH, JOBTEXTSIZE, MAX_PIPESTATS, MONITOR, MULTIOS,
85 MULTIOUNIT, PATHDIRS, PM_LOADDIR, PM_READONLY, PM_UNDEFINED, POSIXBUILTINS, POSIXJOBS,
86 POSIXTRAPS, REDIRF_FROM_HEREDOC, REDIR_CLOSE, REDIR_HEREDOCDASH, REDIR_HERESTR, REDIR_INPIPE,
87 REDIR_OUTPIPE, USEZLE, VERBOSE, WC_LIST, WC_LIST_TYPE, WC_PIPE, WC_PIPE_END, WC_PIPE_TYPE,
88 WC_REDIR, WC_REDIR_TYPE, WC_REDIR_VARID, WC_SIMPLE, WC_SIMPLE_ARGC, WC_SUBLIST, WC_SUBLIST_END,
89 WC_SUBLIST_FLAGS, WC_SUBLIST_TYPE, WC_TYPESET, ZSIG_FUNC, ZSIG_IGNORED, Z_END,
90};
91use crate::ported::zsh_system_h::timespec as ZshTimespec;
92use crate::ported::ztype_h::{inull, itok};
93use crate::zsh_h::XTRACE;
94
95/// Port of the anonymous `enum { ... }` from `Src/exec.c:35-40`.
96/// Flag bits passed as the `addflags` argument to `addvars` /
97/// `addvarsfromargs`:
98/// - `ADDVAR_EXPORT` (1<<0) — export each assignment for the
99/// command `VAR=val cmd ...` form.
100/// - `ADDVAR_RESTORE` (1<<2) — the variable list is being restored
101/// later (implicit local scope), so
102/// suppress `ASSPM_WARN`.
103pub const ADDVAR_EXPORT: i32 = 1 << 0; // c:37 (Src/exec.c)
104/// `ADDVAR_RESTORE` constant.
105pub const ADDVAR_RESTORE: i32 = 1 << 2; // c:39 (Src/exec.c)
106
107/// Port of `int trap_state;` from `Src/exec.c:134`. Tracks whether
108/// a trap handler is currently being processed and, paired with
109/// `TRAP_RETURN` below, whether a `return` inside the trap should
110/// promote to `TRAP_STATE_FORCE_RETURN` to unwind the trap caller.
111///
112/// Values: `TRAP_STATE_INACTIVE = 0`, `TRAP_STATE_PRIMED = 1`,
113/// `TRAP_STATE_FORCE_RETURN = 2` (see `Src/zsh.h`).
114pub static TRAP_STATE: std::sync::atomic::AtomicI32 = // c:134 (Src/exec.c)
115 std::sync::atomic::AtomicI32::new(0);
116
117/// Port of `int trap_return;` from `Src/exec.c:155`. Carries the
118/// pending exit status from inside a trap; sentinel `-2` means
119/// "running an EXIT/DEBUG-style trap at the current level"
120/// (signals.c:1166). Promoted to the user's `return N` value by
121/// `bin_return` when POSIX-trap semantics apply (builtin.c:5852).
122pub static TRAP_RETURN: std::sync::atomic::AtomicI32 = // c:155 (Src/exec.c)
123 std::sync::atomic::AtomicI32::new(0);
124
125/// Port of `int forklevel;` from `Src/exec.c:1052`. Records the
126/// `locallevel` at the most recent fork point (set at c:1221:
127/// `forklevel = locallevel;` inside `entersubsh()`). Used by:
128/// - `signals.c:808` SIGPIPE handler — `!forklevel` distinguishes
129/// the top-level shell from a forked subshell.
130/// - `exec.c:6146` — `if (locallevel > forklevel)` decides whether
131/// a function-defined trap should fire on this subshell exit.
132/// - `params.c:3724` — WARNCREATEGLOBAL nest-depth check.
133///
134/// Initialised to 0 (no fork has occurred yet). Set to `locallevel`
135/// at every `entersubsh()` entry per c:1221.
136pub static FORKLEVEL: std::sync::atomic::AtomicI32 = // c:1052 (Src/exec.c)
137 std::sync::atomic::AtomicI32::new(0);
138
139// =============================================================================
140// File-static globals from Src/exec.c. Bucket choices per PORT_PLAN.md:
141// - Per-evaluator transient state → thread_local Cell (bucket 1)
142// - Shell-wide shared state → AtomicI32 / Mutex (bucket 2)
143// All names match C exactly. Surrounding doc-comments cite the C
144// declaration line.
145// =============================================================================
146
147/// Port of `int noerrexit;` from `Src/exec.c:72`. Bit-flags that
148/// suppress ERREXIT triggering on the next command(s). Bits:
149/// `NOERREXIT_EXIT` (in `if`/`while`/`until` test contexts),
150/// `NOERREXIT_RETURN` (after `return`), `NOERREXIT_UNTIL_EXEC`
151/// (until next exec'd command). Bucket-1 — per-evaluator (each
152/// recursive eval has its own suppression frame).
153pub static noerrexit: std::sync::atomic::AtomicI32 = // c:72 (Src/exec.c)
154 std::sync::atomic::AtomicI32::new(0);
155
156/// Port of `int this_noerrexit;` from `Src/exec.c:109`. When set,
157/// suppress ERREXIT for THIS one command only (consumed + cleared
158/// before the next command starts). Set by `execcursh` and the
159/// `((expr))` arith path so a 0-result doesn't trigger errexit.
160pub static this_noerrexit: std::sync::atomic::AtomicI32 = // c:109 (Src/exec.c)
161 std::sync::atomic::AtomicI32::new(0);
162
163/// Port of `mod_export int noerrs;` from `Src/exec.c:117`. When
164/// non-zero, suppress `zerr()` output (lex error reporting during
165/// `parse_string`, `parseopts` etc.). Saved/restored by
166/// `execsave`/`execrestore`.
167/// Port of `static char list_pipe_text[JOBTEXTSIZE]` from
168/// `Src/exec.c:463`. Holds the textual rendering of the in-flight
169/// pipe list; saved across nested execlist invocations at
170/// exec.c:1372-1380 (zeroed on entry, restored from
171/// `old_list_pipe_text` at c:1634-1638) and round-tripped through
172/// execsave/execrestore (c:6448 / c:6484). zshrs models it as a
173/// length-bounded String guarded by a Mutex — the C `char[80]` cap
174/// is a buffer-overflow guard, but matching length matters for the
175/// `jobs` builtin's pipe-list rendering.
176pub static LIST_PIPE_TEXT: std::sync::Mutex<String> = std::sync::Mutex::new(String::new()); // c:463 (Src/exec.c)
177
178pub static noerrs: std::sync::atomic::AtomicI32 = // c:117 (Src/exec.c)
179 std::sync::atomic::AtomicI32::new(0);
180
181/// Port of `int nohistsave;` from `Src/exec.c:122`. When non-zero,
182/// `addhistnode` no-ops so trap firings / `eval` invocations don't
183/// pollute `$HISTCMD`. Tracked alongside `noerrs` in the trap path.
184pub static nohistsave: std::sync::atomic::AtomicI32 = // c:122 (Src/exec.c)
185 std::sync::atomic::AtomicI32::new(0);
186
187/// Port of `int subsh;` from `Src/exec.c:160`. Subshell depth — bumped
188/// every time `entersubsh` forks a sub-shell, used by signal handling
189/// (different SIGINT semantics in subshells) and by `${$$}` (`$$`
190/// stays at the top-level pid).
191pub static subsh: std::sync::atomic::AtomicI32 = // c:160 (Src/exec.c)
192 std::sync::atomic::AtomicI32::new(0);
193
194/// Port of `mod_export int zsh_subshell;` from `Src/init.c:67`. Visible
195/// `$ZSH_SUBSHELL` parameter — incremented by `entersubsh()` each time
196/// the shell forks into a subshell (real or fake-exec). Distinct from
197/// `subsh` which records whether we ARE a subshell; `zsh_subshell` is
198/// the visible depth count.
199pub static zsh_subshell: std::sync::atomic::AtomicI32 = // c:67 (Src/init.c)
200 std::sync::atomic::AtomicI32::new(0);
201
202/// Port of `mod_export volatile int retflag;` from `Src/exec.c:165`.
203/// Set by `bin_return` to unwind the function-call stack. Cleared
204/// by `runshfunc` on entry, checked by `execlist`'s main loop.
205///
206/// Re-export alias of the canonical [`crate::ported::builtin::RETFLAG`] — C
207/// has ONE `retflag` (exec.c:165). All return-flow logic (execlist, the
208/// `return` builtin, signals) uses `RETFLAG`; this lowercase twin was never
209/// stored, so `zpty`/`system` module read-loops that check `exec::retflag`
210/// saw a permanent 0 and never aborted on a pending `return`.
211pub use crate::ported::builtin::RETFLAG as retflag; // c:165 (Src/exec.c)
212
213/// Port of `pid_t cmdoutpid;` from `Src/exec.c:215`. Pid of the most
214/// recent `$(cmd)` command-substitution child. Used by exit-status
215/// propagation: `cmdoutval` carries the exit; `cmdoutpid` carries
216/// the pid `waitpid`-d for it.
217pub static cmdoutpid: std::sync::atomic::AtomicI32 = // c:215 (Src/exec.c)
218 std::sync::atomic::AtomicI32::new(0);
219
220/// Port of `mod_export pid_t procsubstpid;` from `Src/exec.c:220`.
221/// Pid of the most recent process-substitution child (`<(cmd)` /
222/// `>(cmd)`). Tracked separately from `cmdoutpid` because procsubst
223/// jobs aren't wait-collected by the parent until the fd is closed.
224pub static procsubstpid: std::sync::atomic::AtomicI32 = // c:220 (Src/exec.c)
225 std::sync::atomic::AtomicI32::new(0);
226
227/// Port of `int cmdoutval;` from `Src/exec.c:225`. Exit status of
228/// the most recent `$(cmd)`. Drives `$?` when a varspc-only command
229/// runs alongside a substitution.
230pub static cmdoutval: std::sync::atomic::AtomicI32 = // c:225 (Src/exec.c)
231 std::sync::atomic::AtomicI32::new(0);
232
233/// Port of `int use_cmdoutval;` from `Src/exec.c:234`. When set,
234/// `lastval` is updated from `cmdoutval` after the command
235/// (i.e. the command had substitutions whose exit status matters).
236pub static use_cmdoutval: std::sync::atomic::AtomicI32 = // c:234 (Src/exec.c)
237 std::sync::atomic::AtomicI32::new(0);
238
239/// Port of `mod_export int sfcontext;` from `Src/exec.c:239`. Source
240/// context — one of `SFC_NONE`, `SFC_DIRECT` (user typed it),
241/// `SFC_SIGNAL` (trap firing), `SFC_HOOK` (precmd/preexec etc.),
242/// `SFC_WIDGET` (ZLE widget), `SFC_COMPLETE` (completion fn),
243/// `SFC_CFUNC` (compsys fn), `SFC_SUBST` ($(...) cmd-subst),
244/// `SFC_EVAL` (eval body). Read by `zerr()` / `funcstack` building.
245pub static sfcontext: std::sync::atomic::AtomicI32 = // c:239 (Src/exec.c)
246 std::sync::atomic::AtomicI32::new(0);
247
248/// Port of `int list_pipe = 0;` from `Src/exec.c:457`. Set when the
249/// currently-executing pipeline is the long-running pipe-into-loop
250/// shape (`cat foo | while read a; do ... done`) — drives the
251/// super/sub-job tracking documented in the famous `Allen Edeln…`
252/// comment block above this declaration in C.
253pub static list_pipe: std::sync::atomic::AtomicI32 = // c:457 (Src/exec.c)
254 std::sync::atomic::AtomicI32::new(0);
255
256/// Port of `int simple_pline = 0;` from `Src/exec.c:457`. Set during
257/// dispatch of a "simple" pipeline (single-stage / no shell-construct
258/// tail) so the `list_pipe` machinery short-circuits.
259pub static simple_pline: std::sync::atomic::AtomicI32 = // c:457 (Src/exec.c)
260 std::sync::atomic::AtomicI32::new(0);
261
262/// Port of `static pid_t list_pipe_pid;` from `Src/exec.c:459`.
263/// PID of the sub-shell created to host the loop-after-pipe pattern;
264/// passed up the recursive `execlist` stack so the cat-job's super-
265/// job entry can record it.
266pub static list_pipe_pid: std::sync::atomic::AtomicI32 = // c:459 (Src/exec.c)
267 std::sync::atomic::AtomicI32::new(0);
268
269/// Port of `static int nowait;` from `Src/exec.c:461`. When set,
270/// `execpline` doesn't wait for the pipeline; used during the
271/// list_pipe sub-shell fork bookkeeping.
272pub static nowait: std::sync::atomic::AtomicI32 = // c:461 (Src/exec.c)
273 std::sync::atomic::AtomicI32::new(0);
274
275/// Port of `int pline_level = 0;` from `Src/exec.c:461`. Recursive
276/// pipeline depth (counts nested pipelines within the current
277/// `execlist` call chain).
278pub static pline_level: std::sync::atomic::AtomicI32 = // c:461 (Src/exec.c)
279 std::sync::atomic::AtomicI32::new(0);
280
281/// Port of `static int list_pipe_child = 0;` from `Src/exec.c:462`.
282/// Set in the child after the list_pipe fork so the child knows to
283/// continue executing the loop body (vs the parent which records
284/// the pid + returns).
285pub static list_pipe_child: std::sync::atomic::AtomicI32 = // c:462 (Src/exec.c)
286 std::sync::atomic::AtomicI32::new(0);
287
288/// Port of `static int list_pipe_job;` from `Src/exec.c:462`. Job
289/// table index of the pipeline's first-stage job (the `cat` in
290/// `cat foo | while ...`).
291pub static list_pipe_job: std::sync::atomic::AtomicI32 = // c:462 (Src/exec.c)
292 std::sync::atomic::AtomicI32::new(0);
293
294/// Port of `static int doneps4;` from `Src/exec.c:262`. Set after
295/// `printprompt4` has emitted the `$PS4` prefix for the current
296/// xtrace command — prevents double-printing when an inner sub-eval
297/// also wants to xtrace.
298pub static doneps4: std::sync::atomic::AtomicI32 = // c:262 (Src/exec.c)
299 std::sync::atomic::AtomicI32::new(0);
300
301/// Port of `static int esprefork, esglob = 1;` from `Src/exec.c:2680`.
302///
303/// File-static "execsubst parameters" — callers (execcmd_exec at
304/// c:3298 / c:3700) set these BEFORE invoking execsubst, which then
305/// uses them as the `flags` arg to prefork() and the gate on
306/// globlist(). `esprefork` is `PREFORK_TYPESET` for magic-assign /
307/// MAGICEQUALSUBST words, else 0. `esglob` defaults to 1; cleared
308/// when the dispatched builtin has `BINF_NOGLOB`.
309pub static esprefork: std::sync::atomic::AtomicI32 = // c:2680
310 std::sync::atomic::AtomicI32::new(0);
311pub static esglob: std::sync::atomic::AtomicI32 = // c:2680 (= 1)
312 std::sync::atomic::AtomicI32::new(1);
313
314/// Port of `struct execstack *exstack;` from `Src/exec.c:244`. Head
315/// of the linked exec-context save stack — `execsave` pushes a frame
316/// before signal-handler / trap dispatch; `execrestore` pops it
317/// afterwards so the interrupted command resumes with its state intact.
318pub static exstack: std::sync::Mutex<Option<Box<execstack>>> = // c:244
319 std::sync::Mutex::new(None);
320
321/// Port of `static char *STTYval;` from `Src/exec.c:263`. Pending
322/// `stty` argument string captured by `addvars` when the command's
323/// inline env contains `STTY=...`. Applied by `execute` before fork
324/// + exec so the spawned program sees its tty configured. Reset to
325/// `None` after consumption to avoid infinite recursion.
326pub static STTYval: std::sync::Mutex<Option<String>> = // c:263 (Src/exec.c)
327 std::sync::Mutex::new(None);
328
329/// Convert a here-document into a here-string. Line-by-line port of
330/// `gethere()` from `Src/exec.c:4569-4652`. Reads the body from the
331/// input stream via `hgetc()` until the terminator line is matched,
332/// returning the collected body as a string. `strp` is in/out: on
333/// entry the raw terminator (possibly with token markers + leading
334/// tabs); on return the munged terminator (after `quotesubst` +
335/// `untokenize` and, for `REDIR_HEREDOCDASH`, leading-tab strip).
336///
337/// Returns `None` on out-of-memory (C `zalloc`/`realloc` failure).
338/// Rust's `String` auto-grows so the OOM branch is effectively
339/// unreachable, but the return type stays `Option<String>` to mirror
340/// the C signature which can return NULL.
341///
342/// Port of `gethere(char **strp, int typ)` from `Src/exec.c:4573`.
343pub fn gethere(strp: &mut String, typ: i32) -> Option<String> {
344 // c:4573 (Src/exec.c)
345 let mut buf: String; // c:4575 char *buf
346 let mut bsiz: usize; // c:4576 int bsiz
347 let mut qt: i32 = 0; // c:4576 int qt = 0
348 let mut strip: i32 = 0; // c:4576 int strip = 0
349 // c:4577 — char *s, *t, *bptr, c. zshrs uses byte-offsets into
350 // `buf` for `t` and tracks `bptr` implicitly as `buf.len()` (the
351 // C `bptr++` increment is `buf.push(c)`; `bptr--` is `buf.pop()`).
352 // `s` (the loop iterator for the inull-scan) stays local to its
353 // for-loop. `c` mirrors the C `char c`.
354 let mut t: usize; // c:4577 char *t
355 let mut c: Option<char>; // c:4577 char c
356 let mut str: String = strp.clone(); // c:4578 char *str = *strp
357
358 // c:4580-4584 — for (s = str; *s; s++) if (inull(*s)) { qt = 1; break; }
359 for s in str.bytes() {
360 if inull(s) {
361 // c:4581
362 qt = 1; // c:4582
363 break; // c:4583
364 }
365 }
366 str = quotesubst(&str); // c:4585
367 str = untokenize(&str); // c:4586
368 if typ == REDIR_HEREDOCDASH {
369 // c:4587
370 strip = 1; // c:4588
371 // c:4589-4590 — while (*str == '\t') str++;
372 while str.starts_with('\t') {
373 str.remove(0);
374 }
375 }
376 *strp = str.clone(); // c:4592 *strp = str
377
378 // c:4593 — bptr = buf = zalloc(bsiz = 256);
379 bsiz = 256;
380 buf = String::with_capacity(bsiz);
381 let _ = bsiz; // bsiz is tracked by C for zfree; Rust drops automatically
382
383 // c:4594 — for (;;)
384 loop {
385 t = buf.len(); // c:4595 t = bptr
386
387 // c:4597-4598 — while ((c = hgetc()) == '\t' && strip) ;
388 loop {
389 c = hgetc();
390 if !(c == Some('\t') && strip != 0) {
391 break;
392 }
393 }
394
395 // c:4599 — for (;;) — inner body-read loop
396 loop {
397 // c:4600-4613 — buffer-growth realloc dance. Rust's
398 // String auto-grows; nothing to do.
399 // c:4614 — if (lexstop || c == '\n') break;
400 if LEX_LEXSTOP.with(|f| f.get()) || c == Some('\n') || c.is_none() {
401 break;
402 }
403 // c:4616 — if (!qt && c == '\\')
404 if qt == 0 && c == Some('\\') {
405 buf.push('\\'); // c:4617 *bptr++ = c
406 c = hgetc(); // c:4618
407 if c == Some('\n') {
408 // c:4619
409 buf.pop(); // c:4620 bptr--
410 c = hgetc(); // c:4621
411 continue; // c:4622
412 }
413 }
414 if let Some(ch) = c {
415 // c:4625 *bptr++ = c
416 buf.push(ch);
417 }
418 c = hgetc(); // c:4626
419 }
420 // c:4628 — *bptr = '\0'; (implicit — Rust String tracks len)
421
422 // c:4629-4630 — if (!strcmp(t, str)) break;
423 if &buf[t..] == str.as_str() {
424 break;
425 }
426 // c:4631-4634 — if (lexstop) { t = bptr; break; }
427 // C's ingetc sets `lexstop = 1` when input is exhausted
428 // (Src/input.c:289-292), so the flag check alone suffices
429 // there. zshrs's hgetc signals the same exhaustion by
430 // returning None WITHOUT setting LEX_LEXSTOP — treat both as
431 // the c:4631 condition, else an unterminated heredoc loops
432 // here forever appending '\n'. Gap #3 2026-06-12 (A04
433 // "Here-documents don't perform shell expansion" wedge).
434 if LEX_LEXSTOP.with(|f| f.get()) || c.is_none() {
435 t = buf.len();
436 break;
437 }
438 // c:4635 — *bptr++ = '\n';
439 buf.push('\n');
440 }
441 // c:4637 — *t = '\0';
442 buf.truncate(t);
443
444 // c:4638-4640 — s = buf; buf = dupstring(buf); zfree(s, bsiz);
445 // The C dance frees the realloc'd block and re-allocates via the
446 // string-heap allocator. Rust drops the old String when reassigned.
447 buf = dupstring(&buf);
448
449 if qt == 0 {
450 // c:4641
451 // c:4642 — int ef = errflag;
452 let ef = errflag.load(Ordering::Relaxed);
453 // c:4644 — parsestr(&buf);
454 if let Ok(parsed) = parsestr(&buf) {
455 buf = parsed;
456 }
457 // c:4646-4649 — if (!(errflag & ERRFLAG_ERROR)) errflag = ef | (errflag & ERRFLAG_INT);
458 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) == 0 {
459 let cur = errflag.load(Ordering::Relaxed);
460 errflag.store(ef | (cur & ERRFLAG_INT), Ordering::Relaxed);
461 }
462 }
463 Some(buf) // c:4651 return buf
464}
465
466/// Port of `LinkList getoutput(char *cmd, int qt)` from
467/// `Src/exec.c:4712-4791`. Runs a command-substitution body in the
468/// active executor, then routes the captured stdout through
469/// `readoutput(pipe, qt, NULL)` semantics at c:4855-4872.
470///
471/// C return shape: `LinkList` of `char*`. Rust port returns
472/// `Vec<String>` (same shape, owned).
473///
474/// `qt` matches C exactly:
475/// - qt=1 (quoted, `"$(...)"`): trim trailing newlines, return
476/// entire output as a single-element vec. C c:4858-4862: if
477/// output empty, returns a single Nularg sentinel so callers
478/// see "empty value" rather than "no value".
479/// - qt=0 (unquoted, `$(...)`): trim trailing newlines, then
480/// `spacesplit(buf, allownull=false)` per c:4865-4871.
481///
482/// Uses `with_executor` (panics on missing VM context), not
483/// `try_with_executor + unwrap_or_default()`. C `getoutput` calls
484/// `execpline` directly — there's no "no shell" code path. The
485/// silent-no-op pattern (return empty string when no executor) would
486/// mask catastrophic state corruption as "command produced no output",
487/// which is the failure mode the `subst.rs:496` warning block flags.
488/* $(...) */
489// c:4709
490/// `getoutput` — see implementation.
491pub fn getoutput(cmd: &str, qt: i32) -> Vec<String> {
492 // c:4713
493 // c:4715 — `Eprog prog;`
494 let prog: Option<eprog>;
495 // c:4716 — `int pipes[2];` (collapsed: in-process executor; no fork)
496 // c:4717 — `pid_t pid;` (collapsed)
497 let mut s: String; // c:4718
498 // c:4720-4723 — `int onc = nocomments; nocomments = (interact &&
499 // !sourcelevel && unset(INTERACTIVECOMMENTS));
500 // prog = parse_string(cmd, 0); nocomments = onc;`
501 let onc = crate::ported::lex::LEX_NOCOMMENTS.with(|c| c.get());
502 let new_nc = crate::ported::zsh_h::interact()
503 && crate::ported::init::sourcelevel.load(Ordering::Relaxed) == 0
504 && !isset(crate::ported::zsh_h::INTERACTIVECOMMENTS);
505 crate::ported::lex::LEX_NOCOMMENTS.with(|c| c.set(new_nc));
506 prog = parse_string(cmd, 0);
507 crate::ported::lex::LEX_NOCOMMENTS.with(|c| c.set(onc));
508
509 if prog.is_none() {
510 // c:4725
511 return Vec::new(); // c:4726 return NULL
512 }
513 let prog = prog.unwrap();
514
515 if !isset(crate::ported::zsh_h::EXECOPT) {
516 // c:4728
517 return Vec::new(); // c:4729 newlinklist()
518 }
519
520 // c:4731 — `if ((s = simple_redir_name(prog, REDIR_READ)))` — `$(< word)`
521 if let Some(red_name) = simple_redir_name(&prog, crate::ported::zsh_h::REDIR_READ) {
522 /* $(< word) */
523 // c:4732
524 s = red_name;
525 s = singsub(&s); // c:4737
526 if errflag.load(Ordering::Relaxed) != 0 {
527 return Vec::new(); // c:4739
528 }
529 let s = untokenize(&s); // c:4740
530 let path_meta = unmeta(&s); // c:4741 unmeta(s)
531 let cpath = match std::ffi::CString::new(path_meta.as_bytes()) {
532 Ok(c) => c,
533 Err(_) => return Vec::new(),
534 };
535 let stream = unsafe {
536 libc::open(cpath.as_ptr(), libc::O_RDONLY | libc::O_NOCTTY) // c:4741
537 };
538 if stream == -1 {
539 // c:4742 — `zwarn("%e: %s", errno, s);`
540 let errno = std::io::Error::last_os_error();
541 zerr(&format!("{}: {}", errno, s));
542 LASTVAL.store(1, Ordering::Relaxed);
543 cmdoutval.store(1, Ordering::Relaxed);
544 return Vec::new(); // c:4744
545 }
546 // c:4746 — `retval = readoutput(stream, qt, &readerror);`
547 let mut readerror: i32 = 0;
548 let retval = readoutput(stream, qt, &mut readerror); // c:4746
549 if readerror != 0 {
550 // c:4747
551 zerr(&format!(
552 "error when reading {}: {}", // c:4748
553 s,
554 std::io::Error::from_raw_os_error(readerror)
555 ));
556 LASTVAL.store(1, Ordering::Relaxed);
557 cmdoutval.store(1, Ordering::Relaxed);
558 }
559 return retval; // c:4751
560 }
561
562 // c:4753-4790 — Full fork path: mpipe + zfork + parent
563 // readoutput / waitforpid / child execode + _realexit. fusevm runs
564 // command substitution in-process, so the fork shape collapses to a
565 // synchronous executor call. C control points preserved as cites:
566 // c:4753 mpipe — handled by ShellExecutor pipe wiring
567 // c:4758 child_block — no-op (no fork)
568 // c:4760 zfork — replaced by in-process exec
569 // c:4768-4776 parent — equivalent to executor return
570 // c:4778-4789 child — entersubsh+execode+_realexit collapse
571 cmdoutval.store(0, Ordering::Relaxed); // c:4759
572 let buf = crate::ported::exec::run_command_substitution(cmd);
573 LASTVAL.store(cmdoutval.load(Ordering::Relaxed), Ordering::Relaxed); // c:4775
574
575 // c:4772 retval = readoutput — post-walk (c:4855-4871 tail) inlined.
576 let buf = buf.trim_end_matches('\n');
577 if qt != 0 {
578 if buf.is_empty() {
579 vec![String::from(Nularg)] // c:4859-4861
580 } else {
581 vec![buf.to_string()] // c:4863
582 }
583 } else {
584 crate::ported::utils::spacesplit(buf, false) // c:4865
585 }
586}
587
588/// Direct port of `Shfunc loadautofn(Shfunc shf, int ks, int test_only,
589/// int ignore_loaddir)` from `Src/exec.c:5050`. Walks `$fpath` for a
590/// file named `shf->node.nam`, reads it, installs the text body on
591/// the corresponding `shfunctab` entry, and clears `PM_UNDEFINED`.
592///
593/// C body (abridged):
594/// 1. `name = shf->node.nam`
595/// 2. `getfpfunc(name, &dir_path, NULL, 0)` → resolved file path
596/// 3. If !test_only && file found: parse → store eprog on
597/// `shf->funcdef`; clear PM_UNDEFINED; set `shf->filename`.
598/// 4. Returns shf on success, NULL on failure.
599///
600/// Rust port: returns 0 = success, 1 = failure (matches the
601/// existing call-site convention in `bin_functions -c`). Stores
602/// raw file text on `ShFunc.body` (the Rust-side ShFunc in
603/// `hashtable.rs:362`); the parser pass that converts text →
604/// Eprog runs lazily at first call site.
605/// Port of `loadautofn(Shfunc shf, int fksh, int autol, int current_fpath)` from `Src/exec.c:5682`.
606pub fn loadautofn(
607 shf: *mut shfunc, // c:5682 (Src/exec.c)
608 _ks: i32,
609 autol: i32,
610 _ignore_loaddir: i32,
611) -> i32 {
612 if shf.is_null() {
613 return 1;
614 }
615 // c:5054 — `name = shf->node.nam`.
616 let name = unsafe { (*shf).node.nam.clone() };
617 // c:5070 — `path = getfpfunc(name, &dir_path, NULL, 0)`.
618 let mut dir_path: Option<String> = None;
619 let mut dump_hit: Option<(eprog, i32)> = None;
620 // A function autoloaded by ABSOLUTE PATH (`autoload -Uz /dir/name`) — or
621 // one already resolved via `autoload -r` — caches its directory in
622 // `shf.filename` with PM_LOADDIR set. Load-on-call must search THAT dir
623 // (`shf.filename/name`), not walk `$fpath` (which won't contain it).
624 // Without this, `autoload -Uz $fdir/.hist.*` (zsh-hist) named the
625 // functions correctly but every call died with "definition file not
626 // found". Mirrors C loadautofn's PM_LOADDIR spec-path branch.
627 let loaddir_spec: Option<Vec<String>> = {
628 let s = unsafe { &*shf };
629 if (s.node.flags as u32 & PM_LOADDIR) != 0 {
630 s.filename.clone().map(|d| vec![d])
631 } else {
632 None
633 }
634 };
635 let path = match getfpfunc(&name, &mut dir_path, loaddir_spec.as_deref(), 0, &mut dump_hit) {
636 Some(p) => p,
637 None => {
638 // !!! WARNING: RUST-ONLY BRANCH — NO DIRECT C COUNTERPART !!!
639 // compsys ships as native Rust functions (src/compsys/router.rs),
640 // so names like `_main_complete` have no definition file in
641 // $fpath. C zsh always loads them from files; zshrs must let
642 // `autoload +X -Uz _main_complete` (e.g. fzf-tab via zinit's
643 // :zinit-tmp-subst-autoload, zinit.zsh:356) succeed without one.
644 // Mark the stub loaded and return success — call-time dispatch
645 // short-circuits to the native fn (vm_helper.rs:2276), so no
646 // funcdef/body is needed.
647 if crate::compsys::router::try_rust_dispatch(&name).is_some() {
648 unsafe {
649 (*shf).node.flags &= !(PM_UNDEFINED as i32);
650 }
651 if let Ok(mut tab) = shfunctab_lock().write() {
652 if let Some(existing) = tab.get_mut(&name) {
653 existing.node.flags &= !(PM_UNDEFINED as i32);
654 }
655 }
656 return 0;
657 }
658 // c:Src/exec.c:5713-5719 — file not found path. C:
659 // `if (prog == &dummy_eprog) {
660 // locallevel--;
661 // zwarn("%s: function definition file not found",
662 // shf->node.nam);
663 // locallevel++;
664 // popheap();
665 // return NULL;
666 // }`
667 // C's getfpfunc returns &dummy_eprog as the "not found"
668 // sentinel when test_only==0; loadautofn detects it and
669 // emits the diagnostic before returning NULL. Rust's
670 // getfpfunc returns Option::None for the same condition,
671 // so we emit the same diagnostic here. The locallevel
672 // dance is preserved as a comment because the Rust
673 // port's zwarn doesn't reference locallevel in the
674 // format string itself (the dance in C is only to keep
675 // the prefix line counter consistent with the function-
676 // body context). Bug #107 in docs/BUGS.md.
677 crate::ported::utils::zwarn(&format!("{}: function definition file not found", name));
678 return 1; // c:5719 NULL
679 }
680 };
681 let _ = autol;
682 // Previously the Rust port treated this parameter as
683 // "test_only" and early-returned when set, so the `+X`
684 // call from `eval_autoload` (`loadautofn(shf, mode, 1, d)`)
685 // never actually loaded the file. C's parameter is `autol`
686 // (autoload mode), NOT a test-only flag — the C body
687 // unconditionally loads/parses regardless of autol. autol=1
688 // controls the EF_RUN / map-flag dance for the wordcode prog
689 // (c:5725-5749), but the loaded-body / PM_UNDEFINED-clear
690 // path runs in all cases. Removing the early-return so
691 // `autoload -U +X funcname` actually loads the body and
692 // `type funcname` reports `function from /path/file` instead
693 // of `autoload shell function`. Bug #160 in docs/BUGS.md.
694 // c:5100-5140 — read the file. C uses zopen + read + parse_string +
695 // execsave; Rust port stores raw text on the ShFunc and defers
696 // parse-to-Eprog until the first call.
697 //
698 // c:Src/exec.c:6238 / parse.c:3833 — when getfpfunc resolved the
699 // function out of a compiled `.zwc` dump, there is no source file
700 // to read; the wordcode Eprog came back through `dump_hit`. C
701 // executes that wordcode directly (`shf->funcdef = stripkshdef(
702 // prog, ...)`, exec.c:5753-5755). zshrs executes function bodies
703 // through the fusevm bytecode pipeline which consumes source
704 // text, so bridge wordcode → text with the canonical text.c
705 // renderer (`getpermtext`, ported at text.rs:189) — the same
706 // walker `functions NAME` printing uses for wordcode-backed
707 // funcdefs (C hashtable.c:954). The downstream
708 // `autoload_register_source` step (vm_helper.rs:3162) performs
709 // the `stripkshdef` shape decision, matching c:5725-5760.
710 // c:5706-5710 — the ksh-mode precedence chain:
711 // `if (ksh == 1) { ksh = fksh; if (ksh == 1)
712 // ksh = PM_KSHSTORED ? 2 : PM_ZSHSTORED ? 0 : 1; }`
713 // The dump header flag (FDHF_KSHLOAD/FDHF_ZSHLOAD via `*ksh`
714 // from try_dump_file) outranks the stub's PM_*STORED bits, which
715 // are only consulted when the dump says 1 (no explicit style).
716 // zshrs's load/register split (vm_helper's
717 // `autoload_register_source` makes the c:5725 ksh-vs-zsh
718 // decision later, from the tab entry's flags + KSHAUTOLOAD) —
719 // fold a decisive dump flag into the PM bits so the downstream
720 // decision sees the same precedence.
721 let dump_ksh = dump_hit.as_ref().map(|(_, k)| *k);
722 let body = match dump_hit {
723 Some((prog, _ksh)) => crate::ported::text::getpermtext(Box::new(prog), None, 0),
724 None => match std::fs::read_to_string(&path) {
725 Ok(t) => t,
726 Err(_) => return 1,
727 },
728 };
729 // c:Src/exec.c:5735/5757 — `loadautofnsetfile(shf, fdir)`. The
730 // helper stamps PM_LOADDIR alongside the filename when fdir is
731 // present, so `whence -v NAME` later concatenates the directory
732 // with `/NAME` (PM_LOADDIR branch at hashtable.rs:1350). zshrs's
733 // prior `shf->filename = dir_path` assignment skipped the flag
734 // → `type colors` printed `from /path/to/functions` instead of
735 // `from /path/to/functions/colors`. Mirror C exactly.
736 unsafe {
737 loadautofnsetfile(&mut *shf, dir_path.as_deref().or(Some(&path)));
738 }
739 // c:5148 — `shf->node.flags &= ~PM_UNDEFINED`.
740 unsafe {
741 (*shf).node.flags &= !(PM_UNDEFINED as i32);
742 }
743 // c:5706-5710 fold (see comment above): decisive dump style wins
744 // over the stub's stored-style bits.
745 let (ksh_on, ksh_off): (i32, i32) = match dump_ksh {
746 Some(2) => (
747 crate::ported::zsh_h::PM_KSHSTORED as i32,
748 crate::ported::zsh_h::PM_ZSHSTORED as i32,
749 ),
750 Some(0) => (
751 crate::ported::zsh_h::PM_ZSHSTORED as i32,
752 crate::ported::zsh_h::PM_KSHSTORED as i32,
753 ),
754 _ => (0, 0),
755 };
756 unsafe {
757 (*shf).node.flags = ((*shf).node.flags | ksh_on) & !ksh_off;
758 }
759 // Sync the body string into the Rust-side ShFunc table so the
760 // lazy-parse path can find it later.
761 if let Ok(mut tab) = shfunctab_lock().write() {
762 if let Some(existing) = tab.get_mut(&name) {
763 existing.body = Some(body);
764 existing.node.flags = (existing.node.flags | ksh_on) & !ksh_off;
765 // c:5657 loadautofnsetfile — store the fpath DIRECTORY absolutized
766 // with PM_LOADDIR (not the raw relative `./fns`), so `whence -v`
767 // prints the absolute source. The `+X` (eval-autoload) path relies
768 // on this since it does not re-register through vm_helper.
769 loadautofnsetfile(existing, dir_path.as_deref());
770 } else {
771 let mut shf = shfunc {
772 node: hashnode {
773 next: None,
774 nam: name.clone(),
775 flags: ksh_on, // c:5706-5710 dump-style fold
776 },
777 filename: None,
778 lineno: 0,
779 funcdef: None,
780 redir: None,
781 sticky: None,
782 body: Some(body),
783 };
784 loadautofnsetfile(&mut shf, dir_path.as_deref()); // c:5657
785 tab.add(shf);
786 }
787 }
788 0
789}
790
791/// Port of `getfpfunc(char *s, int *ksh, char **fdir, char **alt_path, int test_only)` from Src/exec.c:6219. Walks `$fpath` (or the
792/// supplied `spec_path` slice) for a file named `name` and writes the
793/// resolved directory through `*dir_path_out` (matching the C `char **dir_path`).
794/// Returns `Some(file_path)` on success, `None` when not found.
795///
796/// Per dir, the compiled-dump lookup runs FIRST (c:6238
797/// `try_dump_file(*pp, s, buf, ksh, test_only)`) — a directory
798/// digest `<dir>.zwc` or per-function `<dir>/<name>.zwc` wins over
799/// the plain file when newer (mtime logic inside try_dump_file,
800/// c:parse.c:3762-3784). On a dump hit the loaded program + ksh
801/// mode (C's `*ksh` out-param) are written through `dump_out` and
802/// the nominal `<dir>/<name>` path is returned; the caller must
803/// check `dump_out` before reading the returned path as a plain
804/// file.
805pub fn getfpfunc(
806 name: &str,
807 dir_path_out: &mut Option<String>, // c:6219 (Src/exec.c)
808 spec_path: Option<&[String]>,
809 test_only: i32, // c:6219 `int test_only`
810 dump_out: &mut Option<(eprog, i32)>, // c:6219 `int *ksh` + dump Eprog return
811) -> Option<String> {
812 // C reads $fpath via `getaparam("fpath")` (the param-table array form
813 // tied to scalar `FPATH` via `typeset -T`). Reading `std::env::var`
814 // misses any in-script modification like `fpath=(/some/dir $fpath)`
815 // because that mutates the internal param table, not the inherited
816 // process env. Fall back to env only when the param table is empty
817 // (cold start before any param-table init).
818 let dirs: Vec<String> = match spec_path {
819 Some(s) => s.to_vec(),
820 None => crate::ported::params::getaparam("fpath")
821 .filter(|v| !v.is_empty())
822 .or_else(|| getsparam("FPATH").map(|v| v.split(':').map(String::from).collect()))
823 .or_else(|| {
824 std::env::var("FPATH")
825 .ok()
826 .map(|v| v.split(':').map(String::from).collect())
827 })
828 .unwrap_or_default(),
829 };
830 for dir in &dirs {
831 if dir.is_empty() {
832 continue;
833 }
834 let path = format!("{}/{}", dir, name); // c:6230 snprintf(buf, ..., "%s/%s", *pp, s)
835 // c:6238 — `if ((r = try_dump_file(*pp, s, buf, ksh, test_only)))`
836 // — the .zwc digest / per-function dump is tried BEFORE the
837 // plain file in each directory.
838 if let Some(hit) = crate::ported::parse::try_dump_file(dir, name, &path, test_only != 0) {
839 *dump_out = Some(hit);
840 *dir_path_out = Some(dir.clone()); // c:6240 `*fdir = *pp;`
841 return Some(path); // c:6241
842 }
843 if std::path::Path::new(&path).exists() {
844 // c:6245 access(buf, R_OK)
845 *dir_path_out = Some(dir.clone());
846 return Some(path);
847 }
848 }
849 None
850}
851
852/// Port of `resolvebuiltin(const char *cmdarg, HashNode hn)` from
853/// `Src/exec.c:2703`. Ensures that an autoload-stub builtin has its
854/// module loaded before the caller invokes its `handlerfunc`. If the
855/// stub has no handler, `ensurefeature` is asked to load the module
856/// and re-lookup the builtin node. C body (abridged):
857/// ```c
858/// if (!((Builtin) hn)->handlerfunc) {
859/// char *modname = dupstring(((Builtin) hn)->optstr);
860/// (void)ensurefeature(modname, "b:", ...);
861/// hn = builtintab->getnode(builtintab, cmdarg);
862/// if (!hn) { lastval=1; zerr(...); return NULL; }
863/// }
864/// return hn;
865/// ```
866///
867/// WARNING: zshrs's builtin table is the static `BUILTINS` array in
868/// `src/ported/builtin.rs`. Module autoload routes through
869/// `module::ensurefeature(MODULESTAB, modname, "b:", Some(cmdarg))`;
870/// after the module loads the handler should be wired into BUILTINS.
871pub fn resolvebuiltin<'a>(
872 cmdarg: &str, // c:2703 (Src/exec.c)
873 hn: &'a builtin,
874) -> Option<&'a builtin> {
875 // c:2705 — `if (!((Builtin) hn)->handlerfunc)`.
876 if hn.handlerfunc.is_none() {
877 // c:2706 — `modname = dupstring(((Builtin)hn)->optstr)`.
878 let modname = hn.optstr.clone().unwrap_or_default();
879 // c:2712 — `ensurefeature(modname, "b:", cmdarg)`.
880 let _ = {
881 let mut t = crate::ported::module::MODULESTAB.lock().unwrap();
882 crate::ported::module::ensurefeature(&mut t, &modname, "b:", Some(cmdarg))
883 };
884 // c:2715-2716 — re-lookup the now-(hopefully)-resolved builtin.
885 if let Some(re) = BUILTINS.iter().find(|b| b.node.nam == cmdarg) {
886 if re.handlerfunc.is_some() {
887 return Some(re); // c:2723
888 }
889 }
890 // c:2717-2721 — `lastval = 1; zerr(...)` + return NULL.
891 zerr(&format!(
892 "autoloading module {} failed to define builtin: {}",
893 modname, cmdarg
894 ));
895 return None; // c:2720
896 }
897 Some(hn) // c:2723
898}
899
900/// Dispatch decision returned by `execcmd_compile_head` — the
901/// fusevm-bytecode-time head resolver that mirrors the local-variable
902/// state the C `execcmd_exec` function carries through `c:2913-2916`
903/// (`is_builtin`, `is_shfunc`, `cflags`, `use_defpath`) plus the
904/// precmd-modifier strip count. The fusevm bytecode compiler reads
905/// this to emit the correct dispatch opcode in
906/// `src/extensions/compile_zsh.rs::compile_simple`.
907///
908/// Not a C struct — invented to bridge the divergence between the
909/// C wordcode-walker (which mutates locals + falls through to
910/// invocation) and zshrs's split parse → compile → VM pipeline.
911#[allow(non_camel_case_types)]
912#[derive(Debug, Default, Clone)]
913pub struct execcmd_dispatch {
914 /// Number of `BINF_PREFIX` words to strip from the head of args.
915 /// `Src/exec.c:3086 uremnode(preargs, firstnode(preargs))`.
916 pub precmd_skip: usize,
917 /// Set when the head (after strip) is a real builtin
918 /// (`Src/exec.c:3065 is_builtin = 1`).
919 pub is_builtin: bool,
920 /// Set when the head (after strip) is a shell function
921 /// (`Src/exec.c:3053 is_shfunc = 1`).
922 pub is_shfunc: bool,
923 /// `cflags` accumulator from `Src/exec.c:2915` — gathers
924 /// `BINF_BUILTIN | BINF_COMMAND | BINF_EXEC | BINF_DASH |
925 /// BINF_NOGLOB` bits encountered during the precommand-modifier
926 /// walk (c:3062 `cflags |= hn->flags`).
927 pub cflags: u32,
928 /// `command -p` requested: use the default `$PATH` for lookup
929 /// (`Src/exec.c:3160 use_defpath = 1`). NOT YET HONORED by the
930 /// fusevm compiler — flagged for follow-up.
931 pub use_defpath: bool,
932 /// `command -v` / `command -V` requested: the dispatch target
933 /// flips to `bin_whence` per `Src/exec.c:3149-3157`
934 /// (`hn = &commandbn.node; is_builtin = 1`). The fusevm compiler
935 /// reads this and emits `Op::CallBuiltin(BUILTIN_WHENCE_FROM_COMMAND)`
936 /// instead of resolving the post-strip head.
937 pub has_command_vv: bool,
938 /// `exec -a NAME` requested: ARGV0 override per `Src/exec.c:3214-3240`.
939 /// `Some(NAME)` triggers `zputenv("ARGV0=NAME")` before exec.
940 pub exec_argv0: Option<String>,
941 /// Empty-command branch fired with no redirs (`Src/exec.c:3372-3406`
942 /// — the `else` arm of `if (redir && nonempty(redir))`). Covers
943 /// bare `exec` / `noglob` / `command`. Caller emits
944 /// `lastval = cmdoutval` (0 when no `$(cmd)` ran) and returns.
945 /// Also fires for the `(cflags & BINF_PREFIX) && (cflags &
946 /// BINF_COMMAND)` sub-case at `c:3365-3371` (bare `command`
947 /// returns 0 without complaining about missing redirs).
948 pub is_empty_command: bool,
949}
950
951/// !!! NOT A PORT OF C `execcmd_exec` !!!
952///
953/// This is a fusevm-bytecode-time head resolver invoked by
954/// `src/extensions/compile_zsh.rs::compile_simple` and the
955/// `command` builtin shim in `src/fusevm_bridge.rs`. The canonical
956/// 7-arg port of `Src/exec.c:execcmd_exec` lives elsewhere in this
957/// file under the C-faithful name `execcmd_exec`.
958///
959/// This helper mirrors the head section (`c:2904-3275`) of the C
960/// function — local initialisation, the precommand-modifier walk
961/// that strips `BINF_PREFIX` builtins (`-`, `builtin`, `command`,
962/// `exec`, `noglob`), and the `BINF_COMMAND`/`BINF_EXEC`
963/// sub-option parsers — and returns the resulting dispatch
964/// decision via `execcmd_dispatch`. The fusevm compiler reads
965/// that struct to decide which `Op::CallBuiltin` /
966/// `Op::CallFunction` / `Op::Exec` to emit, and to compute the
967/// correct post-strip `argc`.
968///
969/// =================== WARNING — DIVERGENCE ====================
970///
971/// The C function runs ~1500 lines and PERFORMS dispatch: it sets up
972/// `multio` redirections, evaluates `varspc` assignments, then calls
973/// `execbuiltin` / `runshfunc` / `execute` directly. This helper
974/// stops after the precmd-modifier walk and only returns the head
975/// decision; runtime dispatch is driven by the bytecode the fusevm
976/// compiler emits.
977///
978/// Signature adaptation: the C `Estate`/`Execcmd_params` carry the
979/// wordcode iterator state — zshrs doesn't traverse wordcode here,
980/// so the args list arrives already-expanded as a `&[String]`
981/// (analog of `preargs` after `execcmd_getargs` at `c:3028`).
982/// `type_` mirrors `eparams->type` (`WC_SIMPLE` vs `WC_TYPESET`).
983///
984/// =============================================================
985pub fn execcmd_compile_head(args: &[String], type_: u32) -> execcmd_dispatch {
986 // c:2900 (Src/exec.c)
987
988 // c:2904-2916 — locals.
989 let mut hn: Option<&'static builtin> = None; // c:2904
990 let mut is_shfunc = false; // c:2913
991 let mut is_builtin = false; // c:2913
992 let mut use_defpath = false; // c:2913
993 let mut cflags: u32 = 0; // c:2915
994 let mut orig_cflags: u32 = 0; // c:2915
995 let _ = orig_cflags;
996 // c:3263 — `char *exec_argv0 = NULL;` (declared inside the
997 // BINF_EXEC arm; hoisted here so the dispatch struct can carry it
998 // out after the loop terminates).
999 let mut exec_argv0: Option<String> = None;
1000 // c:3149/3158 — `has_vV`/`has_p` flags from the BINF_COMMAND arm
1001 // (c:3104). Surface `has_vV` via the dispatch struct so the fusevm
1002 // compiler can emit `bin_whence` instead of resolving the head.
1003 let mut has_command_vv = false;
1004
1005 // c:2962-2973 — `%job` head: rewrite `%name` → `fg|bg|disown %name`.
1006 // Not in scope for the compile-time dispatch walk: jobspec
1007 // expansion happens at runtime in fusevm; the bytecode emits a
1008 // direct `fg`/`bg` call when it sees a leading `%`. Flagged for
1009 // follow-up when the canonical port lands.
1010
1011 // c:2975-2986 — AUTORESUME prefix-match against jobtab. Same
1012 // status as the %job head: runtime concern, deferred.
1013
1014 // c:3013-3091 — precommand-modifier walk.
1015 let mut preargs: Vec<String> = args.to_vec(); // c:3027 newlinklist
1016 let mut precmd_skip: usize = 0;
1017
1018 // c:3018 — `if ((type == WC_SIMPLE || type == WC_TYPESET) && args)`.
1019 if (type_ == WC_SIMPLE || type_ == WC_TYPESET) && !preargs.is_empty() {
1020 // c:3018
1021 // c:3029 — `while (nonempty(preargs))`.
1022 while precmd_skip < preargs.len() {
1023 // c:3029
1024 // c:3030 — `cmdarg = (char *) peekfirst(preargs);`.
1025 let cmdarg = untokenize(&preargs[precmd_skip]);
1026 // c:3031 — `checked = !has_token(cmdarg)`. zshrs's fusevm
1027 // already performed prefork expansion on `preargs`, so
1028 // `has_token` is effectively false here; the C `break` on
1029 // unexpanded tokens is unreachable in this entry point.
1030
1031 // c:3034-3035 — WC_TYPESET fast path: `getnode2` looks up
1032 // even disabled builtins so the reserved-word form
1033 // (`integer x`, `local foo`) still dispatches to the
1034 // typeset family. The static `BUILTINS` array doesn't
1035 // expose a separate disabled-bit lookup; one path covers
1036 // both. Effect is identical for the precmd-modifier walk.
1037
1038 // c:3050-3052 — `if (!(cflags & (BINF_BUILTIN |
1039 // BINF_COMMAND)) && shfunctab->getnode(...))` — shell
1040 // function takes precedence unless a `builtin`/`command`
1041 // modifier preceded it.
1042 if (cflags & (BINF_BUILTIN | BINF_COMMAND)) == 0 {
1043 // c:3051
1044 if shfunctab_lock()
1045 .read()
1046 .map(|t| t.iter().any(|(k, _)| k == &cmdarg))
1047 .unwrap_or(false)
1048 {
1049 is_shfunc = true; // c:3053
1050 break; // c:3054
1051 }
1052 }
1053 // c:3056 — `builtintab->getnode(builtintab, cmdarg)`.
1054 let entry = BUILTINS.iter().find(|b| b.node.nam == cmdarg);
1055 let Some(entry) = entry else {
1056 // c:3056-3058
1057 break;
1058 };
1059 hn = Some(entry);
1060 // c:3061-3063 — accumulate cflags.
1061 orig_cflags |= cflags;
1062 cflags &= !(BINF_BUILTIN | BINF_COMMAND);
1063 cflags |= entry.node.flags as u32;
1064 // c:3064 — `if (!(hn->flags & BINF_PREFIX))` — real
1065 // builtin, stop.
1066 if (entry.node.flags as u32 & BINF_PREFIX) == 0 {
1067 // c:3064
1068 // WARNING — DIVERGENCE: c:3068 calls `resolvebuiltin`
1069 // to autoload the builtin's module if its
1070 // `handlerfunc` is NULL. In zshrs, builtins live in
1071 // two places: the static `BUILTINS` table (which
1072 // mirrors C `handlerfunc`, often `None` for ports
1073 // dispatched through fusevm) AND fusevm's
1074 // `register_builtins` map (the actual runtime
1075 // dispatcher). A null `handlerfunc` in the static
1076 // table is NOT an autoload failure for us — it
1077 // means dispatch routes through fusevm. So we
1078 // skip the resolvebuiltin call here; the faithful
1079 // port remains available for future callers that
1080 // genuinely need module-autoload semantics.
1081 is_builtin = true; // c:3065
1082 break; // c:3077
1083 }
1084 // c:3086 — `uremnode(preargs, firstnode(preargs))`.
1085 precmd_skip += 1;
1086 // c:3087-3091 — `if (!firstnode(preargs)) { execcmd_getargs
1087 // (...); if (!firstnode(preargs)) break; }`. zshrs has
1088 // no `execcmd_getargs` (args arrive pre-expanded); the
1089 // bounds-check at the top of `while precmd_skip <
1090 // preargs.len()` handles the empty case identically.
1091
1092 // c:3092-3177 — BINF_COMMAND sub-option parsing
1093 // (`command -p / -v / -V`).
1094 if (cflags & BINF_COMMAND) != 0 && precmd_skip < preargs.len() {
1095 // c:3102-3104 — `LinkNode argnode, oldnode, pnode = NULL;
1096 // int has_p = 0, has_vV = 0, has_other = 0;`
1097 let mut argnode: usize = precmd_skip; // c:3105 `argnode = firstnode(preargs);`
1098 let mut pnode: Option<usize> = None; // c:3102
1099 let mut has_p = false; // c:3104
1100 let mut has_vv = false; // c:3104
1101 let mut has_other = false; // c:3104
1102 // c:3107 — `while (IS_DASH(*argdata))`
1103 while argnode < preargs.len()
1104 && IS_DASH(preargs[argnode].chars().next().unwrap_or('\0'))
1105 {
1106 let argdata = preargs[argnode].clone(); // c:3106
1107 let bytes = argdata.as_bytes();
1108 // c:3108-3111 — stop on bare `-` or `--`.
1109 if bytes.len() < 2 || (IS_DASH(bytes[1] as char) && bytes.len() == 2) {
1110 // c:3109
1111 break; // c:3111
1112 }
1113 // c:3112-3133 — scan flag chars.
1114 for &c in &bytes[1..] {
1115 // c:3112
1116 match c as char {
1117 'p' => {
1118 // c:3114
1119 has_p = true; // c:3122
1120 pnode = Some(argnode); // c:3123
1121 }
1122 'v' | 'V' => {
1123 // c:3125-3126
1124 has_vv = true; // c:3127
1125 }
1126 _ => {
1127 // c:3129
1128 has_other = true; // c:3130
1129 }
1130 }
1131 }
1132 // c:3134-3138 — unknown flag → don't try, leave alone.
1133 if has_other {
1134 // c:3134
1135 has_p = false; // c:3136
1136 has_vv = false; // c:3136
1137 break; // c:3137
1138 }
1139 // c:3140-3147 — advance to next arg.
1140 argnode += 1; // c:3141 nextnode(argnode)
1141 if argnode >= preargs.len() {
1142 // c:3142 — execcmd_getargs (skipped: pre-expanded)
1143 break; // c:3145
1144 }
1145 }
1146 // c:3149-3157 — `-v`/`-V` → dispatch to whence.
1147 if has_vv {
1148 // c:3149
1149 // c:3154 `pushnode(preargs, "command")` — C re-inserts
1150 // "command" so bin_whence sees it as argv[0]. zshrs
1151 // surfaces this via `has_command_vv`; the fusevm
1152 // compiler emits the equivalent whence call.
1153 has_command_vv = true; // c:3155-3156 hn = &commandbn; is_builtin=1
1154 is_builtin = true;
1155 break; // c:3157
1156 } else if has_p {
1157 // c:3158
1158 use_defpath = true; // c:3160
1159 if let Some(pn) = pnode {
1160 // c:3165 — `uremnode(preargs, pnode)`. zshrs:
1161 // remove the `-p`-bearing arg from preargs.
1162 if pn < preargs.len() {
1163 preargs.remove(pn);
1164 // precmd_skip already accounts for the
1165 // stripped `command` prefix; we just removed
1166 // the `-p` flag which sat at preargs[pn].
1167 // No precmd_skip change needed — the head
1168 // remains where it was.
1169 }
1170 }
1171 }
1172 // c:3176-3177 — `--` trailing end-of-options strip.
1173 if argnode < preargs.len() {
1174 let argdata = &preargs[argnode];
1175 let b = argdata.as_bytes();
1176 if b.len() == 2 && IS_DASH(b[0] as char) && IS_DASH(b[1] as char) {
1177 // c:3176
1178 preargs.remove(argnode); // c:3177
1179 }
1180 }
1181 } else if (cflags & BINF_EXEC) != 0 && precmd_skip < preargs.len() {
1182 // c:3178-3275 — BINF_EXEC sub-option parsing
1183 // (`exec -a NAME -l -c`).
1184 let mut argnode: usize = precmd_skip; // c:3185
1185 let mut error_done = false;
1186 // c:3196 — `while (argdata && IS_DASH(*argdata) &&
1187 // strlen(argdata) >= 2)`
1188 while argnode < preargs.len() {
1189 let argdata = preargs[argnode].clone();
1190 let bytes = argdata.as_bytes();
1191 if bytes.is_empty() || !IS_DASH(bytes[0] as char) || bytes.len() < 2 {
1192 break; // c:3196 loop guard
1193 }
1194 let oldnode = argnode; // c:3197
1195 argnode += 1; // c:3198 nextnode(oldnode)
1196 // c:3203-3208 — empty next → error.
1197 if argnode >= preargs.len() {
1198 // c:3203
1199 zerr(
1200 // c:3204
1201 "exec requires a command to execute",
1202 );
1203 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed); // c:3206
1204 error_done = true;
1205 break; // c:3207 goto done
1206 }
1207 // c:3209 — `uremnode(preargs, oldnode)`.
1208 preargs.remove(oldnode);
1209 argnode -= 1; // re-anchor — `argnode` was the post-removed slot
1210 // c:3210-3211 — `--` stops option scan.
1211 if bytes.len() == 2 && IS_DASH(bytes[0] as char) && IS_DASH(bytes[1] as char) {
1212 // c:3210
1213 break; // c:3211
1214 }
1215 // c:3212-3258 — scan flag chars after the leading `-`.
1216 let mut k = 1usize;
1217 while k < bytes.len() && !error_done {
1218 let cmdopt = bytes[k] as char; // c:3212
1219 match cmdopt {
1220 'a' => {
1221 // c:3214 — `-a` ARGV0 override.
1222 if k + 1 < bytes.len() {
1223 // c:3216 — `-aNAME` inline form.
1224 exec_argv0 =
1225 Some(String::from_utf8_lossy(&bytes[k + 1..]).into_owned()); // c:3217
1226 k = bytes.len(); // c:3219 position past end
1227 } else {
1228 // c:3220 — `-a NAME` separate form.
1229 if argnode >= preargs.len() {
1230 // c:3230
1231 zerr(
1232 // c:3231
1233 "exec flag -a requires a parameter",
1234 );
1235 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed); // c:3233
1236 error_done = true;
1237 break; // c:3234 goto done
1238 }
1239 exec_argv0 = Some(preargs[argnode].clone()); // c:3236
1240 preargs.remove(argnode); // c:3239
1241 }
1242 }
1243 'c' => {
1244 // c:3242
1245 cflags |= BINF_CLEARENV; // c:3243
1246 }
1247 'l' => {
1248 // c:3245
1249 cflags |= BINF_DASH; // c:3246
1250 }
1251 _ => {
1252 // c:3248
1253 zerr(
1254 // c:3249
1255 &format!("unknown exec flag -{}", cmdopt),
1256 );
1257 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed); // c:3251
1258 error_done = true;
1259 break; // c:3256
1260 }
1261 }
1262 k += 1;
1263 }
1264 if error_done {
1265 break;
1266 }
1267 }
1268 // c:3263-3274 — zputenv("ARGV0=NAME"). zshrs defers
1269 // the actual `setenv` to the fusevm compiler / external
1270 // exec path; we surface `exec_argv0` via the dispatch
1271 // struct so the caller can apply it before fork+exec.
1272 if let Some(ref a0) = exec_argv0 {
1273 // c:3263 — `remnulargs + untokenize` then setenv.
1274 let cleaned = untokenize(a0); // c:3266-3267
1275 exec_argv0 = Some(cleaned);
1276 }
1277 if error_done {
1278 return execcmd_dispatch {
1279 precmd_skip,
1280 is_builtin,
1281 is_shfunc,
1282 cflags,
1283 use_defpath,
1284 has_command_vv,
1285 exec_argv0,
1286 is_empty_command: false,
1287 };
1288 }
1289 }
1290 // c:3275-3278 — `hn = NULL; if ((cflags & BINF_COMMAND) &&
1291 // unset(POSIXBUILTINS)) break;`. After processing a
1292 // `command` precmd modifier (and its -p/-v/-V flags), the
1293 // C loop exits with hn cleared so the dispatch falls
1294 // through to external lookup. Without this, the next
1295 // iteration would find `command print` → print's builtin
1296 // and dispatch to it; zsh's intentional behaviour is to
1297 // skip builtins under `command` (unless POSIXBUILTINS is
1298 // set, where the loop continues normally).
1299 if (cflags & BINF_COMMAND) != 0 && !isset(POSIXBUILTINS) {
1300 hn = None; // c:3275 hn = NULL
1301 break; // c:3277
1302 }
1303 }
1304 }
1305
1306 // c:3309-3406 — "Empty command" branch. When the precmd-modifier
1307 // walk above strips every word with nothing left to dispatch
1308 // (bare `exec`, bare `noglob`, bare `command`, bare `nocorrect`),
1309 // C falls into `if (!args || empty(args))` at c:3331. Sub-cases:
1310 //
1311 // - redir-present + do_exec → nullexec=1 (continue to run)
1312 // - redir-present + varspc → nullexec=2 (continue)
1313 // - redir-present + no nullcmd → `zerr("redirection with no command")`
1314 // lastval=1, return
1315 // - redir-present + SHNULLCMD → args=[":"]
1316 // - redir-present + readnullcmd → args=[readnullcmd]
1317 // - redir-present + default → args=[nullcmd]
1318 // - NO redir + BINF_PREFIX+COMMAND → lastval=0, return (c:3365-3371)
1319 // - NO redir + default → lastval=cmdoutval, return (c:3372-3406)
1320 //
1321 // zshrs's `execcmd_compile_head` doesn't receive `redir` (it
1322 // takes `args` only). The cases that DEPEND on redirs are handled by
1323 // `compile_zsh.rs::compile_redir` before this dispatch fires; the
1324 // remaining cases collapse into the single `is_empty_command`
1325 // flag below. Both NO-redir sub-cases produce the same observable
1326 // outcome (lastval=0, return without invoking anything), so a
1327 // single flag suffices.
1328 let is_empty_command = precmd_skip >= preargs.len();
1329
1330 // =================== WARNING — DIVERGENCE ====================
1331 // c:3285+: prefork-substitution, magic_assign decision, multio
1332 // setup, varspc evaluation, and the actual execbuiltin /
1333 // runshfunc / execute call. ~1300 lines of interpreter-only
1334 // code, entirely replaced by fusevm bytecode dispatch in
1335 // `src/extensions/compile_zsh.rs::compile_simple` and the
1336 // opcode handlers in `src/fusevm_bridge.rs::register_builtins`.
1337 // The return value below feeds those compile-time decisions.
1338 // =============================================================
1339
1340 let _ = hn;
1341 execcmd_dispatch {
1342 precmd_skip,
1343 is_builtin,
1344 is_shfunc,
1345 cflags,
1346 use_defpath,
1347 has_command_vv,
1348 exec_argv0,
1349 is_empty_command,
1350 }
1351}
1352
1353// =============================================================================
1354// Leaf-function ports — c:283 (parse_string) and below. Added incrementally to
1355// chip at the ~5500 lines of exec.c still un-ported beyond the wordcode
1356// walker (execlist / execpline / execcmd which the fusevm bytecode VM
1357// replaces — see the WARNING block in execcmd_exec).
1358// =============================================================================
1359
1360/// Port of `parse_string(char *s, int reset_lineno)` from `Src/exec.c:283`.
1361///
1362/// C body:
1363/// ```c
1364/// Eprog p; zlong oldlineno;
1365/// zcontext_save();
1366/// inpush(s, INP_LINENO, NULL);
1367/// strinbeg(0);
1368/// oldlineno = lineno;
1369/// if (reset_lineno) lineno = 1;
1370/// p = parse_list();
1371/// lineno = oldlineno;
1372/// if (tok == LEXERR && !lastval) lastval = 1;
1373/// strinend();
1374/// inpop();
1375/// zcontext_restore();
1376/// return p;
1377/// ```
1378///
1379/// Parses an arbitrary string as a zsh command list, returning the
1380/// `Eprog` (compiled wordcode). Used by `getoutput` for `$(cmd)`,
1381/// `bin_eval` for `eval`, and the autoload path.
1382pub fn parse_string(s: &str, reset_lineno: i32) -> Option<eprog> {
1383 // c:285-286
1384 let p: Option<eprog>;
1385 let oldlineno: i64;
1386
1387 zcontext_save(); // c:288
1388 inpush(s, INP_LINENO, None); // c:289
1389 strinbeg(0); // c:290
1390 oldlineno = LEX_LINENO.get() as i64; // c:291
1391 if reset_lineno != 0 {
1392 // c:292
1393 LEX_LINENO.set(1); // c:293
1394 }
1395 p = parse_list(); // c:294
1396 LEX_LINENO.set(oldlineno as u64); // c:295
1397 // c:296-297 — `if (tok == LEXERR && !lastval) lastval = 1;`
1398 if tok() == LEXERR && LASTVAL.load(Ordering::Relaxed) == 0 {
1399 LASTVAL.store(1, Ordering::Relaxed);
1400 }
1401 strinend(); // c:298
1402 inpop(); // c:299
1403 zcontext_restore(); // c:300
1404 p // c:301
1405}
1406
1407/// Port of `int isgooderr(int e, char *dir)` from `Src/exec.c:652`.
1408///
1409/// C body:
1410/// ```c
1411/// /* Maybe the directory was unreadable, or maybe it wasn't even a directory. */
1412/// return ((e != EACCES || !access(dir, X_OK)) &&
1413/// e != ENOENT && e != ENOTDIR);
1414/// ```
1415///
1416/// errno classifier for `execve` failures during PATH search: if the
1417/// errno is EACCES (and the dir is X-accessible) or ENOENT/ENOTDIR,
1418/// it's "expected" (try next PATH entry); otherwise it's a real
1419/// failure worth surfacing.
1420pub fn isgooderr(e: i32, dir: &str) -> bool {
1421 // c:652
1422 // c:Src/exec.c:658-659 — `(e != EACCES || !access(dir, X_OK)) &&
1423 // e != ENOENT && e != ENOTDIR`. C's `access(dir, X_OK)` returns
1424 // 0 on success / -1 on failure. The previous Rust port used
1425 // `metadata().permissions().mode() & 0o111` which reports the
1426 // X bit even when the path doesn't exist as the EFFECTIVE caller
1427 // (root, ACLs, capabilities all flip access() vs raw mode).
1428 // `/no/such/dir` metadata() fails → returned false for
1429 // dir_x_ok, then `!false` = true, giving "good error" for a
1430 // nonexistent path. Use libc::access directly to match C exactly.
1431 let unmeta_dir = unmeta(dir);
1432 let cstr = std::ffi::CString::new(unmeta_dir.as_bytes()).unwrap_or_default();
1433 let access_ok = unsafe { libc::access(cstr.as_ptr(), libc::X_OK) } == 0;
1434 (e != libc::EACCES || access_ok) && e != libc::ENOENT && e != libc::ENOTDIR
1435}
1436
1437/// Port of `int iscom(char *s)` from `Src/exec.c:962`.
1438///
1439/// C body:
1440/// ```c
1441/// struct stat statbuf;
1442/// char *us = unmeta(s);
1443/// return (access(us, X_OK) == 0 && stat(us, &statbuf) >= 0 &&
1444/// S_ISREG(statbuf.st_mode));
1445/// ```
1446///
1447/// True iff `s` names an executable regular file (X-perm + S_IFREG).
1448/// Used by the PATH-search loop in `findcmd` / `search_defpath` to
1449/// validate candidate paths before exec.
1450pub fn iscom(s: &str) -> bool {
1451 // c:962
1452 let us = unmeta(s); // c:965
1453 // c:967-968 — `access(us, X_OK) == 0 && stat(us, &statbuf) >= 0 && S_ISREG(...)`
1454 let cstr = match std::ffi::CString::new(us.as_str()) {
1455 Ok(c) => c,
1456 Err(_) => return false,
1457 };
1458 let x_ok = unsafe { libc::access(cstr.as_ptr(), libc::X_OK) } == 0;
1459 if !x_ok {
1460 return false;
1461 }
1462 let meta = match std::fs::metadata(&us) {
1463 Ok(m) => m,
1464 Err(_) => return false,
1465 };
1466 meta.file_type().is_file()
1467}
1468
1469/// Port of `int isreallycom(Cmdnam cn)` from `Src/exec.c:972-987`.
1470///
1471/// Verify that a hashed/cached cmdnamtab entry still names a real
1472/// external command (X-perm + regular file). For HASHED entries
1473/// (`cn->u.cmd` carries the absolute path), test the path directly;
1474/// otherwise concatenate `name[0] + "/" + nam` and test that.
1475/// Used by `execcmd_exec` to drop stale cmdnamtab hits before they
1476/// turn into a failed `execve` syscall.
1477pub fn isreallycom(cn: &cmdnam) -> bool {
1478 // c:972
1479 let fullnam: String;
1480 if (cn.node.flags & crate::ported::zsh_h::HASHED) != 0 {
1481 // c:977-978 — `strcpy(fullnam, cn->u.cmd);`
1482 fullnam = cn.cmd.clone().unwrap_or_default();
1483 } else if cn.name.is_none() || cn.name.as_ref().unwrap().is_empty() {
1484 // c:979-980 — `if (!cn->u.name) return 0;`
1485 return false;
1486 } else {
1487 // c:982-984 — `strcpy + strcat("/") + strcat(nam)`
1488 let path0 = &cn.name.as_ref().unwrap()[0];
1489 fullnam = format!("{}/{}", path0, cn.node.nam);
1490 }
1491 iscom(&fullnam) // c:986
1492}
1493
1494/// Port of `int isrelative(char *s)` from `Src/exec.c:996`.
1495///
1496/// C body:
1497/// ```c
1498/// if (*s != '/') return 1;
1499/// for (; *s; s++)
1500/// if (*s == '.' && s[-1] == '/' &&
1501/// (s[1] == '/' || s[1] == '\0' ||
1502/// (s[1] == '.' && (s[2] == '/' || s[2] == '\0'))))
1503/// return 1;
1504/// return 0;
1505/// ```
1506///
1507/// True iff `s` either doesn't start with `/` OR contains a `./` or
1508/// `../` component anywhere. Used by `cd` resolution and PATH-cache
1509/// invalidation to detect non-canonical paths.
1510pub fn isrelative(s: &str) -> i32 {
1511 // c:996
1512 let bytes = s.as_bytes();
1513 if bytes.is_empty() || bytes[0] != b'/' {
1514 // c:998
1515 return 1; // c:999
1516 }
1517 // c:1000-1004 — walk for `./` or `../` components.
1518 for i in 1..bytes.len() {
1519 let c = bytes[i];
1520 let prev = bytes[i - 1];
1521 if c == b'.' && prev == b'/' {
1522 let next = bytes.get(i + 1).copied().unwrap_or(0);
1523 if next == b'/' || next == 0 {
1524 // c:1002
1525 return 1;
1526 }
1527 if next == b'.' {
1528 let next2 = bytes.get(i + 2).copied().unwrap_or(0);
1529 if next2 == b'/' || next2 == 0 {
1530 // c:1003
1531 return 1;
1532 }
1533 }
1534 }
1535 }
1536 0 // c:1005
1537}
1538
1539/// Port of `void setunderscore(char *str)` from `Src/exec.c:2652`.
1540///
1541/// C body:
1542/// ```c
1543/// queue_signals();
1544/// if (str && *str) {
1545/// size_t l = strlen(str) + 1, nl = (l + 31) & ~31;
1546/// if (nl > underscorelen || (underscorelen - nl) > 64) {
1547/// zfree(zunderscore, underscorelen);
1548/// zunderscore = (char *) zalloc(underscorelen = nl);
1549/// }
1550/// strcpy(zunderscore, str);
1551/// underscoreused = l;
1552/// } else {
1553/// ... reset zunderscore = "" ...
1554/// }
1555/// unqueue_signals();
1556/// ```
1557///
1558/// Sets the `$_` global to the last argument of the most recent
1559/// command. Called from `execcmd_exec` (c:3936) per `last_status`
1560/// update; mirrored in zshrs by the fusevm `Op::Exec` handler.
1561pub fn setunderscore(str: &str) {
1562 // c:2652
1563 queue_signals(); // c:2654
1564 if !str.is_empty() {
1565 // c:2655 `if (str && *str)`
1566 // c:2656-2663 — copy str into zunderscore; track byte length in underscoreused.
1567 let mut zu = zunderscore.lock().unwrap();
1568 *zu = str.to_string();
1569 let nl = (str.len() + 1 + 31) & !31; // c:2656
1570 underscorelen.store(nl, Ordering::Relaxed); // c:2660
1571 underscoreused.store((str.len() + 1) as i32, Ordering::Relaxed);
1572 // c:2663
1573 } else {
1574 // c:2664
1575 let mut zu = zunderscore.lock().unwrap();
1576 zu.clear(); // c:2669 `*zunderscore = '\0';`
1577 underscoreused.store(1, Ordering::Relaxed); // c:2670
1578 }
1579 unqueue_signals(); // c:2672
1580}
1581
1582/// Port of `int mpipe(int *pp)` from `Src/exec.c:5160`.
1583///
1584/// C body:
1585/// ```c
1586/// if (pipe(pp) < 0) {
1587/// zerr("pipe failed: %e", errno);
1588/// return -1;
1589/// }
1590/// pp[0] = movefd(pp[0]);
1591/// pp[1] = movefd(pp[1]);
1592/// return 0;
1593/// ```
1594///
1595/// libc `pipe(2)` wrapper that pushes both ends out of the reserved-
1596/// fd range via `movefd`. Used by `getpipe` / `getproc` /
1597/// `spawnpipes` for process substitution and pipeline wiring.
1598pub fn mpipe(pp: &mut [i32; 2]) -> i32 {
1599 // c:5160
1600 let mut fds: [libc::c_int; 2] = [-1; 2];
1601 if unsafe { libc::pipe(fds.as_mut_ptr()) } < 0 {
1602 // c:5162
1603 zerr(&format!(
1604 // c:5163
1605 "pipe failed: {}",
1606 std::io::Error::last_os_error()
1607 ));
1608 return -1; // c:5164
1609 }
1610 pp[0] = movefd(fds[0]); // c:5166
1611 pp[1] = movefd(fds[1]); // c:5167
1612 0 // c:5168
1613}
1614
1615/// Port of `static const char *const ANONYMOUS_FUNCTION_NAME = "(anon)";`
1616/// from `Src/exec.c:5289`. Anonymous-function name marker used by
1617/// `is_anonymous_function_name`, `execfuncdef`, and `doshfunc` for
1618/// `() { ... }` anonymous function dispatch.
1619pub const ANONYMOUS_FUNCTION_NAME: &str = "(anon)";
1620
1621/// Port of `int is_anonymous_function_name(const char *name)` from
1622/// `Src/exec.c:5300`.
1623///
1624/// C body:
1625/// ```c
1626/// return !strcmp(name, ANONYMOUS_FUNCTION_NAME);
1627/// ```
1628///
1629/// True iff the name equals the `"(anon)"` sentinel. Used by zprof
1630/// reporting and `whence -v` to skip / annotate anonymous functions.
1631pub fn is_anonymous_function_name(name: &str) -> i32 {
1632 // c:5300
1633 if name == ANONYMOUS_FUNCTION_NAME {
1634 // c:5302
1635 1
1636 } else {
1637 0
1638 }
1639}
1640
1641/// Port of `void execsave(void)` from `Src/exec.c:6438`.
1642///
1643/// C body:
1644/// ```c
1645/// struct execstack *es = (struct execstack *) zalloc(sizeof(struct execstack));
1646/// es->list_pipe_pid = list_pipe_pid;
1647/// es->nowait = nowait;
1648/// es->pline_level = pline_level;
1649/// es->list_pipe_child = list_pipe_child;
1650/// es->list_pipe_job = list_pipe_job;
1651/// strcpy(es->list_pipe_text, list_pipe_text);
1652/// es->lastval = lastval;
1653/// es->noeval = noeval;
1654/// es->badcshglob = badcshglob;
1655/// es->cmdoutpid = cmdoutpid;
1656/// es->cmdoutval = cmdoutval;
1657/// es->use_cmdoutval = use_cmdoutval;
1658/// es->procsubstpid = procsubstpid;
1659/// es->trap_return = trap_return;
1660/// es->trap_state = trap_state;
1661/// es->trapisfunc = trapisfunc;
1662/// es->traplocallevel = traplocallevel;
1663/// es->noerrs = noerrs;
1664/// es->this_noerrexit = this_noerrexit;
1665/// es->underscore = ztrdup(zunderscore);
1666/// es->next = exstack;
1667/// exstack = es;
1668/// noerrs = cmdoutpid = 0;
1669/// ```
1670///
1671/// Snapshot every transient exec-context global onto the `exstack`
1672/// linked list so a signal-handler / trap-firing nested eval can
1673/// scribble freely; `execrestore` pops the frame back. Called by
1674/// `dotrap` (signals.c) and the trap-firing entry in `execlist`.
1675pub fn execsave() {
1676 // c:6438
1677 // c:6442 — `es = zalloc(sizeof(execstack));`
1678 let mut es = Box::new(execstack {
1679 // c:6442
1680 next: None,
1681 list_pipe_pid: list_pipe_pid.load(Ordering::Relaxed), // c:6443
1682 nowait: nowait.load(Ordering::Relaxed), // c:6444
1683 pline_level: pline_level.load(Ordering::Relaxed), // c:6445
1684 list_pipe_child: list_pipe_child.load(Ordering::Relaxed), // c:6446
1685 list_pipe_job: list_pipe_job.load(Ordering::Relaxed), // c:6447
1686 list_pipe_text: {
1687 // c:6448 — `strcpy(es->list_pipe_text, list_pipe_text);`
1688 let mut buf = [0u8; JOBTEXTSIZE];
1689 if let Ok(s) = LIST_PIPE_TEXT.lock() {
1690 let bytes = s.as_bytes();
1691 let n = bytes.len().min(JOBTEXTSIZE - 1);
1692 buf[..n].copy_from_slice(&bytes[..n]);
1693 }
1694 buf
1695 },
1696 lastval: LASTVAL.load(Ordering::Relaxed), // c:6449
1697 // c:6450 — `es->noeval = noeval;`. Snapshot math.c's
1698 // `int noeval` (the parse-only side-effect-skip counter)
1699 // via math.rs's pub accessor.
1700 noeval: crate::ported::math::m_noeval(),
1701 // c:6451 — `es->badcshglob = badcshglob;`. Snapshot the
1702 // csh-glob diagnostic counter (glob.c:103 / glob.rs
1703 // BADCSHGLOB) so nested eval / trap dispatch doesn't disturb
1704 // the outer command's per-line accounting.
1705 badcshglob: crate::ported::glob::BADCSHGLOB.load(Ordering::Relaxed), // c:6451
1706 cmdoutpid: cmdoutpid.load(Ordering::Relaxed), // c:6452
1707 cmdoutval: cmdoutval.load(Ordering::Relaxed), // c:6453
1708 use_cmdoutval: use_cmdoutval.load(Ordering::Relaxed), // c:6454
1709 procsubstpid: procsubstpid.load(Ordering::Relaxed), // c:6455
1710 trap_return: TRAP_RETURN.load(Ordering::Relaxed), // c:6456
1711 trap_state: TRAP_STATE.load(Ordering::Relaxed), // c:6457
1712 trapisfunc: trapisfunc.load(Ordering::Relaxed), // c:6458
1713 traplocallevel: traplocallevel.load(Ordering::Relaxed), // c:6459
1714 noerrs: noerrs.load(Ordering::Relaxed), // c:6460
1715 this_noerrexit: this_noerrexit.load(Ordering::Relaxed), // c:6461
1716 // c:6462 — `es->underscore = ztrdup(zunderscore);`
1717 underscore: Some(zunderscore.lock().unwrap().clone()),
1718 });
1719 // c:6463-6464 — `es->next = exstack; exstack = es;`
1720 let mut head = exstack.lock().unwrap();
1721 es.next = head.take();
1722 *head = Some(es);
1723 // c:6465 — `noerrs = cmdoutpid = 0;`
1724 noerrs.store(0, Ordering::Relaxed);
1725 cmdoutpid.store(0, Ordering::Relaxed);
1726}
1727
1728/// Port of `void execrestore(void)` from `Src/exec.c:6470`.
1729///
1730/// C body:
1731/// ```c
1732/// struct execstack *en = exstack;
1733/// DPUTS(!exstack, "BUG: execrestore() without execsave()");
1734/// queue_signals();
1735/// exstack = exstack->next;
1736/// list_pipe_pid = en->list_pipe_pid;
1737/// nowait = en->nowait;
1738/// pline_level = en->pline_level;
1739/// list_pipe_child = en->list_pipe_child;
1740/// list_pipe_job = en->list_pipe_job;
1741/// strcpy(list_pipe_text, en->list_pipe_text);
1742/// lastval = en->lastval;
1743/// noeval = en->noeval;
1744/// badcshglob = en->badcshglob;
1745/// cmdoutpid = en->cmdoutpid;
1746/// cmdoutval = en->cmdoutval;
1747/// use_cmdoutval = en->use_cmdoutval;
1748/// procsubstpid = en->procsubstpid;
1749/// trap_return = en->trap_return;
1750/// trap_state = en->trap_state;
1751/// trapisfunc = en->trapisfunc;
1752/// traplocallevel = en->traplocallevel;
1753/// noerrs = en->noerrs;
1754/// this_noerrexit = en->this_noerrexit;
1755/// setunderscore(en->underscore);
1756/// zsfree(en->underscore);
1757/// free(en);
1758/// unqueue_signals();
1759/// ```
1760///
1761/// Pop the top `execstack` frame and restore every transient
1762/// exec-context global. Inverse of `execsave`.
1763pub fn execrestore() {
1764 // c:6470
1765 let mut head = exstack.lock().unwrap();
1766 let en = match head.take() {
1767 // c:6472 + c:6477
1768 Some(en) => en,
1769 None => {
1770 // c:6474 — DPUTS(!exstack, "BUG: execrestore() without execsave()")
1771 crate::DPUTS!(true, "BUG: execrestore() without execsave()");
1772 return;
1773 }
1774 };
1775 queue_signals(); // c:6476
1776 *head = en.next; // c:6477
1777 drop(head); // release lock before scalar restores
1778
1779 list_pipe_pid.store(en.list_pipe_pid, Ordering::Relaxed); // c:6479
1780 nowait.store(en.nowait, Ordering::Relaxed); // c:6480
1781 pline_level.store(en.pline_level, Ordering::Relaxed); // c:6481
1782 list_pipe_child.store(en.list_pipe_child, Ordering::Relaxed); // c:6482
1783 list_pipe_job.store(en.list_pipe_job, Ordering::Relaxed); // c:6483
1784 // c:6484 — `strcpy(list_pipe_text, en->list_pipe_text);`.
1785 if let Ok(mut s) = LIST_PIPE_TEXT.lock() {
1786 let nul = en
1787 .list_pipe_text
1788 .iter()
1789 .position(|&b| b == 0)
1790 .unwrap_or(JOBTEXTSIZE);
1791 *s = String::from_utf8_lossy(&en.list_pipe_text[..nul]).into_owned();
1792 }
1793 LASTVAL.store(en.lastval, Ordering::Relaxed); // c:6485
1794 // c:6486 — `noeval = en->noeval;`. Restore math.c's noeval
1795 // counter from the saved frame.
1796 crate::ported::math::m_noeval_set(en.noeval);
1797 // c:6487 — `badcshglob = en->badcshglob;`. Restore the csh-glob
1798 // diagnostic counter saved on entry.
1799 crate::ported::glob::BADCSHGLOB.store(en.badcshglob, Ordering::Relaxed);
1800 cmdoutpid.store(en.cmdoutpid, Ordering::Relaxed); // c:6488
1801 cmdoutval.store(en.cmdoutval, Ordering::Relaxed); // c:6489
1802 use_cmdoutval.store(en.use_cmdoutval, Ordering::Relaxed); // c:6490
1803 procsubstpid.store(en.procsubstpid, Ordering::Relaxed); // c:6491
1804 TRAP_RETURN.store(en.trap_return, Ordering::Relaxed); // c:6492
1805 TRAP_STATE.store(en.trap_state, Ordering::Relaxed); // c:6493
1806 trapisfunc.store(en.trapisfunc, Ordering::Relaxed); // c:6494
1807 traplocallevel.store(en.traplocallevel, Ordering::Relaxed); // c:6495
1808 noerrs.store(en.noerrs, Ordering::Relaxed); // c:6496
1809 this_noerrexit.store(en.this_noerrexit, Ordering::Relaxed); // c:6497
1810 // c:6498-6499 — `setunderscore(en->underscore); zsfree(en->underscore);`
1811 if let Some(ref u) = en.underscore {
1812 setunderscore(u); // c:6498
1813 }
1814 // c:6500 — `free(en);` — handled by Box drop when `en` falls out of scope.
1815 unqueue_signals(); // c:6502
1816}
1817
1818/// Port of `void execstring(char *s, int dont_change_job, int exiting,
1819/// char *context)` from `Src/exec.c:1228`.
1820///
1821/// C body:
1822/// ```c
1823/// Eprog prog;
1824/// pushheap();
1825/// if (isset(VERBOSE)) {
1826/// zputs(s, stderr);
1827/// fputc('\n', stderr);
1828/// fflush(stderr);
1829/// }
1830/// if ((prog = parse_string(s, 0)))
1831/// execode(prog, dont_change_job, exiting, context);
1832/// popheap();
1833/// ```
1834///
1835/// Public entry — execute an arbitrary string as a zsh command list.
1836/// Called by `eval`, `.`/`source`, `trap` action firing, autoload
1837/// body executors, command substitution body runners.
1838///
1839/// =================== WARNING — DIVERGENCE ====================
1840/// The C path is `parse_string` → `execode` → `execlist` (wordcode
1841/// walker). zshrs replaces `execode/execlist` with the fusevm
1842/// bytecode VM at `crate::vm_helper::ShellExecutor::execute_script_zsh_pipeline`.
1843/// Faithful port: VERBOSE banner + pushheap/popheap intact; the
1844/// parse+execute chain delegates to the fusevm entry. When `execlist`
1845/// lands as a strict 1:1 port, swap the delegate for the canonical
1846/// chain.
1847/// =============================================================
1848pub fn execstring(s: &str, _dont_change_job: i32, _exiting: i32, _context: &str) {
1849 // c:1228
1850 pushheap(); // c:1232
1851 // c:1233-1237 — VERBOSE banner.
1852 if isset(VERBOSE) {
1853 // c:1233
1854 let mut stderr = std::io::stderr().lock();
1855 use std::io::Write;
1856 let _ = stderr.write_all(s.as_bytes()); // c:1234 zputs(s, stderr)
1857 let _ = stderr.write_all(b"\n"); // c:1235
1858 let _ = stderr.flush(); // c:1236
1859 }
1860 // c:1238-1239 — parse + execode. zshrs delegates the parse+VM
1861 // chain to the fusevm pipeline via the exec_hooks fn-ptr
1862 // installed by fusevm_bridge at startup. Direct
1863 // `with_executor` / ShellExecutor reach-in from src/ported/ is
1864 // forbidden — see memory feedback_no_exec_script_from_ported.
1865 let _ = crate::ported::exec::execute_script_zsh_pipeline(s);
1866 popheap(); // c:1240
1867}
1868
1869/// Port of `void runshfunc(Eprog prog, FuncWrap wrap, char *name)` from
1870/// `Src/exec.c:6166`. The inner shell-function executor — fires
1871/// module-registered wrapper handlers around the function body, with
1872/// `$_` (zunderscore) save/restore and a paramscope push/pop around
1873/// the wordcode walk.
1874///
1875/// C control flow:
1876/// ```c
1877/// queue_signals();
1878/// ou = zalloc(ouu = underscoreused);
1879/// if (ou) memcpy(ou, zunderscore, underscoreused);
1880/// while (wrap) { // wrapper chain
1881/// wrap->module->wrapper++;
1882/// cont = wrap->handler(prog, wrap->next, name);
1883/// wrap->module->wrapper--;
1884/// if (!wrap->module->wrapper && (wrap->module->node.flags & MOD_UNLOAD))
1885/// unload_module(wrap->module);
1886/// if (!cont) { // wrapper handled it
1887/// if (ou) zfree(ou, ouu);
1888/// unqueue_signals();
1889/// return;
1890/// }
1891/// wrap = wrap->next;
1892/// }
1893/// startparamscope();
1894/// execode(prog, 1, 0, "shfunc");
1895/// if (ou) { setunderscore(ou); zfree(ou, ouu); }
1896/// endparamscope();
1897/// unqueue_signals();
1898/// ```
1899///
1900/// (a) `wrap->module->wrapper++/--` (c:6178/6180) wired against
1901/// `module::MODULESTAB.modules[name].wrapper` (i32), looked up
1902/// by `wrap.module.node.nam`. Recursive unload during handler
1903/// defers correctly.
1904/// (b) `unload_module(wrap->module)` (c:6184) wired via
1905/// `modulestab.unload_module(name)` when wrapper hits 0 AND
1906/// MOD_UNLOAD flag is set on the module's hashnode.
1907/// (c) `execode(prog, 1, 0, "shfunc")` (c:6195) ported at
1908/// exec.rs:6047. Body uses execode for the no-source
1909/// (compiled-wordcode) branch and fusevm for the
1910/// source-preserving (autoloaded) branch per cache coherence.
1911/// (d) `startparamscope/endparamscope` Rust signatures take
1912/// `&mut HashTable` (params.rs:7425/7435). We pass the global
1913/// paramtab handle via the params crate.
1914pub fn runshfunc(prog: &eprog, mut wrap: Option<&funcwrap>, name: &str) {
1915 // c:6166
1916 queue_signals(); // c:6171
1917 // c:6173-6175 — snapshot zunderscore into `ou`.
1918 let ouu = underscoreused.load(Ordering::Relaxed) as usize;
1919 let ou: Option<String> = if ouu > 0 {
1920 // c:6174
1921 Some(zunderscore.lock().unwrap().clone()) // c:6175
1922 } else {
1923 None
1924 };
1925 // c:6177-6193 — wrapper chain walk.
1926 while let Some(w) = wrap {
1927 // c:6177
1928 // c:6178 — wrap->module->wrapper++ (WARNING a).
1929 // c:6178 — `wrap->module->wrapper++;` — bump refcount so a
1930 // recursive unload during the handler defers until we return.
1931 let mod_name: Option<String> = w.module.as_ref().map(|m| m.node.nam.clone());
1932 if let Some(ref n) = mod_name {
1933 if let Ok(mut tab) = crate::ported::module::MODULESTAB.lock() {
1934 if let Some(m) = tab.modules.get_mut(n) {
1935 m.wrapper += 1;
1936 }
1937 }
1938 }
1939 let cont = if let Some(h) = w.handler {
1940 // c:6179 — WrapFunc takes Eprog by value + next FuncWrap by value.
1941 // We pass an empty next sentinel (wrapper-chain walks are
1942 // single-step in zshrs — see chain-walk comment below).
1943 let next_sentinel = Box::new(funcwrap {
1944 next: None,
1945 flags: 0,
1946 handler: None,
1947 module: None,
1948 });
1949 h(Box::new(prog.clone()), next_sentinel, name)
1950 } else {
1951 1
1952 };
1953 // c:6180 — `wrap->module->wrapper--;`
1954 // c:6182-6184 — `if (!wrap->module->wrapper && (flags & MOD_UNLOAD)) unload_module(wrap->module);`
1955 if let Some(ref n) = mod_name {
1956 let should_unload = {
1957 if let Ok(mut tab) = crate::ported::module::MODULESTAB.lock() {
1958 if let Some(m) = tab.modules.get_mut(n) {
1959 m.wrapper -= 1;
1960 m.wrapper == 0 && (m.node.flags & crate::ported::zsh_h::MOD_UNLOAD) != 0
1961 } else {
1962 false
1963 }
1964 } else {
1965 false
1966 }
1967 };
1968 if should_unload {
1969 if let Ok(mut tab) = crate::ported::module::MODULESTAB.lock() {
1970 let _ = tab.unload_module(n); // c:6184
1971 }
1972 }
1973 }
1974 if cont == 0 {
1975 // c:6186 — wrapper claimed the call.
1976 unqueue_signals(); // c:6189
1977 return; // c:6190
1978 }
1979 // c:6192 — wrap = wrap->next; the linked-list step requires
1980 // owning the next ref; the borrowed iteration breaks here.
1981 // Wrapper chains > 1 are extremely rare; we stop at the
1982 // first to avoid a Box::leak.
1983 wrap = None;
1984 }
1985 // c:6194 — startparamscope (just inc_locallevel internally).
1986 inc_locallevel();
1987 // c:6195 — `execode(prog, 1, 0, "shfunc");` — run the function
1988 // body. Prefer the canonical execode (exec.rs:6047) which walks
1989 // execlist on a fresh estate over the prog. If prog.strs carries
1990 // the original source (autoloaded ported that the lazy-compile path
1991 // populated), route through the fusevm pipeline for cache
1992 // coherence with execstring.
1993 if let Some(ref src) = prog.strs {
1994 let _ = crate::ported::exec::execute_script_zsh_pipeline(src);
1995 } else {
1996 // Pure wordcode body — drive via the canonical execode.
1997 execode_wordcode(Box::new(prog.clone()), 1, 0, "shfunc");
1998 let _ = name;
1999 }
2000 if let Some(ou_str) = ou {
2001 // c:6196
2002 setunderscore(&ou_str); // c:6197
2003 // c:6198 — zfree(ou, ouu) — Rust drops on scope exit.
2004 }
2005 endparamscope(); // c:6200
2006 // c:6141 — deferred-exit gate. After endparamscope() unwinds the
2007 // function's local scope (locallevel--), check whether an exit
2008 // queued inside the function has reached its target scope:
2009 // if (exit_pending && exit_level >= locallevel+1 && !in_exit_trap)
2010 // The `+1` accounts for endparamscope having already happened
2011 // here (locallevel is already one less than when exit_level was
2012 // captured at c:5890). When the gate fires:
2013 // - locallevel > forklevel: still in a nested function — force
2014 // the outer frame to return too (retflag=1, breaks=loops).
2015 // - locallevel <= forklevel: out of all functions — actually
2016 // exit the shell now via zexit(exit_val, ZEXIT_NORMAL).
2017 // `in_exit_trap` (c:Src/signals.c:63 — `int in_exit_trap;`) is the
2018 // EXIT-trap reentry counter. dotrap at signals.c:1272/1277 wraps
2019 // SIGEXIT handler dispatch with ++/--, so an exit issued FROM an
2020 // EXIT trap shouldn't re-trigger the gate (or the trap would
2021 // recurse). zshrs's signals::in_exit_trap is the canonical port
2022 // surface — read it directly here.
2023 let exit_pending = crate::ported::builtin::EXIT_PENDING.load(Ordering::Relaxed);
2024 let exit_level = crate::ported::builtin::EXIT_LEVEL.load(Ordering::Relaxed);
2025 let cur_locallevel = locallevel.load(Ordering::Relaxed) as i32;
2026 let cur_forklevel = FORKLEVEL.load(Ordering::Relaxed);
2027 let in_exit_trap = crate::ported::signals::in_exit_trap.load(Ordering::Relaxed); // c:Src/signals.c:63
2028 if exit_pending != 0 && exit_level >= cur_locallevel + 1 && in_exit_trap == 0 {
2029 // c:6141
2030 if cur_locallevel > cur_forklevel {
2031 // c:6143 — still inside a nested function: keep unwinding.
2032 RETFLAG.store(1, Ordering::Relaxed); // c:6144
2033 BREAKS.store(LOOPS.load(Ordering::Relaxed), Ordering::Relaxed); // c:6145
2034 } else {
2035 // c:6151 — out of all functions: exit for real.
2036 crate::ported::builtin::STOPMSG.store(1, Ordering::Relaxed); // c:6151
2037 let val = EXIT_VAL.load(Ordering::Relaxed);
2038 crate::ported::builtin::zexit(val, crate::ported::zsh_h::ZEXIT_NORMAL);
2039 // c:6152
2040 }
2041 }
2042 unqueue_signals(); // c:6202
2043}
2044
2045/// Port of `Emulation_options sticky_emulation_dup(Emulation_options src,
2046/// int useheap)` from `Src/exec.c:5501`.
2047///
2048/// C body (`useheap` selects between heap-arena and permanent zalloc;
2049/// Rust collapses both into owned `Box` clones):
2050/// ```c
2051/// Emulation_options newsticky = useheap ?
2052/// hcalloc(sizeof(*src)) : zshcalloc(sizeof(*src));
2053/// newsticky->emulation = src->emulation;
2054/// if (src->n_on_opts) {
2055/// size_t sz = src->n_on_opts * sizeof(*src->on_opts);
2056/// newsticky->n_on_opts = src->n_on_opts;
2057/// newsticky->on_opts = useheap ? zhalloc(sz) : zalloc(sz);
2058/// memcpy(newsticky->on_opts, src->on_opts, sz);
2059/// }
2060/// if (src->n_off_opts) {
2061/// size_t sz = src->n_off_opts * sizeof(*src->off_opts);
2062/// newsticky->n_off_opts = src->n_off_opts;
2063/// newsticky->off_opts = useheap ? zhalloc(sz) : zalloc(sz);
2064/// memcpy(newsticky->off_opts, src->off_opts, sz);
2065/// }
2066/// return newsticky;
2067/// ```
2068///
2069/// Deep-clone a sticky emulation struct. Used by `shfunc_set_sticky`
2070/// at function-def time to snapshot the pending `sticky` global so
2071/// the function carries its own immutable copy.
2072pub fn sticky_emulation_dup(src: &emulation_options, _useheap: i32) -> Emulation_options {
2073 // c:5501
2074 // c:5503-5505 — `newsticky = hcalloc/zshcalloc; newsticky->emulation = src->emulation;`
2075 let mut newsticky = Box::new(emulation_options {
2076 emulation: src.emulation, // c:5505
2077 n_on_opts: 0,
2078 n_off_opts: 0,
2079 on_opts: Vec::new(),
2080 off_opts: Vec::new(),
2081 });
2082 // c:5506-5511 — copy on_opts.
2083 if src.n_on_opts != 0 {
2084 // c:5506
2085 newsticky.n_on_opts = src.n_on_opts; // c:5508
2086 newsticky.on_opts = src.on_opts.clone(); // c:5510 memcpy
2087 }
2088 // c:5512-5517 — copy off_opts.
2089 if src.n_off_opts != 0 {
2090 // c:5512
2091 newsticky.n_off_opts = src.n_off_opts; // c:5514
2092 newsticky.off_opts = src.off_opts.clone(); // c:5516 memcpy
2093 }
2094 newsticky // c:5519
2095}
2096
2097/// Port of `void shfunc_set_sticky(Shfunc shf)` from `Src/exec.c:5527`.
2098///
2099/// C body:
2100/// ```c
2101/// if (sticky)
2102/// shf->sticky = sticky_emulation_dup(sticky, 0);
2103/// else
2104/// shf->sticky = NULL;
2105/// ```
2106///
2107/// Stamp the function with the current pending sticky-emulation
2108/// snapshot (deep-copy via `sticky_emulation_dup`), or clear it.
2109pub fn shfunc_set_sticky(shf: &mut shfunc) {
2110 // c:5527
2111 let sticky_guard = sticky.lock().unwrap();
2112 if let Some(ref s) = *sticky_guard {
2113 // c:5529
2114 shf.sticky = Some(sticky_emulation_dup(s, 0)); // c:5530
2115 } else {
2116 // c:5531
2117 shf.sticky = None; // c:5532
2118 }
2119}
2120
2121/// Port of `static char *search_defpath(char *cmd, char *pbuf, int plen)`
2122/// from `Src/exec.c:691`.
2123///
2124/// Walk DEFAULT_PATH for an executable `<dir>/<cmd>` regular file.
2125/// Used by `command -p` to bypass the user's `$PATH` and search the
2126/// system default (`/bin:/usr/bin:...`).
2127pub fn search_defpath(cmd: &str, plen: usize) -> Option<String> {
2128 // c:691
2129 // c:695 — `for (ps = DEFAULT_PATH; ps; ps = pe ? pe+1 : NULL)`.
2130 for ps in DEFAULT_PATH.split(':') {
2131 // c:695
2132 // c:697 — `if (*ps == '/')`.
2133 if !ps.starts_with('/') {
2134 continue;
2135 }
2136 // c:700-707 — PATH_MAX bounds check on `<dir>` segment.
2137 if ps.len() >= plen {
2138 // c:700 / c:704
2139 continue; // c:701 / c:705
2140 }
2141 // c:708 — `*s++ = '/';`. c:709-710 bounds check on `<dir>/<cmd>`.
2142 let full_len = ps.len() + 1 + cmd.len();
2143 if full_len >= plen {
2144 // c:709
2145 continue; // c:710
2146 }
2147 let buf = format!("{}/{}", ps, cmd); // c:711 `strucpy(&s, cmd);`
2148 // c:712 — `if (iscom(pbuf)) return pbuf;`
2149 if iscom(&buf) {
2150 // c:712
2151 return Some(buf); // c:713
2152 }
2153 }
2154 None // c:716
2155}
2156
2157/// Port of `static int checkclobberparam(struct redir *f)` from
2158/// `Src/exec.c:2178`.
2159///
2160/// C body:
2161/// ```c
2162/// struct value vbuf; Value v;
2163/// char *s = f->varid; int fd;
2164/// if (!s) return 1;
2165/// if (!(v = getvalue(&vbuf, &s, 0))) return 1;
2166/// if (v->pm->node.flags & PM_READONLY) {
2167/// zwarn("can't allocate file descriptor to readonly parameter %s",
2168/// f->varid);
2169/// errno = 0;
2170/// return 0;
2171/// }
2172/// /* We can't clobber the value in the parameter if it's
2173/// * already an opened file descriptor */
2174/// if (!isset(CLOBBER) && (s = getstrvalue(v)) &&
2175/// (fd = (int)zstrtol(s, &s, 10)) >= 0 && !*s &&
2176/// fd <= max_zsh_fd && fdtable[fd] == FDT_EXTERNAL) {
2177/// zwarn("can't clobber parameter %s containing file descriptor %d",
2178/// f->varid, fd);
2179/// errno = 0;
2180/// return 0;
2181/// }
2182/// return 1;
2183/// ```
2184///
2185/// Validate that `f->varid` (the `{var}>file` brace-FD form's var
2186/// name) is writable and (under NOCLOBBER) doesn't currently hold an
2187/// FDT_EXTERNAL fd number. Returns 1 on OK, 0 on refusal (zwarn
2188/// already emitted).
2189///
2190/// NOCLOBBER + FDT_EXTERNAL clause now ported (c:2199-2213). When
2191/// NOCLOBBER is set and the param's value is the fd-number of an
2192/// FDT_EXTERNAL-marked fd in the fdtable, refuse with a warning so
2193/// the existing fd doesn't get clobbered by the upcoming open(2).
2194pub fn checkclobberparam(f: &redir) -> i32 {
2195 // c:2178
2196 // c:2182 — `char *s = f->varid;`
2197 let s = match &f.varid {
2198 Some(v) => v.clone(),
2199 None => return 1, // c:2185-2186 — `if (!s) return 1;`
2200 };
2201 // c:2186 — `if (!(v = getvalue(&vbuf, &s, 0))) return 1;`
2202 let mut vbuf = crate::ported::zsh_h::value {
2203 pm: None,
2204 arr: Vec::new(),
2205 scanflags: 0,
2206 valflags: 0,
2207 start: 0,
2208 end: 0,
2209 };
2210 let mut cursor: &str = s.as_str();
2211 let v_opt = crate::ported::params::getvalue(Some(&mut vbuf), &mut cursor, 0);
2212 if v_opt.is_none() {
2213 return 1; // c:2187
2214 }
2215 // c:2188-2197 — readonly refusal via v->pm->node.flags.
2216 let readonly = vbuf
2217 .pm
2218 .as_ref()
2219 .map(|p| (p.node.flags as u32 & PM_READONLY) != 0)
2220 .unwrap_or(false);
2221 if readonly {
2222 // c:2191
2223 zwarn(&format!(
2224 // c:2192
2225 "can't allocate file descriptor to readonly parameter {}",
2226 s
2227 ));
2228 // c:2195 — `errno = 0;` not flagged as a system error.
2229 return 0; // c:2196
2230 }
2231 // c:2199-2213 — NOCLOBBER + FDT_EXTERNAL refusal: if NOCLOBBER set
2232 // AND the param holds a valid fd that's already in our fdtable as
2233 // FDT_EXTERNAL (allocated by sysopen / coproc / etc.), refuse the
2234 // open so we don't clobber it.
2235 if !isset(CLOBBER) {
2236 // c:2201 — `getstrvalue(v)` — read the param's string form.
2237 let val_str = crate::ported::params::getstrvalue(Some(&mut vbuf));
2238 if let Ok(fd) = val_str.trim().parse::<i32>() {
2239 // c:2202 — `if (fd <= max_zsh_fd && fdtable[fd] == FDT_EXTERNAL)`
2240 let max_fd = MAX_ZSH_FD.load(Ordering::Relaxed);
2241 if fd >= 0 && fd <= max_fd {
2242 let kind = fdtable_get(fd);
2243 if kind == FDT_EXTERNAL {
2244 zwarn(&format!("{}: file descriptor {} already open", s, fd)); // c:2206-2210
2245 return 0; // c:2211
2246 }
2247 }
2248 }
2249 }
2250 1 // c:2214
2251}
2252
2253/// Port of `static int clobber_open(struct redir *f)` from
2254/// `Src/exec.c:2221`.
2255///
2256/// C body:
2257/// ```c
2258/// struct stat buf;
2259/// int fd, oerrno;
2260/// char *ufname = unmeta(f->name);
2261/// /* If clobbering, just open. */
2262/// if (isset(CLOBBER) || IS_CLOBBER_REDIR(f->type))
2263/// return open(ufname, O_WRONLY | O_CREAT | O_TRUNC | O_NOCTTY, 0666);
2264/// /* If not clobbering, attempt to create file exclusively. */
2265/// if ((fd = open(ufname, O_WRONLY | O_CREAT | O_EXCL | O_NOCTTY, 0666)) >= 0)
2266/// return fd;
2267/// /* If that fails, we are still allowed to open non-regular files. */
2268/// oerrno = errno;
2269/// if ((fd = open(ufname, O_WRONLY | O_NOCTTY)) != -1) {
2270/// if (!fstat(fd, &buf)) {
2271/// if (!S_ISREG(buf.st_mode)) return fd;
2272/// /* CLOBBER_EMPTY allows re-use of empty regular files. */
2273/// if (isset(CLOBBEREMPTY) && buf.st_size == 0) return fd;
2274/// }
2275/// close(fd);
2276/// }
2277/// errno = oerrno;
2278/// return -1;
2279/// ```
2280///
2281/// Open the redir target for write with the NOCLOBBER rules:
2282/// - CLOBBER set or `>|` form → just open with O_TRUNC
2283/// - Otherwise → try O_EXCL first; on EEXIST, only allow non-regular
2284/// files (FIFOs, devices, sockets) OR empty regular files under
2285/// CLOBBEREMPTY.
2286pub fn clobber_open(f: &redir) -> i32 {
2287 // c:2221
2288 let ufname_owned = unmeta(f.name.as_deref().unwrap_or("")); // c:2225
2289 let ufname = match std::ffi::CString::new(ufname_owned.as_str()) {
2290 Ok(c) => c,
2291 Err(_) => return -1,
2292 };
2293 // c:2228-2230 — clobber path: just open + truncate.
2294 if isset(CLOBBER) || IS_CLOBBER_REDIR(f.typ) {
2295 // c:2228
2296 // c:2229 — `open(ufname, O_WRONLY|O_CREAT|O_TRUNC|O_NOCTTY, 0666)`
2297 let fd = unsafe {
2298 libc::open(
2299 ufname.as_ptr(),
2300 libc::O_WRONLY | libc::O_CREAT | libc::O_TRUNC | libc::O_NOCTTY,
2301 0o666 as libc::c_uint,
2302 )
2303 };
2304 return fd; // c:2230
2305 }
2306 // c:2233-2235 — try O_EXCL create first.
2307 let fd = unsafe {
2308 // c:2233
2309 libc::open(
2310 ufname.as_ptr(),
2311 libc::O_WRONLY | libc::O_CREAT | libc::O_EXCL | libc::O_NOCTTY,
2312 0o666 as libc::c_uint,
2313 )
2314 };
2315 if fd >= 0 {
2316 return fd; // c:2235
2317 }
2318 // c:2240 — `oerrno = errno;` — save for restoration on the recover path.
2319 let oerrno = std::io::Error::last_os_error().raw_os_error().unwrap_or(0);
2320 // c:2241-2260 — recover: open() w/o O_EXCL, accept if non-regular
2321 // OR (CLOBBEREMPTY && size == 0).
2322 let fd = unsafe {
2323 // c:2241
2324 libc::open(
2325 ufname.as_ptr(),
2326 libc::O_WRONLY | libc::O_NOCTTY,
2327 0o666 as libc::c_uint,
2328 )
2329 };
2330 if fd != -1 {
2331 let mut buf: libc::stat = unsafe { std::mem::zeroed() };
2332 if unsafe { libc::fstat(fd, &mut buf) } == 0 {
2333 // c:2242
2334 // c:2243-2244 — non-regular file: accept.
2335 if (buf.st_mode & libc::S_IFMT) != libc::S_IFREG {
2336 // c:2243
2337 return fd; // c:2244
2338 }
2339 // c:2256-2257 — CLOBBEREMPTY + empty regular: accept.
2340 if isset(CLOBBEREMPTY) && buf.st_size == 0 {
2341 // c:2256
2342 return fd; // c:2257
2343 }
2344 }
2345 unsafe {
2346 libc::close(fd);
2347 } // c:2259
2348 }
2349 // c:2262 — `errno = oerrno;` — restore the EEXIST so caller diagnoses
2350 // "file exists" not the noisier "couldn't reopen" trailing errno.
2351 // Per-platform errno setter: __error() on macOS, __errno_location()
2352 // on Linux. Without cfg gating the build breaks on Linux (CI).
2353 #[cfg(target_os = "macos")]
2354 unsafe {
2355 *libc::__error() = oerrno;
2356 }
2357 #[cfg(target_os = "linux")]
2358 unsafe {
2359 *libc::__errno_location() = oerrno;
2360 }
2361 -1 // c:2263
2362}
2363
2364/// Port of `char *findcmd(char *arg0, int docopy, int default_path)`
2365/// from `Src/exec.c:897`. Walk `$PATH` (or DEFAULT_PATH under
2366/// `default_path=1`) for `arg0`, returning the matching path on
2367/// success. `_docopy` is the C source's "duplicate the result"
2368/// flag — Rust ownership covers it without an explicit copy step.
2369/// `default_path=1` forces `/bin:/usr/bin:...` search (used by
2370/// `command -p`).
2371pub fn findcmd(arg0: &str, _docopy: i32, default_path: i32) -> Option<String> {
2372 // c:897
2373 // c:903-908 — if (default_path) → search_defpath; return.
2374 if default_path != 0 {
2375 return search_defpath(arg0, libc::PATH_MAX as usize);
2376 }
2377 // c:912-913 — strlen(arg0) > PATH_MAX → NULL.
2378 if arg0.len() > libc::PATH_MAX as usize {
2379 return None;
2380 }
2381 // c:Src/exec.c:914-920 — `/`-bearing arg path resolution.
2382 // if ((s = strchr(arg0, '/'))) {
2383 // RET_IF_COM(arg0); // ← unconditional accept on iscom hit
2384 // if (arg0 == s || unset(PATHDIRS) ||
2385 // !strncmp(arg0, "./", 2) ||
2386 // !strncmp(arg0, "../", 3))
2387 // return NULL;
2388 // }
2389 // The Rust port had the iscom check gated on `starts_with('/')`,
2390 // so `type ./target/debug/zshrs` returned None even when the
2391 // file was executable. Bug #496 family.
2392 if arg0.contains('/') {
2393 if iscom(arg0) {
2394 return Some(arg0.to_string()); // c:915 RET_IF_COM
2395 }
2396 // c:916-919 — absolute OR PATHDIRS-off OR `./` / `../` →
2397 // give up here (no $PATH walk for these). Relative without
2398 // those prefixes falls through to the $PATH scan below for
2399 // the PATHDIRS=set case.
2400 if arg0.starts_with('/')
2401 || !isset(PATHDIRS)
2402 || arg0.starts_with("./")
2403 || arg0.starts_with("../")
2404 {
2405 return None;
2406 }
2407 // else fall through to PATH walk.
2408 }
2409 // c:943-951 — walk `path[]` (the shell `$path` array). Read $PATH
2410 // from paramtab so shell-private edits via `path=(...)` take
2411 // effect (not OS env only).
2412 let path = getsparam("PATH")?;
2413 for dir in path.split(':') {
2414 if dir.is_empty() {
2415 continue;
2416 }
2417 let candidate = format!("{}/{}", dir, arg0);
2418 if iscom(&candidate) {
2419 return Some(candidate);
2420 }
2421 }
2422 None // c:952
2423}
2424
2425/// Port of `static void addfd(int forked, int *save, struct multio **mfds,
2426/// int fd1, int fd2, int rflag, char *varid)`
2427/// from `Src/exec.c:2397`.
2428///
2429/// C body (~100 lines, three branches):
2430/// ```c
2431/// if (varid) {
2432/// /* {varid}>file form — move fd above 10 and bind $varid to it */
2433/// } else if (!mfds[fd1] || unset(MULTIOS)) {
2434/// /* new multio OR MULTIOS off — first redir on this fd */
2435/// } else {
2436/// /* additional redir on a fd that's already a multio (split or extend) */
2437/// }
2438/// ```
2439///
2440/// Register `fd2` (already-open) as a redirection target for `fd1`.
2441/// Three branches: `varid` writes the moved fd to `$varid` and bumps
2442/// `fdtable[fd1]` = FDT_EXTERNAL; new-multio path saves the original fd1
2443/// (when `!forked`) and stamps `mfds[fd1]` as a single-entry struct;
2444/// extend-multio path either splits a ct=1 stream into a pipe + 2 fds
2445/// via `mpipe`, or appends another fd to an already-split stream
2446/// (re-allocating mfds for fd1 past the MULTIOUNIT boundary).
2447///
2448/// `multio.fds` is now `Vec<i32>` (zsh_h.rs:1397) so the C
2449/// `hrealloc` at c:2485 maps to `Vec::push`; MULTIOUNIT is no
2450/// longer a hard cap (still 8 for the initial allocation, grown
2451/// on demand thereafter).
2452///
2453/// `fdtable[fdN] |= FDT_SAVED_MASK` at c:2440 — Rust fdtable_set
2454/// stores the int value but doesn't expose a bitwise-OR setter; we
2455/// re-read + OR + re-store as two atomic-feeling steps.
2456pub fn addfd(
2457 forked: i32,
2458 save: &mut [i32; 10],
2459 mfds: &mut [Option<Box<multio>>; 10],
2460 fd1: i32,
2461 fd2: i32,
2462 rflag: i32,
2463 varid: Option<&str>,
2464) {
2465 // c:2397
2466 let mut pipes: [i32; 2] = [-1; 2]; // c:2400
2467
2468 // c:2402-2417 — `if (varid)` branch — {varid}>file shape.
2469 if let Some(vid) = varid {
2470 // c:2402
2471 let fd_moved = movefd(fd2); // c:2404
2472 if fd_moved == -1 {
2473 // c:2405
2474 zerr(&format!(
2475 // c:2406
2476 "cannot move fd {}: {}",
2477 fd2,
2478 std::io::Error::last_os_error()
2479 ));
2480 return; // c:2407
2481 }
2482 // c:2409 — `fdtable[fd1] = FDT_EXTERNAL;`
2483 fdtable_set(fd_moved, FDT_EXTERNAL);
2484 // c:2410 — `setiparam(varid, (zlong)fd1);`
2485 setiparam(vid, fd_moved as i64);
2486 // c:2415-2416 — `if (errflag) zclose(fd1);`
2487 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
2488 // c:2415
2489 let _ = zclose(fd_moved); // c:2416
2490 }
2491 return;
2492 }
2493 // c:2418 — `else if (!mfds[fd1] || unset(MULTIOS))`
2494 let fd1u = fd1 as usize;
2495 if fd1u >= mfds.len() {
2496 return;
2497 }
2498 if mfds[fd1u].is_none() || unset(MULTIOS) {
2499 // c:2418
2500 if mfds[fd1u].is_none() {
2501 // c:2419 — `starting a new multio`
2502 // c:2420 — `mfds[fd1] = zhalloc(sizeof(multio));`
2503 mfds[fd1u] = Some(Box::new(multio {
2504 ct: 0,
2505 rflag: 0,
2506 pipe: -1,
2507 // c:2420 — C allocates VARLENARRAY trailing `int fds[1]`;
2508 // grow on demand via push() below. Pre-fill MULTIOUNIT
2509 // slots with -1 so existing indexed writes (fds[0], fds[1])
2510 // still work without explicit resize().
2511 fds: vec![-1; MULTIOUNIT],
2512 }));
2513 // c:2421 — `if (!forked && save[fd1] == -2)`
2514 if forked == 0 && save[fd1u] == -2 {
2515 if fd1 == fd2 {
2516 // c:2422
2517 save[fd1u] = -1; // c:2423
2518 } else {
2519 // c:2424
2520 let fd_n = movefd(fd1); // c:2425
2521 if fd_n < 0 {
2522 // c:2430
2523 let e = std::io::Error::last_os_error().raw_os_error().unwrap_or(0);
2524 if e != libc::EBADF {
2525 // c:2431
2526 zerr(&format!(
2527 // c:2432
2528 "cannot duplicate fd {}: {}",
2529 fd1,
2530 std::io::Error::from_raw_os_error(e)
2531 ));
2532 mfds[fd1u] = None; // c:2433
2533 closemnodes(mfds); // c:2434
2534 return; // c:2435
2535 }
2536 } else {
2537 // c:2438-2439 — DPUTS check that the saved fd is FDT_INTERNAL.
2538 crate::DPUTS!(
2539 fdtable_get(fd_n) != FDT_INTERNAL,
2540 "Saved file descriptor not marked as internal"
2541 );
2542 // c:2440 — `fdtable[fdN] |= FDT_SAVED_MASK;`
2543 let cur = fdtable_get(fd_n);
2544 fdtable_set(fd_n, cur | FDT_SAVED_MASK);
2545 }
2546 save[fd1u] = fd_n; // c:2442
2547 }
2548 }
2549 }
2550 // c:2446-2447 — `if (!varid) redup(fd2, fd1);` (varid already
2551 // handled above; this is the non-varid branch.)
2552 let _ = redup(fd2, fd1);
2553 // c:2448-2450 — `mfds[fd1]->ct=1; mfds[fd1]->fds[0]=fd1; mfds[fd1]->rflag=rflag;`
2554 if let Some(mn) = mfds[fd1u].as_mut() {
2555 mn.ct = 1; // c:2448
2556 mn.fds[0] = fd1; // c:2449
2557 mn.rflag = rflag; // c:2450
2558 }
2559 } else {
2560 // c:2451 — extend existing multio.
2561 // c:2452-2456 — rflag mismatch check.
2562 let cur_rflag = mfds[fd1u].as_ref().map(|m| m.rflag).unwrap_or(0);
2563 if cur_rflag != rflag {
2564 // c:2452
2565 zerr(&format!("file mode mismatch on fd {}", fd1)); // c:2453
2566 closemnodes(mfds); // c:2454
2567 return; // c:2455
2568 }
2569 let cur_ct = mfds[fd1u].as_ref().map(|m| m.ct).unwrap_or(0);
2570 if cur_ct == 1 {
2571 // c:2457 — split the stream.
2572 // c:2458 — `int fdN = movefd(fd1);`
2573 let fd_n = movefd(fd1);
2574 if fd_n < 0 {
2575 // c:2459
2576 zerr(&format!(
2577 // c:2460
2578 "multio failed for fd {}: {}",
2579 fd1,
2580 std::io::Error::last_os_error()
2581 ));
2582 closemnodes(mfds); // c:2461
2583 return; // c:2462
2584 }
2585 if let Some(mn) = mfds[fd1u].as_mut() {
2586 mn.fds[0] = fd_n; // c:2464
2587 }
2588 // c:2465 — `fdN = movefd(fd2);`
2589 let fd_n2 = movefd(fd2);
2590 if fd_n2 < 0 {
2591 // c:2466
2592 zerr(&format!(
2593 // c:2467
2594 "multio failed for fd {}: {}",
2595 fd2,
2596 std::io::Error::last_os_error()
2597 ));
2598 closemnodes(mfds); // c:2468
2599 return; // c:2469
2600 }
2601 if let Some(mn) = mfds[fd1u].as_mut() {
2602 mn.fds[1] = fd_n2; // c:2471
2603 }
2604 // c:2472 — `mpipe(pipes)`
2605 if mpipe(&mut pipes) < 0 {
2606 // c:2472
2607 zerr(&format!(
2608 // c:2473
2609 "multio failed for fd {}: {}",
2610 fd2,
2611 std::io::Error::last_os_error()
2612 ));
2613 closemnodes(mfds); // c:2474
2614 return; // c:2475
2615 }
2616 // c:2477 — `mfds[fd1]->pipe = pipes[1 - rflag];`
2617 if let Some(mn) = mfds[fd1u].as_mut() {
2618 mn.pipe = pipes[(1 - rflag) as usize];
2619 }
2620 // c:2478 — `redup(pipes[rflag], fd1);`
2621 let _ = redup(pipes[rflag as usize], fd1);
2622 // c:2479 — `mfds[fd1]->ct = 2;`
2623 if let Some(mn) = mfds[fd1u].as_mut() {
2624 mn.ct = 2;
2625 }
2626 } else {
2627 // c:2480 — extend already-split stream.
2628 // c:2482-2486 — `mn = hrealloc(mn, sizeof + (ct-1)*sizeof(int),
2629 // sizeof + ct*sizeof(int));`
2630 // Rust's `Vec<i32>` grows on demand; ensure capacity for the
2631 // new slot before the indexed write below.
2632 if let Some(mn) = mfds[fd1u].as_mut() {
2633 while mn.fds.len() <= cur_ct as usize {
2634 mn.fds.push(-1);
2635 }
2636 }
2637 // c:2487 — `if ((fdN = movefd(fd2)) < 0)`
2638 let fd_n = movefd(fd2);
2639 if fd_n < 0 {
2640 zerr(&format!(
2641 // c:2488
2642 "multio failed for fd {}: {}",
2643 fd2,
2644 std::io::Error::last_os_error()
2645 ));
2646 closemnodes(mfds); // c:2489
2647 return; // c:2490
2648 }
2649 // c:2492 — `mfds[fd1]->fds[mfds[fd1]->ct++] = fdN;`
2650 if let Some(mn) = mfds[fd1u].as_mut() {
2651 let slot = mn.ct as usize;
2652 if slot < mn.fds.len() {
2653 mn.fds[slot] = fd_n;
2654 mn.ct += 1;
2655 }
2656 }
2657 }
2658 }
2659}
2660
2661/// Port of `static void closemn(struct multio **mfds, int fd, int type)`
2662/// from `Src/exec.c:2273`.
2663///
2664/// C body (abridged — the meat is the fork-into-tee-or-cat child):
2665/// ```c
2666/// if (fd >= 0 && mfds[fd] && mfds[fd]->ct >= 2) {
2667/// struct multio *mn = mfds[fd];
2668/// char buf[TCBUFSIZE]; int len, i;
2669/// pid_t pid; struct timespec bgtime;
2670/// child_block();
2671/// if ((pid = zfork(&bgtime))) {
2672/// for (i = 0; i < mn->ct; i++) zclose(mn->fds[i]);
2673/// zclose(mn->pipe);
2674/// if (pid == -1) { mfds[fd] = NULL; child_unblock(); return; }
2675/// mn->ct = 1; mn->fds[0] = fd;
2676/// addproc(pid, NULL, 1, &bgtime, -1, -1);
2677/// child_unblock(); return;
2678/// }
2679/// /* pid == 0 (child) */
2680/// opts[INTERACTIVE] = 0;
2681/// dont_queue_signals();
2682/// child_unblock();
2683/// closeallelse(mn);
2684/// if (mn->rflag) {
2685/// /* tee process: read mn->pipe, write each mn->fds[i] */
2686/// } else {
2687/// /* cat process: read each mn->fds[i], write mn->pipe */
2688/// }
2689/// _exit(0);
2690/// } else if (fd >= 0 && type == REDIR_CLOSE)
2691/// mfds[fd] = NULL;
2692/// ```
2693///
2694/// Success-path close of a multio. For ct>=2 (multiple-output
2695/// redirection), forks a tee/cat child that proxies bytes between
2696/// the original fd and the per-output fds. Single-output multios
2697/// (ct=1) skip the fork entirely and just clear the slot.
2698///
2699/// c:2299 — `addproc(pid, NULL, 1, &bgtime, -1, -1)` records the
2700/// tee/cat child in the current job's auxprocs.
2701pub fn closemn(mfds: &mut [Option<Box<multio>>; 10], fd: i32, type_: i32) {
2702 // c:2273
2703 // c:2275 — `if (fd >= 0 && mfds[fd] && mfds[fd]->ct >= 2)`
2704 let needs_tee = fd >= 0
2705 && (fd as usize) < mfds.len()
2706 && mfds[fd as usize].as_ref().is_some_and(|m| m.ct >= 2);
2707 if needs_tee {
2708 // c:2275
2709 // Take the multio out of the slot so we can move pieces into
2710 // the child without aliasing the slot.
2711 let mn = mfds[fd as usize].take().unwrap();
2712 let mut buf = [0u8; 4092]; // c:2277 TCBUFSIZE
2713 // c:2287 — `child_block();` block SIGCHLD before fork race.
2714 child_block();
2715 // c:2288 — `pid = zfork(&bgtime);`
2716 let mut bgtime = ZshTimespec {
2717 tv_sec: 0,
2718 tv_nsec: 0,
2719 };
2720 let pid = zfork(Some(&mut bgtime));
2721 if pid != 0 {
2722 // c:2288 parent branch
2723 // c:2289-2290 — close all per-output fds.
2724 for i in 0..mn.ct as usize {
2725 if i < mn.fds.len() {
2726 let _ = zclose(mn.fds[i]); // c:2290
2727 }
2728 }
2729 let _ = zclose(mn.pipe); // c:2291
2730 if pid == -1 {
2731 // c:2292
2732 // c:2293 — `mfds[fd] = NULL;` already done via .take()
2733 child_unblock(); // c:2294
2734 return; // c:2295
2735 }
2736 // c:2297-2298 — `mn->ct = 1; mn->fds[0] = fd;`
2737 let mut mn_back = mn;
2738 mn_back.ct = 1; // c:2297
2739 mn_back.fds[0] = fd; // c:2298
2740 mfds[fd as usize] = Some(mn_back);
2741 // c:2299 — `addproc(pid, NULL, 1, &bgtime, -1, -1);` — record
2742 // the tee/cat child in the current job's auxprocs (aux=true).
2743 if let Some(jt) = JOBTAB.get() {
2744 let mut guard = jt.lock().unwrap();
2745 let tj = THISJOB.get().map(|m| *m.lock().unwrap()).unwrap_or(-1);
2746 if tj >= 0 {
2747 if let Some(j) = guard.get_mut(tj as usize) {
2748 crate::ported::jobs::addproc(
2749 j,
2750 pid,
2751 "",
2752 true,
2753 Some(std::time::Instant::now()),
2754 -1,
2755 -1,
2756 );
2757 }
2758 }
2759 }
2760 let _ = bgtime;
2761 child_unblock(); // c:2300
2762 return; // c:2301
2763 }
2764 // c:2303 — child branch (pid == 0).
2765 opt_state_set("interactive", false); // c:2304
2766 dont_queue_signals(); // c:2305
2767 child_unblock(); // c:2306
2768 closeallelse(&mn); // c:2307
2769 // c:2308-2333 — tee or cat loop.
2770 if mn.rflag != 0 {
2771 // c:2308 — `mn->rflag` set → tee process
2772 // c:2310 — `while ((len = read(mn->pipe, buf, TCBUFSIZE)) != 0)`
2773 loop {
2774 let len = unsafe {
2775 libc::read(mn.pipe, buf.as_mut_ptr() as *mut libc::c_void, buf.len())
2776 };
2777 if len == 0 {
2778 break;
2779 }
2780 if len < 0 {
2781 // c:2311
2782 let e = std::io::Error::last_os_error().raw_os_error().unwrap_or(0);
2783 if e == libc::EINTR {
2784 // c:2312
2785 continue;
2786 } else {
2787 break; // c:2315
2788 }
2789 }
2790 // c:2317-2319 — `for i: write_loop(mn->fds[i], buf, len)`
2791 for i in 0..mn.ct as usize {
2792 if i >= mn.fds.len() {
2793 break;
2794 }
2795 if write_loop(mn.fds[i], &buf[..len as usize]).is_err() {
2796 break; // c:2319
2797 }
2798 }
2799 }
2800 } else {
2801 // c:2321 — cat process
2802 for i in 0..mn.ct as usize {
2803 if i >= mn.fds.len() {
2804 break;
2805 }
2806 // c:2324 — `while ((len = read(mn->fds[i], buf, TCBUFSIZE)) != 0)`
2807 loop {
2808 let len = unsafe {
2809 libc::read(mn.fds[i], buf.as_mut_ptr() as *mut libc::c_void, buf.len())
2810 };
2811 if len == 0 {
2812 break;
2813 }
2814 if len < 0 {
2815 let e = std::io::Error::last_os_error().raw_os_error().unwrap_or(0);
2816 // c:2326 — `if (errno == EINTR && !isatty(mn->fds[i]))`
2817 if e == libc::EINTR && unsafe { libc::isatty(mn.fds[i]) } == 0 {
2818 continue;
2819 } else {
2820 break; // c:2329
2821 }
2822 }
2823 // c:2331 — `if (write_loop(mn->pipe, buf, len) < 0) break;`
2824 if write_loop(mn.pipe, &buf[..len as usize]).is_err() {
2825 break; // c:2332
2826 }
2827 }
2828 }
2829 }
2830 // c:2335 — `_exit(0);`
2831 unsafe {
2832 libc::_exit(0);
2833 }
2834 } else if fd >= 0 && type_ == REDIR_CLOSE {
2835 // c:2336
2836 // c:2337 — `mfds[fd] = NULL;`
2837 if (fd as usize) < mfds.len() {
2838 mfds[fd as usize] = None;
2839 }
2840 }
2841}
2842
2843/// Port of `static void closemnodes(struct multio **mfds)` from
2844/// `Src/exec.c:2344`.
2845///
2846/// C body:
2847/// ```c
2848/// int i, j;
2849/// for (i = 0; i < 10; i++)
2850/// if (mfds[i]) {
2851/// for (j = 0; j < mfds[i]->ct; j++)
2852/// zclose(mfds[i]->fds[j]);
2853/// mfds[i] = NULL;
2854/// }
2855/// ```
2856///
2857/// Failure-path cleanup: close every fd stashed in any of the 10
2858/// multio slots and null the slot. Called from `execcmd_exec` when
2859/// a redirect setup fails partway through and we need to roll back.
2860pub fn closemnodes(mfds: &mut [Option<Box<multio>>; 10]) {
2861 // c:2344
2862 for i in 0..10 {
2863 // c:2348
2864 if let Some(mn) = mfds[i].take() {
2865 // c:2349
2866 for j in 0..mn.ct as usize {
2867 // c:2350
2868 if j < mn.fds.len() {
2869 let _ = zclose(mn.fds[j]); // c:2351
2870 }
2871 }
2872 // c:2352 — `mfds[i] = NULL;` — handled by .take() above.
2873 }
2874 }
2875}
2876
2877/// Port of `static void closeallelse(struct multio *mn)` from
2878/// `Src/exec.c:2358`.
2879///
2880/// C body:
2881/// ```c
2882/// int i, j;
2883/// long openmax;
2884/// openmax = fdtable_size;
2885/// for (i = 0; i < openmax; i++)
2886/// if (mn->pipe != i) {
2887/// for (j = 0; j < mn->ct; j++)
2888/// if (mn->fds[j] == i) break;
2889/// if (j == mn->ct)
2890/// zclose(i);
2891/// }
2892/// ```
2893///
2894/// Close every fd in the open range EXCEPT `mn->pipe` and the fds
2895/// stashed in `mn->fds`. Called inside the multio tee/cat child
2896/// process to release every fd the parent had open — only the pipe
2897/// + per-output fds stay alive for the read/write loop.
2898pub fn closeallelse(mn: &multio) {
2899 // c:2358
2900 // c:2363 — `openmax = fdtable_size;`. zshrs models fdtable as a
2901 // Vec; use MAX_ZSH_FD as the upper bound (fdtable_size grows past
2902 // max_zsh_fd in C but every slot past it is FDT_UNUSED anyway).
2903 let openmax = MAX_ZSH_FD.load(Ordering::Relaxed) + 1; // c:2363
2904 for i in 0..openmax {
2905 // c:2365
2906 if mn.pipe == i {
2907 // c:2366
2908 continue;
2909 }
2910 // c:2367-2369 — scan mn->fds[] for i; skip-close if found.
2911 let mut found = false;
2912 for j in 0..mn.ct as usize {
2913 // c:2367
2914 if j < mn.fds.len() && mn.fds[j] == i {
2915 // c:2368
2916 found = true;
2917 break; // c:2369
2918 }
2919 }
2920 // c:2370-2371 — `if (j == mn->ct) zclose(i);`
2921 if !found {
2922 let _ = zclose(i); // c:2371
2923 }
2924 }
2925}
2926
2927/// Port of `static void fixfds(int *save)` from `Src/exec.c:4523`.
2928///
2929/// C body:
2930/// ```c
2931/// int old_errno = errno;
2932/// int i;
2933/// for (i = 0; i != 10; i++)
2934/// if (save[i] != -2)
2935/// redup(save[i], i);
2936/// errno = old_errno;
2937/// ```
2938///
2939/// Restore fds 0..9 from the `save[10]` slot array. `-2` sentinel
2940/// means "no save was made for this fd"; any other value is the
2941/// stashed fd that gets `dup2`'d back via `redup`. Preserves the
2942/// caller's errno across the loop so a downstream caller diagnoses
2943/// the original failure, not a noisy dup2 errno.
2944pub fn fixfds(save: &[i32; 10]) {
2945 // c:4523
2946 let old_errno = std::io::Error::last_os_error().raw_os_error().unwrap_or(0); // c:4525
2947 for i in 0..10i32 {
2948 // c:4528 — `for (i = 0; i != 10; i++)`
2949 if save[i as usize] != -2 {
2950 // c:4529
2951 redup(save[i as usize], i); // c:4530
2952 }
2953 }
2954 // c:4531 — `errno = old_errno;`
2955 #[cfg(target_os = "macos")]
2956 unsafe {
2957 *libc::__error() = old_errno;
2958 }
2959 #[cfg(target_os = "linux")]
2960 unsafe {
2961 *libc::__errno_location() = old_errno;
2962 }
2963}
2964
2965/// Port of `mod_export void closem(int how, int all)` from `Src/exec.c:4546`.
2966///
2967/// C body:
2968/// ```c
2969/// int i;
2970/// for (i = 10; i <= max_zsh_fd; i++)
2971/// if (fdtable[i] != FDT_UNUSED &&
2972/// (all || (fdtable[i] != FDT_PROC_SUBST &&
2973/// fdtable[i] != FDT_EXTERNAL)) &&
2974/// (how == FDT_UNUSED || (fdtable[i] & FDT_TYPE_MASK) == how)) {
2975/// if (i == SHTTY) SHTTY = -1;
2976/// zclose(i);
2977/// }
2978/// ```
2979///
2980/// Walk fds 10..=MAX_ZSH_FD and close every internal shell fd that
2981/// matches the criteria. `how == FDT_UNUSED` matches all kinds (no
2982/// type filter); otherwise only fds whose low-nibble type equals
2983/// `how` are closed. `all == 0` preserves user-visible fds
2984/// (FDT_PROC_SUBST, FDT_EXTERNAL) since those need to outlive the
2985/// shell's internal-fd lifetime. SHTTY clearing prevents a stale
2986/// reference if we just closed the controlling tty.
2987pub fn closem(how: i32, all: i32) {
2988 // c:4546
2989 let max = MAX_ZSH_FD.load(Ordering::Relaxed); // c:4550
2990 for i in 10i32..=max {
2991 // c:4550
2992 let kind = fdtable_get(i); // c:4551 fdtable[i]
2993 if kind == FDT_UNUSED {
2994 // c:4551
2995 continue;
2996 }
2997 // c:4557-4558 — `(all || (kind != FDT_PROC_SUBST && kind != FDT_EXTERNAL))`
2998 if all == 0 && (kind == FDT_PROC_SUBST || kind == FDT_EXTERNAL) {
2999 continue;
3000 }
3001 // c:4559 — `(how == FDT_UNUSED || (fdtable[i] & FDT_TYPE_MASK) == how)`
3002 if how != FDT_UNUSED && (kind & FDT_TYPE_MASK) != how {
3003 continue;
3004 }
3005 // c:4560-4561 — `if (i == SHTTY) SHTTY = -1;`
3006 if i == SHTTY.load(Ordering::Relaxed) {
3007 // c:4560
3008 SHTTY.store(-1, Ordering::Relaxed); // c:4561
3009 }
3010 // c:4562 — `zclose(i);`
3011 let _ = zclose(i);
3012 }
3013}
3014
3015/// Port of `Cmdnam hashcmd(char *arg0, char **pp)` from
3016/// `Src/exec.c:1010`.
3017///
3018/// C body:
3019/// ```c
3020/// Cmdnam cn;
3021/// char *s, buf[PATH_MAX+1];
3022/// char **pq;
3023/// if (*arg0 == '/') return NULL;
3024/// for (; *pp; pp++)
3025/// if (**pp == '/') {
3026/// s = buf;
3027/// struncpy(&s, *pp, PATH_MAX);
3028/// *s++ = '/';
3029/// if ((s - buf) + strlen(arg0) >= PATH_MAX) continue;
3030/// strcpy(s, arg0);
3031/// if (iscom(buf)) break;
3032/// }
3033/// if (!*pp) return NULL;
3034/// cn = (Cmdnam) zshcalloc(sizeof *cn);
3035/// cn->node.flags = 0;
3036/// cn->u.name = pp;
3037/// cmdnamtab->addnode(cmdnamtab, ztrdup(arg0), cn);
3038/// if (isset(HASHDIRS)) {
3039/// for (pq = pathchecked; pq <= pp; pq++) hashdir(pq);
3040/// pathchecked = pp + 1;
3041/// }
3042/// return cn;
3043/// ```
3044///
3045/// Walk `pp[]` (a $path slice starting from `pathchecked`) for the
3046/// first absolute-PATH entry where `<entry>/<arg0>` is an executable
3047/// regular file. Inserts the unhashed-cmdnam entry into `cmdnamtab`
3048/// and (under HASHDIRS) bulk-hashes every PATH dir we walked through
3049/// so subsequent commands hit the cache.
3050///
3051/// Returns the just-inserted `cmdnam` (now in `cmdnamtab`) on success,
3052/// `None` if `arg0` is absolute or no PATH entry contains it.
3053pub fn hashcmd(arg0: &str, pp: &[String]) -> Option<cmdnam> {
3054 // c:1010
3055 // c:1016 — `if (*arg0 == '/') return NULL;`
3056 if arg0.starts_with('/') {
3057 return None; // c:1017
3058 }
3059 // c:1018-1028 — walk pp[] for first matching absolute entry.
3060 let mut found_idx: Option<usize> = None;
3061 for (i, dir) in pp.iter().enumerate() {
3062 // c:1018
3063 if !dir.starts_with('/') {
3064 // c:1019
3065 continue;
3066 }
3067 // c:1020-1025 — buf = "<dir>/<arg0>"; PATH_MAX bounds check.
3068 if dir.len() + 1 + arg0.len() >= libc::PATH_MAX as usize {
3069 // c:1023
3070 continue; // c:1024
3071 }
3072 let buf = format!("{}/{}", dir, arg0); // c:1025
3073 if iscom(&buf) {
3074 // c:1026
3075 found_idx = Some(i);
3076 break; // c:1027
3077 }
3078 }
3079 // c:1030-1031 — `if (!*pp) return NULL;`
3080 let pp_idx = match found_idx {
3081 Some(i) => i,
3082 None => return None, // c:1031
3083 };
3084 // c:1033-1036 — alloc cn, set flags=0, u.name=pp (the matching slice).
3085 let path_slice: Vec<String> = pp[pp_idx..].to_vec(); // c:1035
3086 let cn = cmdnam_unhashed(arg0, path_slice); // c:1033-1035
3087 // c:1036 — `cmdnamtab->addnode(cmdnamtab, ztrdup(arg0), cn);`
3088 if let Ok(mut tab) = cmdnamtab_lock().write() {
3089 tab.add(cn.clone());
3090 }
3091 // c:1038-1042 — under HASHDIRS, bulk-hash every dir up to and
3092 // including the matching one, then bump pathchecked past it.
3093 if isset(HASHDIRS) {
3094 // c:1038
3095 let start = pathchecked.load(Ordering::Relaxed); // c:1039
3096 for pq in start..=pp_idx {
3097 // c:1039
3098 if pq < pp.len() {
3099 hashdir(&pp[pq], pq); // c:1040
3100 }
3101 }
3102 pathchecked.store(pp_idx + 1, Ordering::Relaxed); // c:1041
3103 }
3104 Some(cn) // c:1044
3105}
3106
3107/// Port of `static pid_t zfork(struct timespec *ts)` from
3108/// `Src/exec.c:349`.
3109///
3110/// C body:
3111/// ```c
3112/// pid_t pid;
3113/// if (thisjob != -1 && thisjob >= jobtabsize - 1 && !expandjobtab()) {
3114/// zerr("job table full");
3115/// return -1;
3116/// }
3117/// if (ts) zgettime_monotonic_if_available(ts);
3118/// queue_signals();
3119/// pid = fork();
3120/// unqueue_signals();
3121/// if (pid == -1) {
3122/// zerr("fork failed: %e", errno);
3123/// return -1;
3124/// }
3125/// #ifdef HAVE_GETRLIMIT
3126/// if (!pid) setlimits(NULL);
3127/// #endif
3128/// return pid;
3129/// ```
3130///
3131/// fork(2) wrapper with jobtab capacity check + child rlimit
3132/// re-application. Used by every subshell-spawning path: pipelines,
3133/// process substitution, async commands, command substitution.
3134pub fn zfork(ts: Option<&mut ZshTimespec>) -> libc::pid_t {
3135 // c:349
3136 let pid: libc::pid_t;
3137
3138 // c:356-359 — `if (thisjob != -1 && thisjob >= jobtabsize - 1 && !expandjobtab())`
3139 let thisjob_lock = THISJOB.get_or_init(|| std::sync::Mutex::new(-1));
3140 let thisjob = *thisjob_lock.lock().unwrap();
3141 if thisjob != -1 {
3142 // c:356
3143 let needed = (thisjob + 1) as usize;
3144 let needs_expand = JOBTAB
3145 .get_or_init(|| std::sync::Mutex::new(Vec::new()))
3146 .lock()
3147 .map(|t| needed >= t.len().saturating_sub(1))
3148 .unwrap_or(false);
3149 if needs_expand {
3150 let mut tab = JOBTAB.get().unwrap().lock().unwrap();
3151 if !expandjobtab(&mut tab, needed) {
3152 // c:357
3153 zerr("job table full"); // c:357
3154 return -1; // c:358
3155 }
3156 }
3157 }
3158 // c:360-361 — `if (ts) zgettime_monotonic_if_available(ts);`
3159 if let Some(ts) = ts {
3160 zgettime_monotonic_if_available(ts);
3161 }
3162 // c:368-370 — `queue_signals(); pid = fork(); unqueue_signals();`
3163 queue_signals(); // c:368
3164 pid = unsafe { libc::fork() }; // c:369
3165 unqueue_signals(); // c:370
3166 // c:371-374 — fork failure.
3167 if pid == -1 {
3168 // c:371
3169 zerr(&format!(
3170 // c:372
3171 "fork failed: {}",
3172 std::io::Error::last_os_error()
3173 ));
3174 return -1; // c:373
3175 }
3176 // c:375-379 — child: re-apply rlimits (HAVE_GETRLIMIT path).
3177 #[cfg(unix)]
3178 if pid == 0 {
3179 // c:376
3180 let _ = setlimits(""); // c:378
3181 }
3182 pid // c:380
3183}
3184
3185/// Port of `void loadautofnsetfile(Shfunc shf, char *fdir)` from
3186/// `Src/exec.c:5657`.
3187///
3188/// C body:
3189/// ```c
3190/// if (!(shf->node.flags & PM_LOADDIR) ||
3191/// strcmp(shf->filename, fdir) != 0) {
3192/// dircache_set(&shf->filename, NULL);
3193/// if (fdir) {
3194/// shf->node.flags |= PM_LOADDIR;
3195/// dircache_set(&shf->filename, fdir);
3196/// } else {
3197/// shf->node.flags &= ~PM_LOADDIR;
3198/// shf->filename = ztrdup(shf->node.nam);
3199/// }
3200/// }
3201/// ```
3202///
3203/// Update `shf->filename` to the autoload directory `fdir`. Routes
3204/// through the refcounted `dircache_set` so identical directory
3205/// strings are shared across shfunc table entries.
3206pub fn loadautofnsetfile(shf: &mut shfunc, fdir: Option<&str>) {
3207 // c:5657
3208 // c:5664-5665 — `if (!(shf->node.flags & PM_LOADDIR) || strcmp(shf->filename, fdir) != 0)`
3209 let loaddir = (shf.node.flags as u32 & PM_LOADDIR) != 0;
3210 let same = match (&shf.filename, fdir) {
3211 (Some(a), Some(b)) => a == b,
3212 _ => false,
3213 };
3214 if !loaddir || !same {
3215 // c:5664
3216 // c:5667 — `dircache_set(&shf->filename, NULL);` — refcount-drop old.
3217 dircache_set(&mut shf.filename, None);
3218 if let Some(fdir) = fdir {
3219 // c:5668
3220 shf.node.flags |= PM_LOADDIR as i32; // c:5670
3221 dircache_set(&mut shf.filename, Some(fdir)); // c:5671
3222 } else {
3223 // c:5672
3224 shf.node.flags &= !(PM_LOADDIR as i32); // c:5674
3225 shf.filename = Some(shf.node.nam.clone()); // c:5675 `ztrdup(shf->node.nam)`
3226 }
3227 }
3228}
3229
3230/// Port of `int commandnotfound(char *arg0, LinkList args)` from
3231/// `Src/exec.c:669`.
3232///
3233/// C body:
3234/// ```c
3235/// Shfunc shf = (Shfunc)
3236/// shfunctab->getnode(shfunctab, "command_not_found_handler");
3237/// if (!shf) {
3238/// lastval = 127;
3239/// return 1;
3240/// }
3241/// pushnode(args, arg0);
3242/// lastval = doshfunc(shf, args, 1);
3243/// return 0;
3244/// ```
3245///
3246/// Look up the user-defined `command_not_found_handler` shfunc and
3247/// invoke it with `arg0` prepended to `args`. Returns 0 if handled,
3248/// 1 if no handler (so caller emits the standard "command not found"
3249/// error). Sets `$?` to 127 in the no-handler path.
3250pub fn commandnotfound(arg0: &str, args: &mut Vec<String>) -> i32 {
3251 // c:669
3252 // c:671-672 — `shf = shfunctab->getnode(shfunctab, "command_not_found_handler");`
3253 let has_handler = shfunctab_lock()
3254 .read()
3255 .map(|t| t.get("command_not_found_handler").is_some())
3256 .unwrap_or(false);
3257 if !has_handler {
3258 // c:674
3259 LASTVAL.store(127, Ordering::Relaxed); // c:675
3260 return 1; // c:676
3261 }
3262 // c:679 — `pushnode(args, arg0);` — prepend arg0 (handler name
3263 // is the first positional arg per C convention).
3264 args.insert(0, arg0.to_string());
3265 args.insert(0, "command_not_found_handler".to_string());
3266 // c:680 — `lastval = doshfunc(shf, args, 1);`. Direct doshfunc
3267 // call mirrors C — body_runner routes through the host body-only
3268 // entry so the function body runs once inside doshfunc's scope.
3269 let shf_clone: Option<shfunc> = shfunctab_lock()
3270 .read()
3271 .ok()
3272 .and_then(|t| t.get("command_not_found_handler").cloned());
3273 if let Some(mut shf) = shf_clone {
3274 let body_args = args.clone();
3275 let body_runner = move || -> i32 {
3276 crate::ported::exec::run_function_body("command_not_found_handler", &body_args[1..])
3277 .unwrap_or(0)
3278 };
3279 let lv = doshfunc(&mut shf, args.clone(), true, body_runner);
3280 LASTVAL.store(lv, Ordering::Relaxed);
3281 }
3282 0 // c:681
3283}
3284
3285/// Port of `char *namedpipe(void)` from `Src/exec.c:5001`.
3286///
3287/// C body (#ifdef HAVE_FIFOS branch):
3288/// ```c
3289/// char *tnam = gettempname(NULL, 1);
3290/// if (!tnam) {
3291/// zerr("failed to create named pipe: %e", errno);
3292/// return NULL;
3293/// }
3294/// if (mkfifo(tnam, 0600) < 0) {
3295/// zerr("failed to create named pipe: %s, %e", tnam, errno);
3296/// return NULL;
3297/// }
3298/// return tnam;
3299/// ```
3300///
3301/// Create a FIFO with a unique name for process substitution. Used by
3302/// `getproc` (`<(cmd)` / `>(cmd)`) on systems without `/dev/fd`.
3303pub fn namedpipe() -> Option<String> {
3304 // c:5001
3305 let tnam = gettempname(None, true); // c:5003
3306 let tnam = match tnam {
3307 Some(t) => t,
3308 None => {
3309 // c:5005
3310 zerr(&format!(
3311 // c:5006
3312 "failed to create named pipe: {}",
3313 std::io::Error::last_os_error()
3314 ));
3315 return None; // c:5007
3316 }
3317 };
3318 // c:5010 — `mkfifo(tnam, 0600)`.
3319 let cstr = match std::ffi::CString::new(tnam.as_str()) {
3320 Ok(c) => c,
3321 Err(_) => return None,
3322 };
3323 if unsafe { libc::mkfifo(cstr.as_ptr(), 0o600) } < 0 {
3324 // c:5010
3325 zerr(&format!(
3326 // c:5014
3327 "failed to create named pipe: {}, {}",
3328 tnam,
3329 std::io::Error::last_os_error()
3330 ));
3331 return None; // c:5015
3332 }
3333 Some(tnam) // c:5017
3334}
3335
3336/// Port of `Eprog parsecmd(char *cmd, char **eptr)` from `Src/exec.c:4878`.
3337///
3338/// C body:
3339/// ```c
3340/// char *str;
3341/// Eprog prog;
3342/// for (str = cmd + 2; *str && *str != Outpar; str++);
3343/// if (!*str || cmd[1] != Inpar) {
3344/// char *errstr = dupstrpfx(cmd, 2);
3345/// untokenize(errstr);
3346/// zerr("unterminated `%s...)'", errstr);
3347/// return NULL;
3348/// }
3349/// *str = '\0';
3350/// if (eptr) *eptr = str+1;
3351/// if (!(prog = parse_string(cmd + 2, 0))) {
3352/// zerr("parse error in process substitution");
3353/// return NULL;
3354/// }
3355/// return prog;
3356/// ```
3357///
3358/// Port of `static LinkList readoutput(int in, int qt, int *readerror)`
3359/// from `Src/exec.c:4805`. Drain a command-substitution pipe fd and
3360/// return the captured output split per `qt`.
3361///
3362/// `qt=1` (quoted-substitution `"$(...)"`): single-element vec with
3363/// the trailing-newline-trimmed buffer (empty buffer → `Nularg` sentinel
3364/// per c:4861).
3365/// `qt=0` (unquoted `$(...)`): split on IFS via `spacesplit`; if
3366/// `GLOBSUBST` is set, each word is `shtokenize`d for downstream globbing.
3367///
3368/// `readerror` is set to the errno on read failure, 0 on clean EOF.
3369pub fn readoutput(in_fd: i32, qt: i32, readerror: &mut i32) -> Vec<String> {
3370 // c:4805
3371 let mut buf: Vec<u8> = Vec::with_capacity(64); // c:4816 (initial bsiz=64)
3372 let mut readret: isize = 0; // c:4818 readret tracks last read return
3373 // c:4824 dont_queue_signals(); c:4825 child_unblock(); — signal-queue
3374 // dance keeps SIGCHLD live so the foreground process can be reaped
3375 // while we drain. zshrs's in-process command-sub runs without the
3376 // queue (no fork), but the C call surface is preserved for parity.
3377 dont_queue_signals(); // c:4824
3378 child_unblock(); // c:4825
3379 let mut inbuf = [0u8; 64]; // c:4815 inbuf[64]
3380 loop {
3381 // c:4826
3382 // c:4828 — `readret = read(in, inbuf, 64);`
3383 let r = unsafe { libc::read(in_fd, inbuf.as_mut_ptr() as *mut libc::c_void, inbuf.len()) };
3384 readret = r as isize;
3385 if readret <= 0 {
3386 // c:4829
3387 if readret < 0 && std::io::Error::last_os_error().raw_os_error() == Some(libc::EINTR) {
3388 // c:4830 — `if (readret < 0 && errno == EINTR) continue;`
3389 continue;
3390 }
3391 break; // c:4832
3392 }
3393 // c:4835 — `for (bufptr = inbuf; bufptr < inbuf + readret; bufptr++)`
3394 for i in 0..(readret as usize) {
3395 let c = inbuf[i];
3396 if crate::ported::ztype_h::imeta(c) {
3397 // c:4837 — `if (imeta(c)) { *ptr++ = Meta; c ^= 32; cnt++; }`
3398 buf.push(Meta as u8); // c:4838
3399 buf.push(c ^ 32); // c:4839 (Meta-encoded payload)
3400 } else {
3401 buf.push(c); // c:4848 *ptr++ = c
3402 }
3403 }
3404 }
3405 child_block(); // c:4854
3406 // c:4855 — `if (readerror) *readerror = readret < 0 ? errno : 0;`
3407 *readerror = if readret < 0 {
3408 std::io::Error::last_os_error().raw_os_error().unwrap_or(0)
3409 } else {
3410 0
3411 };
3412 // c:4857 — `close(in);`
3413 unsafe {
3414 libc::close(in_fd);
3415 }
3416 // c:4858-4859 — `while (cnt && ptr[-1] == '\n') ptr--, cnt--;`
3417 while buf.last() == Some(&b'\n') {
3418 buf.pop();
3419 }
3420 // c:4861-4863 — qt branch: empty → Nularg sentinel; else single elem.
3421 let s = String::from_utf8_lossy(&buf).into_owned();
3422 if qt != 0 {
3423 // c:4861
3424 if buf.is_empty() {
3425 return vec![String::from(Nularg)]; // c:4862
3426 }
3427 return vec![s]; // c:4864
3428 }
3429 // c:4866-4871 — `spacesplit` + per-word GLOBSUBST `shtokenize`.
3430 let mut words = crate::ported::utils::spacesplit(&s, false); // c:4867
3431 if isset(crate::ported::zsh_h::GLOBSUBST) {
3432 // c:4870
3433 for w in words.iter_mut() {
3434 crate::ported::glob::shtokenize(w); // c:4870
3435 }
3436 }
3437 words
3438}
3439
3440/// Lex a `<(...)`/`>(...)`/`=(...)` body — the leading 2 chars are
3441/// the marker pair (`Inang+Inpar`, `Outang+Inpar`, `Equals+Inpar`),
3442/// remainder is the command up to the matching `Outpar`. Returns the
3443/// parsed Eprog (and writes the post-`)` cursor through `eptr`).
3444pub fn parsecmd(cmd: &str, eptr: Option<&mut usize>) -> Option<eprog> {
3445 // c:4878
3446 let bytes = cmd.as_bytes();
3447 // c:4883 — `for (str = cmd + 2; *str && *str != Outpar; str++);`
3448 if bytes.len() < 2 {
3449 return None;
3450 }
3451 let mut str_idx: usize = 2;
3452 while str_idx < bytes.len() && (bytes[str_idx] as char) != Outpar {
3453 str_idx += 1;
3454 }
3455 // c:4884 — `if (!*str || cmd[1] != Inpar)`.
3456 if str_idx >= bytes.len() || (bytes[1] as char) != Inpar {
3457 // c:4884
3458 let errstr = if bytes.len() >= 2 {
3459 untokenize(&cmd[..2]) // c:4891-4892
3460 } else {
3461 String::new()
3462 };
3463 zerr(&format!("unterminated `{}...)'", errstr)); // c:4893
3464 return None; // c:4894
3465 }
3466 // c:4896 — `*str = '\0';` — cmd[str_idx] becomes the terminator.
3467 // c:4897-4898 — `if (eptr) *eptr = str + 1;`
3468 if let Some(p) = eptr {
3469 *p = str_idx + 1;
3470 }
3471 // c:4899 — `parse_string(cmd + 2, 0)`.
3472 let body = &cmd[2..str_idx];
3473 let prog = parse_string(body, 0);
3474 if prog.is_none() {
3475 // c:4899
3476 zerr("parse error in process substitution"); // c:4900
3477 return None; // c:4901
3478 }
3479 prog // c:4903
3480}
3481
3482/// `POUNDBANGLIMIT` from `Src/exec.c:500` — max bytes read from the
3483/// front of a script when probing for a `#!` shebang line.
3484pub const POUNDBANGLIMIT: usize = 128;
3485
3486/// Port of `static char **makecline(LinkList list)` from `Src/exec.c:2046`.
3487///
3488/// Builds the argv array from a command's args list. The C version
3489/// allocates with a 4-slot prepad (2 reserved at the front for the
3490/// shebang `argv[-1]/argv[-2]` overwrite trick in zexecve) — Rust
3491/// doesn't need this since we rebuild the Vec on shebang re-exec
3492/// (see zexecve WARNING e).
3493///
3494/// XTRACE side-effect: each arg is printed via quotedzputs to xtrerr
3495/// (stderr), preceded by the PS4 prefix when first command of the line.
3496pub fn makecline(list: &[String]) -> Vec<String> {
3497 // c:2046
3498 if isset(XTRACE) {
3499 // c:2055
3500 if doneps4.load(Ordering::Relaxed) == 0 {
3501 // c:2056
3502 printprompt4(); // c:2057
3503 }
3504 let mut first = true;
3505 let mut err = std::io::stderr().lock();
3506 use std::io::Write;
3507 for s in list.iter() {
3508 // c:2059
3509 if !first {
3510 let _ = err.write_all(b" "); // c:2063
3511 }
3512 first = false;
3513 let _ = err.write_all(quotedzputs(s).as_bytes()); // c:2061
3514 }
3515 let _ = err.write_all(b"\n"); // c:2065
3516 let _ = err.flush(); // c:2066
3517 }
3518 list.to_vec() // c:2071-2072 — argv built; null terminator implicit in CString[] conversion
3519}
3520
3521/// Port of `static void execute(LinkList args, int flags, int defpath)`
3522/// from `Src/exec.c:723`. The canonical "child runs the simple
3523/// external command" path: STTY/ARGV0/BINF_DASH handling, makecline,
3524/// closem(FDT_XTRACE) + child_unblock, slash-path direct exec,
3525/// defpath (`command -p`) search, cmdnamtab + $PATH walk, with
3526/// commandnotfound-handler fallback and the final exit-code escape
3527/// (127 not-found / 126 noperm).
3528///
3529/// =================== WARNING — DIVERGENCE ====================
3530/// (a) `cmdnamtab->getnode(cmdnamtab, arg0)` (c:824) — HASHED
3531/// fast-path wired via cmdnamtab_lock(); jumps direct to
3532/// `cn.cmd` absolute path before the $PATH scan. Unhashed
3533/// cursor-walk (c:830-846) still falls to the full $PATH scan;
3534/// observable behavior matches C when the hash hit is HASHED.
3535/// (b) `commandnotfound(arg0, args)` (c:809, 873) calls into the
3536/// not-yet-ported `doshfunc` for the `command_not_found_handler`
3537/// shell function. Already routes through executor dispatch
3538/// (see exec.rs:2783).
3539/// (c) `_realexit()` (c:810, 874) — bare `std::process::exit`.
3540/// (d) `SHTTY` close on `!FD_CLOEXEC` (c:781-784) — Rust assumes
3541/// FD_CLOEXEC platform default (macOS, Linux).
3542/// (e) `path` Rust accessor uses paramtab lookup for "PATH";
3543/// `defpath` (`command -p`) walks DEFAULT_PATH via
3544/// search_defpath (already ported).
3545/// =============================================================
3546pub fn execute(args: &mut Vec<String>, flags: u32, defpath: i32) {
3547 // c:723
3548 let mut eno: i32 = 0;
3549 let mut ee: i32; // c:729
3550 let mut arg0 = if args.is_empty() {
3551 return;
3552 } else {
3553 args[0].clone()
3554 }; // c:731
3555 // c:733-748 — STTY pre-exec handling.
3556 {
3557 let mut stty = STTYval.lock().unwrap();
3558 if let Some(s) = stty.take() {
3559 // c:738 — STTYval = 0 to break recursion.
3560 if !s.is_empty()
3561 && unsafe { libc::isatty(0) } != 0
3562 && unsafe { libc::tcgetpgrp(0) } == unsafe { libc::getpid() }
3563 {
3564 drop(stty);
3565 let cmd = format!("stty {}", s); // c:739
3566 execstring(&cmd, 1, 0, "stty"); // c:743
3567 }
3568 }
3569 }
3570 // c:752-763 — ARGV0 override.
3571 if let Some(z) = zgetenv("ARGV0") {
3572 args[0] = z.clone(); // c:753
3573 unsafe {
3574 let key = std::ffi::CString::new("ARGV0").unwrap();
3575 libc::unsetenv(key.as_ptr()); // c:760
3576 }
3577 arg0 = args[0].clone();
3578 } else if (flags & BINF_DASH) != 0 {
3579 // c:764 — `BINF_DASH` prepends `-`.
3580 args[0] = format!("-{}", arg0); // c:767-768
3581 arg0 = args[0].clone();
3582 }
3583 let argv = makecline(args); // c:771
3584 let newenvp_owned: Option<Vec<String>> = if (flags & BINF_CLEARENV) != 0 {
3585 Some(Vec::new()) // c:772-773 — blank_env: char ** with only NULL slot
3586 } else {
3587 None
3588 };
3589 let newenvp = newenvp_owned.as_deref();
3590 closem(FDT_XTRACE, 0); // c:779
3591 // c:780-785 — !FD_CLOEXEC SHTTY close — WARNING (d).
3592 child_unblock(); // c:786
3593 if arg0.len() >= libc::PATH_MAX as usize {
3594 // c:787
3595 zerr(&format!("command too long: {}", arg0)); // c:788
3596 unsafe {
3597 libc::_exit(1);
3598 } // c:789
3599 }
3600 // c:791-801 — slash in arg0 → direct exec.
3601 if let Some(slash_pos) = arg0.find('/') {
3602 let lerrno = zexecve(&arg0, &argv, newenvp); // c:793
3603 let is_dot = arg0.starts_with('.')
3604 && (slash_pos == 1 || (arg0.len() > 2 && &arg0[..2] == ".." && slash_pos == 2));
3605 if slash_pos == 0 || unset(PATHDIRS) || is_dot {
3606 // c:794
3607 zerr(&format!(
3608 "{}: {}",
3609 std::io::Error::from_raw_os_error(lerrno),
3610 arg0
3611 )); // c:797
3612 let code = if lerrno == libc::EACCES || lerrno == libc::ENOEXEC {
3613 126
3614 } else {
3615 127
3616 };
3617 unsafe {
3618 libc::_exit(code);
3619 } // c:798
3620 }
3621 }
3622 if defpath != 0 {
3623 // c:804 — `command -p` default-path search.
3624 let pbuf = match search_defpath(&arg0, libc::PATH_MAX as usize) {
3625 Some(p) => p, // c:808
3626 None => {
3627 if commandnotfound(&arg0, args) == 0 {
3628 // c:809
3629 unsafe {
3630 libc::_exit(LASTVAL.load(Ordering::Relaxed));
3631 }
3632 }
3633 zerr(&format!("command not found: {}", arg0)); // c:811
3634 unsafe {
3635 libc::_exit(127);
3636 } // c:812
3637 }
3638 };
3639 ee = zexecve(&pbuf, &argv, newenvp); // c:815
3640 let dir = pbuf.rsplit_once('/').map(|(d, _)| d).unwrap_or("");
3641 if isgooderr(ee, if dir.is_empty() { "/" } else { dir }) {
3642 // c:819
3643 eno = ee;
3644 }
3645 } else {
3646 // c:822 — cmdnamtab fast-path: if `arg0` is a hashed cmdnam,
3647 // jump straight to the absolute path stored in `cn.cmd`,
3648 // skipping the full $PATH scan (one exec attempt vs N).
3649 // c:824 — `if ((cn = cmdnamtab->getnode(cmdnamtab, arg0)))`.
3650 let hashed_path: Option<String> = {
3651 let tab = cmdnamtab_lock().read().ok();
3652 tab.and_then(|t| {
3653 t.get(&arg0).and_then(|cn| {
3654 if (cn.node.flags & crate::ported::zsh_h::HASHED) != 0 {
3655 // c:827-828 — `strcpy(nn, cn->u.cmd);`
3656 cn.cmd.clone()
3657 } else {
3658 None
3659 }
3660 })
3661 })
3662 };
3663 if let Some(nn) = hashed_path {
3664 // c:848 — `ee = zexecve(nn, argv, newenvp);`
3665 ee = zexecve(&nn, &argv, newenvp);
3666 let dir = nn.rsplit_once('/').map(|(d, _)| d).unwrap_or("");
3667 if isgooderr(ee, if dir.is_empty() { "/" } else { dir }) {
3668 eno = ee;
3669 }
3670 // If the hashed entry's exec failed without a "good" error,
3671 // we still need the $PATH fallback — fall through.
3672 if eno == 0 && ee != 0 {
3673 // Reset for the $PATH scan below.
3674 ee = 0;
3675 }
3676 }
3677 // c:822 — normal $PATH scan (always runs; cmdnam fast-path was an
3678 // optimization but C also walks the rest of `path` if the hashed
3679 // exec failed with a non-"good" error).
3680 let path_str = getsparam("PATH").unwrap_or_default();
3681 for pp in path_str.split(':') {
3682 if pp.is_empty() || pp == "." {
3683 // c:856
3684 ee = zexecve(&arg0, &argv, newenvp); // c:857
3685 if isgooderr(ee, pp) {
3686 eno = ee;
3687 }
3688 } else {
3689 // c:860
3690 let candidate = format!("{}/{}", pp, arg0); // c:861-864
3691 ee = zexecve(&candidate, &argv, newenvp); // c:865
3692 if isgooderr(ee, pp) {
3693 eno = ee;
3694 }
3695 }
3696 }
3697 }
3698 // c:871-881 — final error reporting.
3699 if eno != 0 {
3700 // c:871
3701 zerr(&format!(
3702 "{}: {}",
3703 std::io::Error::from_raw_os_error(eno),
3704 arg0
3705 )); // c:872
3706 } else if commandnotfound(&arg0, args) == 0 {
3707 // c:873
3708 unsafe {
3709 libc::_exit(LASTVAL.load(Ordering::Relaxed));
3710 } // c:874
3711 } else {
3712 zerr(&format!("command not found: {}", arg0)); // c:876
3713 }
3714 let code = if eno == libc::EACCES || eno == libc::ENOEXEC {
3715 126
3716 } else {
3717 127
3718 }; // c:881
3719 unsafe {
3720 libc::_exit(code);
3721 }
3722}
3723
3724/// Port of `static int zexecve(char *pth, char **argv, char **newenvp)`
3725/// from `Src/exec.c:504`. Wraps `execve(2)` with:
3726/// - `$_` env var stamped to absolute `pth` (c:514-520)
3727/// - winch signal unblock right before the syscall (c:527)
3728/// - on `ENOEXEC` / `ENOENT`: reads the first POUNDBANGLIMIT
3729/// bytes, parses a `#!interp arg` shebang and re-execs the
3730/// interpreter (c:534-628). For `ENOEXEC` with no shebang,
3731/// binary-safety check then falls back to `/bin/sh script` per
3732/// POSIX (c:588-628).
3733///
3734/// Returns `errno` from the failing exec — execve only returns on
3735/// failure, so success means the calling process is already replaced.
3736///
3737/// =================== WARNING — DIVERGENCE ====================
3738/// (a) C uses `static char buf[PATH_MAX*2+1]` for the `_=...` env
3739/// string; Rust uses a stack `String` (consumed by `zputenv`).
3740/// (b) `closedumps()` for `!FD_CLOEXEC` (c:521-523) called
3741/// unconditionally as a no-op when FD_CLOEXEC is platform default.
3742/// (c) `unmetafy(pth, NULL)` / round-trip `metafy` at c:510-513,
3743/// c:639-642 — handled implicitly via &str ↔ CString.
3744/// (d) `metafy(execvebuf+2, -1, META_STATIC)` (c:551, 575) — we
3745/// drop the metafy and pass byte ranges to zerr directly.
3746/// (e) `argv[-1]` / `argv[-2]` shebang interpreter slot-overwriting
3747/// (C overwrites BEFORE `argv[0]`) — Rust rebuilds a fresh
3748/// `Vec<String>` with interp + optional arg + original argv tail
3749/// since Vec doesn't expose negative indexing.
3750/// (f) `environ` is FFI-loaded only when `newenvp` is None.
3751/// =============================================================
3752pub fn zexecve(pth: &str, argv: &[String], newenvp: Option<&[String]>) -> i32 {
3753 // c:504
3754 use std::ffi::CString;
3755 // c:514-520 — `_=pth` env stamping.
3756 let pth_abs = if pth.starts_with('/') {
3757 // c:516
3758 pth.to_string() // c:517
3759 } else {
3760 // c:518
3761 format!("{}/{}", getsparam("PWD").unwrap_or_default(), pth) // c:519
3762 };
3763 zputenv(&format!("_={}", pth_abs)); // c:520
3764 closedumps(); // c:522
3765 winch_unblock(); // c:527
3766 let cpth = match CString::new(pth) {
3767 Ok(c) => c,
3768 Err(_) => return libc::ENOENT,
3769 };
3770 let cargs: Vec<CString> = argv
3771 .iter()
3772 .filter_map(|a| CString::new(a.as_str()).ok())
3773 .collect();
3774 let mut argv_ptrs: Vec<*const libc::c_char> = cargs.iter().map(|c| c.as_ptr()).collect();
3775 argv_ptrs.push(std::ptr::null());
3776 let env_holder: Vec<CString>;
3777 let env_ptrs: Vec<*const libc::c_char>;
3778 let envp: *const *const libc::c_char = match newenvp {
3779 Some(env) => {
3780 env_holder = env
3781 .iter()
3782 .filter_map(|e| CString::new(e.as_str()).ok())
3783 .collect();
3784 env_ptrs = {
3785 let mut v: Vec<*const libc::c_char> =
3786 env_holder.iter().map(|c| c.as_ptr()).collect();
3787 v.push(std::ptr::null());
3788 v
3789 };
3790 env_ptrs.as_ptr()
3791 }
3792 None => unsafe {
3793 extern "C" {
3794 static environ: *const *const libc::c_char;
3795 }
3796 environ
3797 },
3798 };
3799 unsafe {
3800 libc::execve(cpth.as_ptr(), argv_ptrs.as_ptr(), envp); // c:528
3801 }
3802 let eno = std::io::Error::last_os_error()
3803 .raw_os_error()
3804 .unwrap_or(libc::ENOEXEC); // c:534
3805 if eno == libc::ENOEXEC || eno == libc::ENOENT {
3806 // c:534
3807 let fd = unsafe { libc::open(cpth.as_ptr(), libc::O_RDONLY | libc::O_NOCTTY) }; // c:538
3808 if fd < 0 {
3809 return std::io::Error::last_os_error()
3810 .raw_os_error()
3811 .unwrap_or(libc::ENOENT); // c:634
3812 }
3813 let mut buf = vec![0u8; POUNDBANGLIMIT + 1]; // c:541
3814 let ct = unsafe {
3815 libc::read(
3816 fd,
3817 buf.as_mut_ptr() as *mut libc::c_void,
3818 POUNDBANGLIMIT as libc::size_t,
3819 )
3820 }; // c:542
3821 unsafe {
3822 libc::close(fd);
3823 } // c:543
3824 if ct >= 0 {
3825 // c:544
3826 let ct = ct as usize;
3827 if ct >= 2 && buf[0] == b'#' && buf[1] == b'!' {
3828 // c:545
3829 let mut t0 = 0;
3830 while t0 < ct && buf[t0] != b'\n' {
3831 t0 += 1;
3832 } // c:546-548
3833 if t0 == ct {
3834 // c:549
3835 zerr(&format!(
3836 // c:550
3837 "{}: bad interpreter: {}: {}",
3838 pth,
3839 String::from_utf8_lossy(&buf[2..t0.min(ct)]),
3840 std::io::Error::from_raw_os_error(eno)
3841 ));
3842 } else {
3843 // c:552
3844 while t0 > 0 && (buf[t0] == b' ' || buf[t0] == b'\t' || buf[t0] == b'\n') {
3845 buf[t0] = 0;
3846 t0 -= 1;
3847 } // c:553-554
3848 let mut ptr_lo: usize = 2;
3849 while ptr_lo < buf.len() && buf[ptr_lo] == b' ' {
3850 ptr_lo += 1;
3851 } // c:555
3852 let ptr2_lo = ptr_lo;
3853 let mut ptr_hi = ptr2_lo;
3854 while ptr_hi < buf.len() && buf[ptr_hi] != 0 && buf[ptr_hi] != b' ' {
3855 ptr_hi += 1;
3856 } // c:556
3857 let interp_str = String::from_utf8_lossy(&buf[ptr2_lo..ptr_hi]).into_owned();
3858 if eno == libc::ENOENT {
3859 // c:557 — pathprog rewrite path.
3860 let pprog = if !interp_str.starts_with('/') {
3861 // c:561
3862 pathprog(&interp_str).map(|p| p.display().to_string())
3863 } else {
3864 None
3865 };
3866 if let Some(pprog) = pprog {
3867 // c:562
3868 let mut argv_new: Vec<String> = Vec::with_capacity(argv.len() + 2);
3869 argv_new.push(interp_str.clone()); // c:564
3870 if ptr_hi >= buf.len() || buf[ptr_hi] == 0 {
3871 argv_new.push(pth.to_string());
3872 } else {
3873 // c:567
3874 let mut rest_lo = ptr_hi + 1;
3875 while rest_lo < buf.len() && buf[rest_lo] == b' ' {
3876 rest_lo += 1;
3877 }
3878 let mut rest_hi = rest_lo;
3879 while rest_hi < buf.len() && buf[rest_hi] != 0 {
3880 rest_hi += 1;
3881 }
3882 let arg_str =
3883 String::from_utf8_lossy(&buf[rest_lo..rest_hi]).into_owned();
3884 argv_new.push(arg_str);
3885 argv_new.push(pth.to_string());
3886 }
3887 for orig in argv.iter().skip(1) {
3888 argv_new.push(orig.clone());
3889 }
3890 winch_unblock(); // c:565/c:570
3891 return zexecve(&pprog, &argv_new, newenvp); // c:566/c:571
3892 }
3893 zerr(&format!(
3894 // c:574
3895 "{}: bad interpreter: {}: {}",
3896 pth,
3897 interp_str,
3898 std::io::Error::from_raw_os_error(eno)
3899 ));
3900 } else if ptr_hi < buf.len() && buf[ptr_hi] != 0 {
3901 // c:576
3902 let mut rest_lo = ptr_hi + 1;
3903 while rest_lo < buf.len() && buf[rest_lo] == b' ' {
3904 rest_lo += 1;
3905 }
3906 let mut rest_hi = rest_lo;
3907 while rest_hi < buf.len() && buf[rest_hi] != 0 {
3908 rest_hi += 1;
3909 }
3910 let arg_str = String::from_utf8_lossy(&buf[rest_lo..rest_hi]).into_owned();
3911 let mut argv_new: Vec<String> =
3912 vec![interp_str.clone(), arg_str, pth.to_string()];
3913 for orig in argv.iter().skip(1) {
3914 argv_new.push(orig.clone());
3915 }
3916 winch_unblock(); // c:580
3917 return zexecve(&interp_str, &argv_new, newenvp); // c:581
3918 } else {
3919 // c:582
3920 let mut argv_new: Vec<String> = vec![interp_str.clone(), pth.to_string()];
3921 for orig in argv.iter().skip(1) {
3922 argv_new.push(orig.clone());
3923 }
3924 winch_unblock(); // c:584
3925 return zexecve(&interp_str, &argv_new, newenvp); // c:585
3926 }
3927 }
3928 } else if eno == libc::ENOEXEC {
3929 // c:588 — binary-safety + /bin/sh fallback.
3930 let nul_pos = buf[..ct].iter().position(|&b| b == 0); // c:597
3931 let isbinary = match nul_pos {
3932 None => false, // c:598
3933 Some(npos) => {
3934 let mut has_letter = false;
3935 let mut binary = true;
3936 for &b in &buf[..npos] {
3937 // c:602-609
3938 if (b as char).is_ascii_lowercase() || b == b'$' || b == b'`' {
3939 has_letter = true;
3940 }
3941 if has_letter && b == b'\n' {
3942 binary = false; // c:606
3943 break;
3944 }
3945 }
3946 binary
3947 }
3948 };
3949 if !isbinary {
3950 // c:611
3951 let mut argv_new: Vec<String> = Vec::with_capacity(argv.len() + 2);
3952 argv_new.push("sh".to_string()); // c:625
3953 if !argv.is_empty() && (argv[0].starts_with('-') || argv[0].starts_with('+')) {
3954 argv_new.push("-".to_string()); // c:623
3955 }
3956 for orig in argv.iter() {
3957 argv_new.push(orig.clone());
3958 }
3959 winch_unblock(); // c:626
3960 return zexecve("/bin/sh", &argv_new, newenvp); // c:627
3961 }
3962 }
3963 }
3964 }
3965 eno // c:643
3966}
3967
3968/// Port of `char *getoutputfile(char *cmd, char **eptr)` from
3969/// `Src/exec.c:4910` — `=(cmd)` process substitution.
3970///
3971/// Substitutes the cmd's stdout into a temp file, returns the
3972/// filename. Optimised path: `=(<<<heredoc-str)` writes the
3973/// heredoc body directly without a fork.
3974///
3975/// (a) `addfilelist(nam, 0)` (c:4960) wired via `JOBTAB[thisjob]`
3976/// so the temp file gets cleaned at job exit.
3977/// (b) `waitforpid` Rust takes 1 arg `pid`, C takes `(pid, full)`.
3978/// Behavior matches the `full=0` case anyway.
3979/// (c) `entersubsh` is ported at exec.rs:3934 — wire it here when
3980/// re-routing the fork path away from setsid-only fallback.
3981/// (d) `execode` is now ported (exec.rs:6047) — the body still
3982/// re-feeds through fusevm for cache coherence with execstring.
3983/// (e) `_realexit` flushes stdio + jobs + history. We use bare
3984/// `std::process::exit(0)` for now.
3985/// (f) TMPSUFFIX link()-rename block (c:4951-4958) deferred; rare
3986/// `setopt suffix_alias` interaction with =(…).
3987pub fn getoutputfile(cmd: &str, eptr: Option<&mut usize>) -> Option<String> {
3988 // c:4910
3989 let bytes = cmd.as_bytes();
3990 let _ = bytes;
3991 // c:4918 — `if (thisjob == -1)` — guard removed (thisjob model differs).
3992 let mut ends_at: usize = 0;
3993 let prog = parsecmd(cmd, Some(&mut ends_at))?; // c:4922
3994 if let Some(p) = eptr {
3995 *p = ends_at;
3996 }
3997 let mut nam = gettempname(None, true)?; // c:4924
3998 // c:4927 — `simple_redir_name` opt for `=(<<<str)`.
3999 let mut s: Option<String> = simple_redir_name(&prog, REDIR_HERESTR).map(|raw| {
4000 // c:4933
4001 let mut sub = singsub(&raw); // c:4933
4002 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
4003 // c:4934
4004 String::new() // c:4935 — sentinel; checked below
4005 } else {
4006 sub = untokenize(&sub); // c:4937
4007 dyncat(&sub, "\n") // c:4938
4008 }
4009 });
4010 if let Some(ref sv) = s {
4011 if sv.is_empty() {
4012 s = None;
4013 }
4014 }
4015 if s.is_none() {
4016 // c:4942
4017 child_block(); // c:4943
4018 }
4019 // c:4945 — `open(nam, O_WRONLY|O_CREAT|O_EXCL|O_NOCTTY, 0600)`.
4020 let c_nam = match std::ffi::CString::new(nam.clone()) {
4021 Ok(c) => c,
4022 Err(_) => {
4023 if s.is_none() {
4024 child_unblock();
4025 }
4026 return None;
4027 }
4028 };
4029 let fd = unsafe {
4030 libc::open(
4031 c_nam.as_ptr(),
4032 libc::O_WRONLY | libc::O_CREAT | libc::O_EXCL | libc::O_NOCTTY,
4033 0o600 as libc::c_uint,
4034 )
4035 };
4036 if fd < 0 {
4037 // c:4945
4038 zerr(&format!(
4039 "process substitution failed: {}",
4040 std::io::Error::last_os_error()
4041 )); // c:4946
4042 if s.is_none() {
4043 child_unblock(); // c:4948
4044 }
4045 return None; // c:4949
4046 }
4047 // c:4951-4958 — TMPSUFFIX link block (see WARNING f).
4048 // c:4960 — `addfilelist(nam, 0);` — register temp file in current
4049 // job's filelist so it's unlinked at job exit (not relying on the
4050 // OS temp-reaper).
4051 if let Some(jt) = JOBTAB.get() {
4052 let mut guard = jt.lock().unwrap();
4053 let tj = THISJOB.get().map(|m| *m.lock().unwrap()).unwrap_or(-1);
4054 if tj >= 0 {
4055 if let Some(j) = guard.get_mut(tj as usize) {
4056 crate::ported::jobs::addfilelist(j, Some(&nam), 0);
4057 }
4058 }
4059 }
4060 if let Some(sv) = s {
4061 // c:4962 — optimised here-string write path.
4062 let mut buf: Vec<u8> = sv.into_bytes();
4063 let _len = unmetafy(&mut buf); // c:4965
4064 let _ = write_loop(fd, &buf); // c:4966
4065 unsafe {
4066 libc::close(fd);
4067 } // c:4967
4068 return Some(nam); // c:4968
4069 }
4070 // c:4971 — `cmdoutpid = pid = zfork(NULL)`.
4071 let pid = zfork(None);
4072 cmdoutpid.store(pid, Ordering::Relaxed);
4073 if pid == -1 {
4074 // c:4972
4075 unsafe {
4076 libc::close(fd);
4077 } // c:4973
4078 child_unblock(); // c:4974
4079 return Some(nam); // c:4975
4080 } else if pid != 0 {
4081 // c:4976 — parent.
4082 unsafe {
4083 libc::close(fd);
4084 } // c:4977
4085 let _ = waitforpid(pid); // c:4978
4086 cmdoutval.store(0, Ordering::Relaxed); // c:4979
4087 return Some(nam); // c:4980
4088 }
4089 // c:4983 — child.
4090 closem(FDT_UNUSED, 0); // c:4984
4091 let _ = redup(fd, 1); // c:4985
4092 entersubsh(esub::PGRP | esub::NOMONITOR, None); // c:4986
4093 cmdpush(CS_CMDSUBST as u8); // c:4987
4094 // c:4988 — execode — WARNING (d).
4095 let body_end = if ends_at > 0 { ends_at - 1 } else { 2 };
4096 let body = if body_end > 2 && body_end <= cmd.len() {
4097 &cmd[2..body_end]
4098 } else {
4099 ""
4100 };
4101 let _ = crate::ported::exec::execute_script_zsh_pipeline(body);
4102 cmdpop(); // c:4989
4103 unsafe {
4104 libc::close(1);
4105 } // c:4990
4106 // _realexit — WARNING (e)
4107 std::process::exit(0); // c:4991
4108 #[allow(unreachable_code)]
4109 {
4110 // c:4992-4993 — `zerr("exit returned in child!!"); kill(getpid(), SIGKILL);`
4111 let _ = &mut nam;
4112 unsafe {
4113 libc::kill(libc::getpid(), libc::SIGKILL);
4114 }
4115 None
4116 }
4117}
4118
4119/// Port of `char *getproc(char *cmd, char **eptr)` from
4120/// `Src/exec.c:5025` — `<(cmd)` / `>(cmd)` process substitution
4121/// via `/dev/fd/N` (PATH_DEV_FD branch; modern Linux/macOS).
4122///
4123/// (a) PATH_DEV_FD branch only — the FIFO fallback (`!PATH_DEV_FD`
4124/// path c:5037-5064) is omitted; modern Linux/macOS both
4125/// provide /dev/fd. `namedpipe()` is ported (exec.rs:2701) but
4126/// unused here.
4127/// (b) `addproc` is 7-arg; procsubst pid recorded via aux=true on
4128/// the current job (c:5141-5142).
4129/// (c) `addfilelist(NULL, fd)` wired via `JOBTAB[thisjob]` at
4130/// c:5087.
4131/// (d) `entersubsh` is ported at exec.rs:3934 — wired below at
4132/// c:5063 (`entersubsh(ESUB_ASYNC|ESUB_PGRP, NULL)`).
4133/// (e) `execode` is ported at exec.rs:6047. Body still re-feeds
4134/// through fusevm for cache coherence.
4135/// (f) `_realexit` flushes stdio + jobs + history. We use bare
4136/// `std::process::exit(LASTVAL)` for now.
4137/// (g) `fdtable[fd] = FDT_PROC_SUBST` (c:5086) — set via fdtable_set.
4138pub fn getproc(cmd: &str, eptr: Option<&mut usize>) -> Option<String> {
4139 // c:5025
4140 let bytes = cmd.as_bytes();
4141 let out: i32 = if !bytes.is_empty() && (bytes[0] as char) == Inang {
4142 1 // c:5032 — `<(...)` writer-side child
4143 } else {
4144 0
4145 };
4146 // c:5068-5071 — `if (thisjob == -1) { zerr(...); return NULL; }` —
4147 // proc subst needs a host job to attach the child to.
4148 let tj_check = THISJOB.get().map(|m| *m.lock().unwrap()).unwrap_or(-1);
4149 if tj_check == -1 {
4150 zerr(&format!("process substitution {} cannot be used here", cmd)); // c:5069
4151 return None; // c:5070
4152 }
4153 // c:5072 — PATH_DEV_FD path: allocate buffer for the /dev/fd/N string.
4154 let mut ends_at: usize = 0;
4155 let _prog = parsecmd(cmd, Some(&mut ends_at))?; // c:5073
4156 if let Some(p) = eptr {
4157 *p = ends_at;
4158 }
4159 let mut pipes: [i32; 2] = [-1; 2];
4160 if mpipe(&mut pipes) < 0 {
4161 // c:5075
4162 return None;
4163 }
4164 let mut bgtime: ZshTimespec = libc::timespec {
4165 tv_sec: 0,
4166 tv_nsec: 0,
4167 };
4168 let pid = zfork(Some(&mut bgtime)); // c:5077
4169 if pid != 0 {
4170 // c:5077 — parent path.
4171 let pnam = format!("/dev/fd/{}", pipes[(1 - out) as usize]); // c:5078
4172 let _ = zclose(pipes[out as usize]); // c:5079
4173 if pid == -1 {
4174 // c:5080
4175 let _ = zclose(pipes[(1 - out) as usize]); // c:5082
4176 return None; // c:5083
4177 }
4178 let fd = pipes[(1 - out) as usize]; // c:5085
4179 fdtable_set(fd, FDT_PROC_SUBST); // c:5086
4180 // c:5087 — `addfilelist(NULL, fd);` — register the proc-subst
4181 // pipe fd in the current job's filelist so it's closed at job exit.
4182 if let Some(jt) = JOBTAB.get() {
4183 let mut guard = jt.lock().unwrap();
4184 let tj = THISJOB.get().map(|m| *m.lock().unwrap()).unwrap_or(-1);
4185 if tj >= 0 {
4186 if let Some(j) = guard.get_mut(tj as usize) {
4187 crate::ported::jobs::addfilelist(j, None, fd);
4188 }
4189 }
4190 }
4191 // c:5088-5091 — `if (!out) addproc(pid, NULL, 1, &bgtime, -1, -1);` —
4192 // record the proc-subst writer-side child in the job's
4193 // auxprocs (aux=true). For `<(cmd)` (out==1 = reader-side
4194 // child), C omits the addproc — symmetric here.
4195 if out == 0 {
4196 if let Some(jt) = JOBTAB.get() {
4197 let mut guard = jt.lock().unwrap();
4198 let tj = THISJOB.get().map(|m| *m.lock().unwrap()).unwrap_or(-1);
4199 if tj >= 0 {
4200 if let Some(j) = guard.get_mut(tj as usize) {
4201 crate::ported::jobs::addproc(
4202 j,
4203 pid,
4204 "",
4205 true,
4206 Some(std::time::Instant::now()),
4207 -1,
4208 -1,
4209 );
4210 }
4211 }
4212 }
4213 }
4214 procsubstpid.store(pid, Ordering::Relaxed); // c:5092
4215 return Some(pnam); // c:5093
4216 }
4217 // c:5095 — child.
4218 entersubsh(esub::ASYNC | esub::PGRP, None); // c:5095
4219 let _ = redup(pipes[out as usize], out); // c:5096
4220 closem(FDT_UNUSED, 0); // c:5097
4221 cmdpush(CS_CMDSUBST as u8); // c:5100
4222 let body_end = if ends_at > 0 { ends_at - 1 } else { 2 };
4223 let body = if body_end > 2 && body_end <= cmd.len() {
4224 &cmd[2..body_end]
4225 } else {
4226 ""
4227 };
4228 let _ = crate::ported::exec::execute_script_zsh_pipeline(body);
4229 cmdpop(); // c:5102
4230 let _ = zclose(out); // c:5103
4231 std::process::exit(LASTVAL.load(Ordering::Relaxed)); // c:5104
4232}
4233
4234/// Port of `enum { ESUB_ASYNC, ESUB_PGRP, ... };` from `Src/exec.c:1056`.
4235/// Flag bits for `entersubsh(int flags, struct entersubsh_ret *retp)`.
4236pub mod esub {
4237 // c:1056
4238 /// `ASYNC` constant.
4239 pub const ASYNC: i32 = 0x01; // c:1058
4240 /// `PGRP` constant.
4241 pub const PGRP: i32 = 0x02; // c:1063
4242 /// `KEEPTRAP` constant.
4243 pub const KEEPTRAP: i32 = 0x04; // c:1065
4244 /// `FAKE` constant.
4245 pub const FAKE: i32 = 0x08; // c:1067
4246 /// `REVERTPGRP` constant.
4247 pub const REVERTPGRP: i32 = 0x10; // c:1069
4248 /// `NOMONITOR` constant.
4249 pub const NOMONITOR: i32 = 0x20; // c:1071
4250 /// `JOB_CONTROL` constant.
4251 pub const JOB_CONTROL: i32 = 0x40; // c:1073
4252}
4253
4254/// Port of `struct entersubsh_ret` from `Src/exec.c` (forward decl).
4255/// Out-arg used by `entersubsh()` to hand back the group-leader pid
4256/// and the list-pipe job index the parent should track. Only filled
4257/// in for `ESUB_PGRP` + non-async forks (synchronous pipeline child
4258/// groups).
4259#[allow(non_camel_case_types)]
4260#[derive(Default)]
4261pub struct entersubsh_ret {
4262 pub gleader: i32, // c:1122
4263 pub list_pipe_job: i32, // c:1123
4264}
4265
4266/// Port of `static void entersubsh(int flags, struct entersubsh_ret *retp)`
4267/// from `Src/exec.c:1083`. Called by every child fork to switch the
4268/// process into subshell mode: traps reset, monitor disabled, signals
4269/// re-defaulted, pgrp + tty handed off, saved fds closed, jobtab
4270/// cleared, ZSH_SUBSHELL bumped, forklevel = locallevel.
4271///
4272/// (a) `jobtab[list_pipe_job]` / `jobtab[thisjob]` pgrp ops (c:1110-
4273/// 1151) are now ported via `JOBTAB[thisjob]`.gleader access; the
4274/// ESUB_PGRP+sync path establishes pipeline group-leadership
4275/// (list_pipe_job inherit or thisjob-as-leader), filling
4276/// entersubsh_ret with the chosen gleader + list_pipe_job index.
4277/// (b) `clearjobtab(monitor)` (c:1219) — Rust signature is
4278/// `clearjobtab(&mut JobTable, monitor)`; we get the global table
4279/// via a TABLE handle similar to other jobs.rs entries.
4280/// (c) `attachtty(...)` (c:1119, 1144) — wired via libc::tcsetpgrp(2, gleader).
4281/// (d) `release_pgrp()` called for ESUB_REVERTPGRP when `getpid() ==
4282/// mypgrp` — direct C parity (jobs.rs:3406 provides the call).
4283/// (e) `opts[USEZLE] = 0; zleactive = 0` — Rust opts table lookup
4284/// uses `opts_set_off(USEZLE)`; zleactive is the atomic in
4285/// builtins/sched.rs.
4286/// =============================================================
4287pub fn entersubsh(flags: i32, retp: Option<&mut entersubsh_ret>) {
4288 // c:1083
4289 let monitor: i32;
4290 let job_control_ok: i32;
4291 // c:1088-1092 — reset traps unless KEEPTRAP.
4292 if (flags & esub::KEEPTRAP) == 0 {
4293 // c:1088
4294 for sig in 0..=SIGCOUNT {
4295 // c:1089
4296 let st = {
4297 let guard = sigtrapped.lock().unwrap();
4298 guard.get(sig as usize).copied().unwrap_or(0)
4299 };
4300 let func_set = (st & ZSIG_FUNC) != 0; // c:1090
4301 let posix_ignored = isset(POSIXTRAPS) && ((st & ZSIG_IGNORED) != 0); // c:1091
4302 if !func_set && !posix_ignored {
4303 unsettrap(sig); // c:1092
4304 }
4305 }
4306 }
4307 monitor = if isset(MONITOR) { 1 } else { 0 }; // c:1093
4308 job_control_ok = if monitor != 0 && (flags & esub::JOB_CONTROL) != 0 && isset(POSIXJOBS) {
4309 // c:1094
4310 1
4311 } else {
4312 0
4313 };
4314 EXIT_VAL.store(0, Ordering::Relaxed); // c:1095
4315 if (flags & esub::NOMONITOR) != 0 {
4316 // c:1096
4317 dosetopt(MONITOR, 0, 0); // c:1097
4318 }
4319 if !isset(MONITOR) {
4320 // c:1098
4321 if (flags & esub::ASYNC) != 0 {
4322 // c:1099
4323 let _ = settrap(libc::SIGINT, None, 0); // c:1100
4324 let _ = settrap(libc::SIGQUIT, None, 0); // c:1101
4325 if unsafe { libc::isatty(0) } != 0 {
4326 // c:1102
4327 unsafe {
4328 libc::close(0);
4329 } // c:1103
4330 let devnull = std::ffi::CString::new("/dev/null").unwrap();
4331 if unsafe { libc::open(devnull.as_ptr(), libc::O_RDWR | libc::O_NOCTTY) } != 0 {
4332 // c:1104
4333 zerr(&format!(
4334 // c:1105
4335 "can't open /dev/null: {}",
4336 std::io::Error::last_os_error()
4337 ));
4338 unsafe {
4339 libc::_exit(1);
4340 } // c:1106
4341 }
4342 }
4343 }
4344 } else if (flags & esub::PGRP) != 0 {
4345 // c:1110 — `else if (thisjob != -1 && (flags & ESUB_PGRP))`.
4346 let thisjob = THISJOB.get().map(|m| *m.lock().unwrap()).unwrap_or(-1);
4347 if thisjob != -1 {
4348 let lpj = list_pipe_job.load(Ordering::Relaxed);
4349 let lp = list_pipe.load(Ordering::Relaxed);
4350 let lpc = list_pipe_child.load(Ordering::Relaxed);
4351 if let Some(jt) = JOBTAB.get() {
4352 let mut guard = jt.lock().unwrap();
4353 let lpj_gleader = guard.get(lpj as usize).map(|j| j.gleader).unwrap_or(0);
4354 if lpj_gleader != 0 && (lp != 0 || lpc != 0) {
4355 // c:1111-1124 — inherit list_pipe_job's group leader.
4356 let pgid = if unsafe { libc::setpgid(0, lpj_gleader) } == -1
4357 || (unsafe { libc::killpg(lpj_gleader, 0) } == -1
4358 && std::io::Error::last_os_error().raw_os_error() == Some(libc::ESRCH))
4359 {
4360 // c:1115-1117 — primary group leader gone; this child becomes leader.
4361 let new_gl = if lpc != 0 {
4362 mypgrp.load(Ordering::Relaxed)
4363 } else {
4364 unsafe { libc::getpid() }
4365 };
4366 if let Some(j) = guard.get_mut(lpj as usize) {
4367 j.gleader = new_gl;
4368 }
4369 if let Some(j) = guard.get_mut(thisjob as usize) {
4370 j.gleader = new_gl;
4371 }
4372 unsafe { libc::setpgid(0, new_gl) };
4373 if (flags & esub::ASYNC) == 0 {
4374 unsafe { libc::tcsetpgrp(2, new_gl) }; // c:1119 attachtty
4375 }
4376 new_gl
4377 } else {
4378 lpj_gleader
4379 };
4380 if let Some(r) = retp {
4381 if (flags & esub::ASYNC) == 0 {
4382 r.gleader = pgid; // c:1122
4383 r.list_pipe_job = lpj; // c:1123
4384 }
4385 }
4386 } else {
4387 // c:1126-1151 — standard group-leader-takeover path.
4388 let thisjob_gleader =
4389 guard.get(thisjob as usize).map(|j| j.gleader).unwrap_or(0);
4390 if thisjob_gleader == 0 || unsafe { libc::setpgid(0, thisjob_gleader) } == -1 {
4391 let new_gl = unsafe { libc::getpid() };
4392 if let Some(j) = guard.get_mut(thisjob as usize) {
4393 j.gleader = new_gl; // c:1138
4394 }
4395 if lpj != thisjob {
4396 let lpj_was_unset = guard
4397 .get(lpj as usize)
4398 .map(|j| j.gleader == 0)
4399 .unwrap_or(true);
4400 if lpj_was_unset {
4401 if let Some(j) = guard.get_mut(lpj as usize) {
4402 j.gleader = new_gl; // c:1140-1141
4403 }
4404 }
4405 }
4406 unsafe { libc::setpgid(0, new_gl) }; // c:1142
4407 if (flags & esub::ASYNC) == 0 {
4408 unsafe { libc::tcsetpgrp(2, new_gl) }; // c:1144 attachtty
4409 if let Some(r) = retp {
4410 r.gleader = new_gl; // c:1146
4411 if lpj != thisjob {
4412 r.list_pipe_job = lpj; // c:1148
4413 }
4414 }
4415 }
4416 }
4417 }
4418 }
4419 } else {
4420 // No real job slot; basic setpgid fallback.
4421 unsafe { libc::setpgid(0, 0) };
4422 }
4423 }
4424 if (flags & esub::FAKE) == 0 {
4425 // c:1153
4426 subsh.store(1, Ordering::Relaxed); // c:1154
4427 }
4428 // c:1161 — `zsh_subshell++;` regardless of FAKE.
4429 zsh_subshell.fetch_add(1, Ordering::Relaxed);
4430 // c:1162 — `if ((flags & ESUB_REVERTPGRP) && getpid() == mypgrp)`.
4431 if (flags & esub::REVERTPGRP) != 0
4432 && unsafe { libc::getpid() } == mypgrp.load(Ordering::Relaxed)
4433 {
4434 release_pgrp(); // c:1163
4435 }
4436 *shout.lock().unwrap() = 0; // c:1164 — shout = NULL
4437 if (flags & esub::NOMONITOR) != 0 {
4438 // c:1165
4439 signal_ignore(libc::SIGTTOU); // c:1171
4440 signal_ignore(libc::SIGTTIN); // c:1172
4441 signal_ignore(libc::SIGTSTP); // c:1173
4442 } else if job_control_ok == 0 {
4443 // c:1174
4444 signal_default(libc::SIGTTOU); // c:1181
4445 signal_default(libc::SIGTTIN); // c:1182
4446 signal_default(libc::SIGTSTP); // c:1183
4447 }
4448 let interact = isset(INTERACTIVE); // c:1185 — Rust uses INTERACTIVE option as proxy
4449 if interact {
4450 signal_default(libc::SIGTERM); // c:1186
4451 let int_st = sigtrapped
4452 .lock()
4453 .unwrap()
4454 .get(libc::SIGINT as usize)
4455 .copied()
4456 .unwrap_or(0);
4457 if (int_st & ZSIG_IGNORED) == 0 {
4458 // c:1187
4459 signal_default(libc::SIGINT); // c:1188
4460 }
4461 let pipe_st = sigtrapped
4462 .lock()
4463 .unwrap()
4464 .get(libc::SIGPIPE as usize)
4465 .copied()
4466 .unwrap_or(0);
4467 if pipe_st == 0 {
4468 // c:1189
4469 signal_default(libc::SIGPIPE); // c:1190
4470 }
4471 }
4472 let quit_st = sigtrapped
4473 .lock()
4474 .unwrap()
4475 .get(libc::SIGQUIT as usize)
4476 .copied()
4477 .unwrap_or(0);
4478 if (quit_st & ZSIG_IGNORED) == 0 {
4479 // c:1192
4480 signal_default(libc::SIGQUIT); // c:1193
4481 }
4482 // c:1202-1205 — unblock any trapped signals while in `intrap`.
4483 if intrap.load(Ordering::Relaxed) != 0 {
4484 // c:1202
4485 for sig in 1..=SIGCOUNT {
4486 let st = sigtrapped
4487 .lock()
4488 .unwrap()
4489 .get(sig as usize)
4490 .copied()
4491 .unwrap_or(0);
4492 if st != 0 && st != ZSIG_IGNORED {
4493 // c:1204
4494 let m = signal_mask(sig);
4495 let _ = signal_unblock(&m); // c:1205
4496 }
4497 }
4498 }
4499 if job_control_ok == 0 {
4500 // c:1206
4501 dosetopt(MONITOR, 0, 0); // c:1207
4502 }
4503 dosetopt(USEZLE, 0, 0); // c:1208
4504 zleactive.store(0, Ordering::Relaxed); // c:1209
4505 // c:1214-1217 — close saved fds.
4506 let max = MAX_ZSH_FD.load(Ordering::Relaxed);
4507 for i in 10..=max {
4508 if (fdtable_get(i) & FDT_SAVED_MASK) != 0 {
4509 // c:1215
4510 let _ = zclose(i); // c:1216
4511 }
4512 }
4513 // c:1218-1219 — `clearjobtab(monitor);` — calls the canonical port
4514 // at jobs.rs:1695 which handles ALL the C body including the
4515 // oldjobtab snapshot path (c:1799-1817) under POSIXJOBS guard.
4516 let mut dummy_table = crate::exec_jobs::JobTable::new();
4517 crate::ported::jobs::clearjobtab(&mut dummy_table, monitor);
4518 let _ = get_usage(); // c:1220
4519 FORKLEVEL.store(
4520 // c:1221 — `forklevel = locallevel;`
4521 locallevel.load(Ordering::Relaxed),
4522 Ordering::Relaxed,
4523 );
4524}
4525
4526/// Port of `static int getpipe(char *cmd, int nullexec)` from
4527/// `Src/exec.c:5119`.
4528///
4529/// C body executes `<(cmd)` / `>(cmd)` process substitution via a
4530/// pipe pair: parent gets back the readable (`<(...)`) or writable
4531/// (`>(...)`) end as an fd; child runs the substituted command with
4532/// its stdio redirected into the other end.
4533///
4534/// ```c
4535/// Eprog prog;
4536/// int pipes[2], out = *cmd == Inang;
4537/// pid_t pid;
4538/// struct timespec bgtime;
4539/// char *ends;
4540/// if (!(prog = parsecmd(cmd, &ends))) return -1;
4541/// if (*ends) { zerr("invalid syntax..."); return -1; }
4542/// if (mpipe(pipes) < 0) return -1;
4543/// if ((pid = zfork(&bgtime))) {
4544/// zclose(pipes[out]);
4545/// if (pid == -1) { zclose(pipes[!out]); return -1; }
4546/// if (!nullexec) addproc(pid, NULL, 1, &bgtime, -1, -1);
4547/// procsubstpid = pid;
4548/// return pipes[!out];
4549/// }
4550/// entersubsh(ESUB_ASYNC|ESUB_PGRP|ESUB_NOMONITOR, NULL);
4551/// redup(pipes[out], out);
4552/// closem(FDT_UNUSED, 0);
4553/// cmdpush(CS_CMDSUBST);
4554/// execode(prog, 0, 1, out ? "outsubst" : "insubst");
4555/// cmdpop();
4556/// _realexit();
4557/// ```
4558///
4559/// (a) `addproc` is now 7-arg (jobs.rs:1516) — wired at the
4560/// procsubst pid recording site (c:5141-5142) earlier this
4561/// session; the child IS now recorded in `JOBTAB[thisjob]`.
4562/// (b) `entersubsh` IS now ported (exec.rs:3934) including the
4563/// ESUB_PGRP pipeline group-leadership path — wired this
4564/// session for getpipe's `entersubsh(ESUB_ASYNC|ESUB_PGRP|
4565/// ESUB_NOMONITOR, NULL)` call.
4566/// (c) `execode(prog, ...)` IS now ported (exec.rs:6047) — getpipe
4567/// can route through execode for the parsed eprog. Currently
4568/// this caller still uses the fusevm pipeline for cache
4569/// coherence with execstring; switch over when the wordcode
4570/// walker becomes the primary path.
4571/// (d) `_realexit()` flushes stdio + jobs + history. We use bare
4572/// `std::process::exit(lastval)` for now.
4573pub fn getpipe(cmd: &str, nullexec: i32) -> i32 {
4574 // c:5119
4575 let bytes = cmd.as_bytes();
4576 let out: i32 = if !bytes.is_empty() && (bytes[0] as char) == Inang {
4577 1 // c:5122 — `<(...)` reads from child, child writes to fd 1
4578 } else {
4579 0 // `>(...)` — child reads from fd 0
4580 };
4581 let mut ends_at: usize = 0;
4582 let prog = parsecmd(cmd, Some(&mut ends_at)); // c:5127
4583 if prog.is_none() {
4584 // c:5127
4585 return -1; // c:5128
4586 }
4587 // c:5129 — `if (*ends)` — trailing bytes after the `)` are invalid.
4588 if ends_at < bytes.len() && bytes[ends_at] != 0 {
4589 zerr("invalid syntax for process substitution in redirection"); // c:5130
4590 return -1; // c:5131
4591 }
4592 let mut pipes: [i32; 2] = [-1; 2];
4593 if mpipe(&mut pipes) < 0 {
4594 // c:5133
4595 return -1;
4596 }
4597 // c:5135 — `if ((pid = zfork(&bgtime)))` — parent path.
4598 let mut bgtime: ZshTimespec = libc::timespec {
4599 tv_sec: 0,
4600 tv_nsec: 0,
4601 };
4602 let pid = zfork(Some(&mut bgtime)); // c:5135
4603 if pid != 0 {
4604 // c:5135 — parent.
4605 let _ = zclose(pipes[out as usize]); // c:5136
4606 if pid == -1 {
4607 // c:5137
4608 let _ = zclose(pipes[(1 - out) as usize]); // c:5138
4609 return -1; // c:5139
4610 }
4611 // c:5141-5142 — `if (!nullexec) addproc(pid, NULL, 1, &bgtime, -1, -1);`
4612 if nullexec == 0 {
4613 if let Some(jt) = JOBTAB.get() {
4614 let mut guard = jt.lock().unwrap();
4615 let tj = THISJOB.get().map(|m| *m.lock().unwrap()).unwrap_or(-1);
4616 if tj >= 0 {
4617 if let Some(j) = guard.get_mut(tj as usize) {
4618 crate::ported::jobs::addproc(
4619 j,
4620 pid,
4621 "",
4622 true, // aux=1 for proc subst
4623 Some(std::time::Instant::now()),
4624 -1,
4625 -1,
4626 );
4627 }
4628 }
4629 }
4630 }
4631 procsubstpid.store(pid, Ordering::Relaxed); // c:5143
4632 return pipes[(1 - out) as usize]; // c:5144
4633 }
4634 // c:5146 — child path.
4635 entersubsh(esub::ASYNC | esub::PGRP | esub::NOMONITOR, None); // c:5146
4636 let _ = redup(pipes[out as usize], out); // c:5147
4637 closem(FDT_UNUSED, 0); // c:5148
4638 cmdpush(CS_CMDSUBST as u8); // c:5149
4639 // c:5150 — execode(prog, 0, 1, ...) — see WARNING (c).
4640 let body_end = if ends_at > 0 { ends_at - 1 } else { 2 };
4641 let body = if body_end > 2 && body_end <= bytes.len() {
4642 &cmd[2..body_end]
4643 } else {
4644 ""
4645 };
4646 let _ = crate::ported::exec::execute_script_zsh_pipeline(body);
4647 cmdpop(); // c:5151
4648 // c:5152 — _realexit() — WARNING (d).
4649 std::process::exit(LASTVAL.load(Ordering::Relaxed));
4650}
4651
4652/// Port of `static void spawnpipes(LinkList l, int nullexec)` from
4653/// `Src/exec.c:5184`.
4654///
4655/// Walks a redir list `l`, and for each REDIR_OUTPIPE/REDIR_INPIPE
4656/// entry fires `getpipe(name, nullexec || varid)` and stashes the
4657/// resulting fd into `f->fd2`.
4658///
4659/// ```c
4660/// LinkNode n;
4661/// Redir f;
4662/// char *str;
4663/// n = firstnode(l);
4664/// for (; n; incnode(n)) {
4665/// f = (Redir) getdata(n);
4666/// if (f->type == REDIR_OUTPIPE || f->type == REDIR_INPIPE) {
4667/// str = f->name;
4668/// f->fd2 = getpipe(str, nullexec || f->varid);
4669/// }
4670/// }
4671/// ```
4672///
4673/// =================== WARNING — DIVERGENCE ====================
4674/// The Rust port consumes a `&mut Vec<crate::ported::zsh_h::redir>`
4675/// in place of `LinkList`. The walk is identical; the only behavior
4676/// difference is that LinkList iteration in C lets callers splice
4677/// nodes mid-walk — we never do that here so it's a no-op divergence.
4678/// =============================================================
4679pub fn spawnpipes(l: &mut [redir], nullexec: i32) {
4680 // c:5184
4681 for f in l.iter_mut() {
4682 // c:5191
4683 if f.typ == REDIR_OUTPIPE || f.typ == REDIR_INPIPE {
4684 // c:5193
4685 let str_ = f.name.clone().unwrap_or_default(); // c:5194
4686 let nullexec_eff = if f.varid.as_deref().map_or(false, |v| !v.is_empty()) {
4687 1
4688 } else {
4689 nullexec
4690 };
4691 f.fd2 = getpipe(&str_, nullexec_eff); // c:5195
4692 }
4693 }
4694}
4695
4696/// Port of `static int cancd2(char *s)` from `Src/exec.c:6411`.
4697///
4698/// C body:
4699/// ```c
4700/// struct stat buf;
4701/// char *us, *us2 = NULL;
4702/// int ret;
4703/// if (!isset(CHASEDOTS) && !isset(CHASELINKS)) {
4704/// if (*s != '/')
4705/// us = tricat(pwd[1] ? pwd : "", "/", s);
4706/// else
4707/// us = ztrdup(s);
4708/// fixdir(us2 = us);
4709/// } else
4710/// us = unmeta(s);
4711/// ret = !(access(us, X_OK) || stat(us, &buf) || !S_ISDIR(buf.st_mode));
4712/// if (us2) free(us2);
4713/// return ret;
4714/// ```
4715///
4716/// True iff `s` is a directory we can `cd` into (X-perm). With
4717/// `!CHASEDOTS && !CHASELINKS`, lexically canonicalise the path
4718/// (joining with PWD if relative) so `cd /foo/bar/..` works without
4719/// resolving the symlink. Otherwise pass `s` through `unmeta` to libc.
4720pub fn cancd2(s: &str) -> i32 {
4721 // c:6411
4722 let us: String;
4723 // c:6422 — `if (!isset(CHASEDOTS) && !isset(CHASELINKS))`.
4724 let chasedots = isset(CHASEDOTS); // c:6422
4725 let chaselinks = isset(CHASELINKS);
4726 if !chasedots && !chaselinks {
4727 // c:6422
4728 // c:6423-6426 — `*s != '/' ? tricat(pwd, "/", s) : ztrdup(s);`
4729 let pwd_str = getsparam("PWD").unwrap_or_default(); // c:6424 `pwd`
4730 let mut raw = if !s.starts_with('/') {
4731 // c:6423
4732 format!(
4733 "{}/{}",
4734 if pwd_str.len() > 1 { &pwd_str[..] } else { "" },
4735 s
4736 )
4737 } else {
4738 s.to_string()
4739 };
4740 // c:6427 — `fixdir(us2 = us);` — lexical canonicalisation.
4741 raw = fixdir(&raw);
4742 us = raw;
4743 } else {
4744 // c:6428
4745 us = unmeta(s); // c:6429
4746 }
4747 // c:6430 — `!(access(us, X_OK) || stat(us, &buf) || !S_ISDIR(...))`.
4748 let cstr = match std::ffi::CString::new(us.as_str()) {
4749 Ok(c) => c,
4750 Err(_) => return 0,
4751 };
4752 if unsafe { libc::access(cstr.as_ptr(), libc::X_OK) } != 0 {
4753 return 0;
4754 }
4755 let meta = match std::fs::metadata(&us) {
4756 Ok(m) => m,
4757 Err(_) => return 0,
4758 };
4759 if !meta.file_type().is_dir() {
4760 return 0;
4761 }
4762 1
4763}
4764
4765/// Port of `char *cancd(char *s)` from `Src/exec.c:6370`.
4766///
4767/// Resolve a `cd` target against `$cdpath` and `cd_able_vars`.
4768/// Returns the chosen absolute path (heap-dup) if `cancd2` accepts
4769/// it, else `None`.
4770///
4771/// C body uses CDPATH walking + `cd_able_vars()` fallback. Sets
4772/// `doprintdir = -1` when a non-trivial path is found (so `cd`
4773/// echoes the resolved path).
4774pub fn cancd(s: &str) -> Option<String> {
4775 // c:6370
4776 // c:6372-6373 — `nocdpath = s[0]=='.' && (s[1]=='/' || !s[1] ||
4777 // (s[1]=='.' && (s[2]=='/' || !s[2])))`.
4778 let bytes = s.as_bytes();
4779 let nocdpath = bytes.first().copied() == Some(b'.')
4780 && (bytes.get(1).copied() == Some(b'/')
4781 || bytes.get(1).is_none()
4782 || (bytes.get(1).copied() == Some(b'.')
4783 && (bytes.get(2).copied() == Some(b'/') || bytes.get(2).is_none())));
4784 // c:6376 — `if (*s != '/')` branch.
4785 if !s.starts_with('/') {
4786 // c:6376
4787 // c:6379-6380 — `if (cancd2(s)) return s;`
4788 if cancd2(s) != 0 {
4789 return Some(s.to_string());
4790 }
4791 // c:6381-6382 — `if (access(unmeta(s), X_OK) == 0) return NULL;`
4792 let cstr = std::ffi::CString::new(unmeta(s).as_str()).ok()?;
4793 if unsafe { libc::access(cstr.as_ptr(), libc::X_OK) } == 0 {
4794 return None; // c:6382
4795 }
4796 // c:6383-6397 — CDPATH walk.
4797 if !nocdpath {
4798 let cdpath_str = getsparam("CDPATH").unwrap_or_default();
4799 for cp in cdpath_str.split(':') {
4800 // c:6384
4801 let sbuf = if !cp.is_empty() {
4802 format!("{}/{}", cp, s) // c:6386
4803 } else {
4804 s.to_string() // c:6391
4805 };
4806 if cancd2(&sbuf) != 0 {
4807 // c:6393
4808 DOPRINTDIR.store(-1, Ordering::Relaxed); // c:6394
4809 return Some(sbuf); // c:6395
4810 }
4811 }
4812 }
4813 // c:6398-6403 — `cd_able_vars()` fallback.
4814 if let Some(t) = cd_able_vars(s) {
4815 // c:6398
4816 if cancd2(&t) != 0 {
4817 // c:6399
4818 DOPRINTDIR.store(-1, Ordering::Relaxed); // c:6400
4819 return Some(t); // c:6401
4820 }
4821 }
4822 return None; // c:6404
4823 }
4824 // c:6406 — absolute path: `return cancd2(s) ? s : NULL;`
4825 if cancd2(s) != 0 {
4826 Some(s.to_string())
4827 } else {
4828 None
4829 }
4830}
4831
4832/// Port of `char *simple_redir_name(Eprog prog, int redir_type)` from
4833/// `Src/exec.c:4689`.
4834///
4835/// Test if an Eprog encodes a single simple-command consisting of a
4836/// SINGLE redirection of the requested type with NO command body
4837/// (the `cat < foo` shape). When true, returns the redir target name
4838/// (heap-dup) so callers like `$(< file)` short-circuit to a direct
4839/// `open(2)` instead of fork+pipe+exec.
4840///
4841/// C body walks the wordcode at fixed offsets (`pc[0]` = WC_LIST,
4842/// `pc[1]` = WC_SUBLIST, `pc[2]` = WC_PIPE, `pc[3]` = WC_REDIR,
4843/// `pc[6]` = WC_SIMPLE with argc=0). zshrs's wordcode buffer is the
4844/// same shape — this port replicates the same offset reads.
4845pub fn simple_redir_name(prog: &eprog, redir_type: i32) -> Option<String> {
4846 // c:4689
4847 let pc = &prog.prog;
4848 // c:4694-4702 — guard chain. Walk the wordcode buffer at fixed
4849 // offsets matching C's `pc[0]..pc[6]` checks.
4850 if pc.len() < 7 {
4851 return None;
4852 }
4853
4854 if wc_code(pc[0]) != WC_LIST
4855 || (WC_LIST_TYPE(pc[0]) & Z_END as u32) == 0 // c:4695
4856 || wc_code(pc[1]) != WC_SUBLIST
4857 || WC_SUBLIST_FLAGS(pc[1]) != 0 // c:4696
4858 || WC_SUBLIST_TYPE(pc[1]) != WC_SUBLIST_END // c:4697
4859 || wc_code(pc[2]) != WC_PIPE
4860 || WC_PIPE_TYPE(pc[2]) != WC_PIPE_END // c:4698
4861 || wc_code(pc[3]) != WC_REDIR
4862 || WC_REDIR_TYPE(pc[3]) != redir_type // c:4699
4863 || WC_REDIR_VARID(pc[3]) != 0 // c:4700
4864 || pc[4] != 0 // c:4701
4865 || wc_code(pc[6]) != WC_SIMPLE
4866 || WC_SIMPLE_ARGC(pc[6]) != 0
4867 // c:4702
4868 {
4869 return None; // c:4706
4870 }
4871 // c:4703 — `return dupstring(ecrawstr(prog, pc + 5, NULL));`
4872 Some(dupstring(&ecrawstr(prog, 5, None)))
4873}
4874
4875/// Port of `int getherestr(struct redir *fn)` from `Src/exec.c:4655`.
4876///
4877/// C body:
4878/// ```c
4879/// char *s, *t;
4880/// int fd, len;
4881/// t = fn->name;
4882/// singsub(&t);
4883/// untokenize(t);
4884/// unmetafy(t, &len);
4885/// if (!(fn->flags & REDIRF_FROM_HEREDOC))
4886/// t[len++] = '\n';
4887/// if ((fd = gettempfile(NULL, 1, &s)) < 0)
4888/// return -1;
4889/// write_loop(fd, t, len);
4890/// close(fd);
4891/// fd = open(s, O_RDONLY | O_NOCTTY);
4892/// unlink(s);
4893/// return fd;
4894/// ```
4895///
4896/// Materialise a `<<<` herestring or unprocessed-here-doc body into a
4897/// tempfile, then re-open read-only and unlink — gives the consumer a
4898/// read fd whose backing file is already cleaned up.
4899pub fn getherestr(fn_: &redir) -> i32 {
4900 // c:4655
4901 let mut t: String = fn_.name.clone().unwrap_or_default(); // c:4660
4902 t = singsub(&t); // c:4661
4903 t = untokenize(&t); // c:4662
4904 // c:4663 — `unmetafy(t, &len);` — strip Meta-escapes.
4905 // Reuse the canonical unmetafy port (utils.rs) on a Vec<u8>.
4906 let mut bytes: Vec<u8> = t.into_bytes();
4907 let _len = unmetafy(&mut bytes);
4908 // c:4671-4672 — `if (!(fn->flags & REDIRF_FROM_HEREDOC)) t[len++] = '\n';`
4909 if (fn_.flags & REDIRF_FROM_HEREDOC) == 0 {
4910 // c:4671
4911 bytes.push(b'\n'); // c:4672
4912 }
4913 // c:4673-4674 — `if ((fd = gettempfile(NULL, 1, &s)) < 0) return -1;`
4914 let (fd, s) = match gettempfile(None) {
4915 Some(p) => p,
4916 None => return -1, // c:4674
4917 };
4918 // c:4675 — `write_loop(fd, t, len);`
4919 let _ = write_loop(fd, &bytes); // c:4675
4920 // c:4676 — `close(fd);`
4921 let _ = zclose(fd); // c:4676
4922 // c:4677 — `fd = open(s, O_RDONLY | O_NOCTTY);`
4923 let cstr = std::ffi::CString::new(s.as_str()).unwrap_or_default();
4924 let new_fd = unsafe { libc::open(cstr.as_ptr(), libc::O_RDONLY | libc::O_NOCTTY) }; // c:4677
4925 // c:4678 — `unlink(s);`
4926 unsafe {
4927 libc::unlink(cstr.as_ptr());
4928 } // c:4678
4929 new_fd // c:4679
4930}
4931
4932/// Port of `void quote_tokenized_output(char *str, FILE *file)` from
4933/// `Src/exec.c:2114`.
4934///
4935/// C body (abridged):
4936/// ```c
4937/// for (; *s; s++) {
4938/// switch (*s) {
4939/// case Meta: putc(*++s ^ 32, file); continue;
4940/// case Nularg: continue;
4941/// case '\\' '<' '>' '(' '|' ')' '^' '#' '~' '[' ']' '*' '?' '$' ' ':
4942/// putc('\\', file); break;
4943/// case '\t': fputs("$'\\t'", file); continue;
4944/// case '\n': fputs("$'\\n'", file); continue;
4945/// case '\r': fputs("$'\\r'", file); continue;
4946/// case '=': if (s == str) putc('\\', file); break;
4947/// default:
4948/// if (itok(*s)) { putc(ztokens[*s - Pound], file); continue; }
4949/// }
4950/// putc(*s, file);
4951/// }
4952/// ```
4953///
4954/// Used by `xtrace` (`set -x` printer) and `whence -c` to display a
4955/// tokenized argv in a form where lexer tokens (`Star`, `Inpar`, …)
4956/// surface as unescaped chars (`*`, `(`) while literal special chars
4957/// get backslash-escaped — round-tripping through the shell.
4958pub fn quote_tokenized_output(str_in: &str, file: &mut impl std::io::Write) -> std::io::Result<()> {
4959 // c:2114
4960 let bytes = str_in.as_bytes();
4961 let mut i = 0usize;
4962 while i < bytes.len() {
4963 // c:2118 `for (; *s; s++)`
4964 let c = bytes[i];
4965 match c {
4966 x if x == Meta => {
4967 // c:2120 — `case Meta: putc(*++s ^ 32, file);`
4968 if i + 1 < bytes.len() {
4969 file.write_all(&[bytes[i + 1] ^ 32])?; // c:2121
4970 i += 2;
4971 } else {
4972 i += 1;
4973 }
4974 continue; // c:2122
4975 }
4976 x if x as char == Nularg => {
4977 // c:2124
4978 i += 1;
4979 continue; // c:2126
4980 }
4981 b'\\' | b'<' | b'>' | b'(' | b'|' | b')' | b'^' | b'#' | b'~' | b'[' | b']' | b'*'
4982 | b'?' | b'$' | b' ' => {
4983 // c:2128-2142
4984 file.write_all(b"\\")?; // c:2143
4985 }
4986 b'\t' => {
4987 // c:2146
4988 file.write_all(b"$'\\t'")?; // c:2147
4989 i += 1;
4990 continue;
4991 }
4992 b'\n' => {
4993 // c:2150
4994 file.write_all(b"$'\\n'")?; // c:2151
4995 i += 1;
4996 continue;
4997 }
4998 b'\r' => {
4999 // c:2154
5000 file.write_all(b"$'\\r'")?; // c:2155
5001 i += 1;
5002 continue;
5003 }
5004 b'=' => {
5005 // c:2158 — `if (s == str) putc('\\', file);`
5006 if i == 0 {
5007 file.write_all(b"\\")?; // c:2160
5008 }
5009 }
5010 _ => {
5011 // c:2163 — `if (itok(*s)) putc(ztokens[*s - Pound], file); continue;`
5012 if itok(c) {
5013 // c:2164
5014 let pound = Pound as u8;
5015 if c >= pound {
5016 let idx = (c - pound) as usize;
5017 let zt = ztokens.as_bytes();
5018 if idx < zt.len() {
5019 file.write_all(&[zt[idx]])?; // c:2165 `ztokens[*s - Pound]`
5020 }
5021 }
5022 i += 1;
5023 continue;
5024 }
5025 }
5026 }
5027 file.write_all(&[c])?; // c:2171
5028 i += 1;
5029 }
5030 Ok(())
5031}
5032
5033// =====================================================================
5034// Wordcode-VM control-flow dispatch — faithful ports of the C
5035// `Src/exec.c` + `Src/loop.c` wordcode interpreter entries.
5036//
5037// Each function below takes `&mut estate` and returns `i32` to mirror
5038// the C `int execX(Estate state, int do_exec)` signature exactly. Per-
5039// line `// c:NNN` citations track the C source line.
5040//
5041// zshrs's primary execution path is the fusevm bytecode VM. These
5042// wordcode-VM entries exist for C-name parity with the upstream
5043// interpreter so that future bridging code can drive zshrs through
5044// the same dispatch tree zsh's `Src/init.c::loop` walks. Where
5045// zshrs primitives don't yet model their C counterpart (e.g.
5046// `execsubst`, `addvars`, `execfuncs[]` dispatch table), the local
5047// helper is declared with a comment citing the C source file:line
5048// where the canonical body lives — same pattern as the canonical
5049// `ksh93::ksh93_wrapper` port at c:152-227.
5050// =====================================================================
5051
5052use crate::ported::math::{matheval as wc_matheval, mathevali as wc_mathevali};
5053use crate::ported::pattern::{patcompile, pattry};
5054use crate::ported::r#loop::try_tryflag;
5055
5056// Addvars-specific imports (Src/exec.c:2497 port at exec.rs::addvars).
5057use crate::ported::builtin::{BREAKS, CONTFLAG, LOOPS, RETFLAG};
5058use crate::ported::linklist::LinkList;
5059use crate::ported::mem::freeheap;
5060use crate::ported::params::setloopvar;
5061use crate::ported::params::{assignaparam, assignsparam, unsetparam};
5062use crate::ported::parse::{ecgetlist, ecgetstr};
5063use crate::ported::pattern::haswilds;
5064use crate::ported::signals_h::{queue_signal_level, restore_queue_signals};
5065use crate::ported::subst::{globlist, prefork};
5066use crate::ported::zsh_h::{
5067 estate, wordcode, EC_DUP, EC_DUPTOK, EC_NODUP, NOERREXIT_EXIT, NOERREXIT_RETURN, PAT_STATIC,
5068 WC_CASE, WC_CASE_AND, WC_CASE_OR, WC_CASE_SKIP, WC_CASE_TESTAND, WC_CASE_TYPE, WC_CURSH_SKIP,
5069 WC_END, WC_FOR_COND, WC_FOR_LIST, WC_FOR_SKIP, WC_FOR_TYPE, WC_FUNCDEF, WC_FUNCDEF_SKIP, WC_IF,
5070 WC_IF_ELSE, WC_IF_SKIP, WC_IF_TYPE, WC_REPEAT_SKIP, WC_TIMED_EMPTY, WC_TIMED_TYPE, WC_TRY_SKIP,
5071 WC_WHILE_SKIP, WC_WHILE_TYPE, WC_WHILE_UNTIL,
5072};
5073use crate::ported::zsh_h::{
5074 ALLEXPORT, ASSPM_AUGMENT, ASSPM_KEY_VALUE, ASSPM_WARN, GLOBASSIGN, KSHARRAYS, PREFORK_ASSIGN,
5075 PREFORK_KEY_VALUE, PREFORK_SINGLE, WC_ASSIGN, WC_ASSIGN_INC, WC_ASSIGN_NUM, WC_ASSIGN_SCALAR,
5076 WC_ASSIGN_TYPE, WC_ASSIGN_TYPE2,
5077};
5078use crate::ported::zsh_h::{
5079 CS_ALWAYS, CS_CASE, CS_COND, CS_CURSH, CS_ELIF, CS_ELIFTHEN, CS_ELSE, CS_FOR, CS_IF, CS_IFTHEN,
5080 CS_MATH, CS_REPEAT, CS_UNTIL, CS_WHILE, MN_INTEGER,
5081};
5082
5083// --- Local stubs for C primitives not yet ported elsewhere ------------
5084//
5085// These mirror the C functions of the same names. Each cites the C
5086// source file:line where the canonical body lives. They are inlined
5087// here (rather than a separate `pub fn` in the owning C-file module)
5088// because the owning ports are pending the wider exec-substrate
5089// work (sub-PR). Once those land, these locals collapse to direct
5090// `crate::ported::<owner>::<fn>` calls.
5091
5092/// Port of `void execsubst(LinkList strs)` from `Src/exec.c:2684`.
5093///
5094/// C body (c:2684-2693):
5095/// ```c
5096/// void execsubst(LinkList strs) {
5097/// if (strs) {
5098/// prefork(strs, esprefork, NULL);
5099/// if (esglob && !errflag) {
5100/// LinkList ostrs = strs;
5101/// globlist(strs, 0);
5102/// strs = ostrs;
5103/// }
5104/// }
5105/// }
5106/// ```
5107///
5108/// `execsubst` runs `prefork` (parameter / arithmetic / command
5109/// substitution expansion + IFS-split) over the whole list, then
5110/// (when `esglob` is set) `globlist` to do filename globbing on the
5111/// result.
5112fn execsubst(list: &mut Vec<String>) {
5113 // c:2684
5114 if list.is_empty() {
5115 return; // c:2686 `if (strs)`
5116 }
5117 let mut ll: crate::ported::subst::LinkList = std::mem::take(list).into_iter().collect();
5118 let prefork_flags = esprefork.load(Ordering::Relaxed); // c:2687 esprefork
5119 let mut rf: i32 = 0;
5120 prefork(&mut ll, prefork_flags, &mut rf); // c:2687
5121 if esglob.load(Ordering::Relaxed) != 0 && errflag.load(Ordering::Relaxed) == 0 {
5122 // c:2688 `if (esglob && !errflag)`
5123 globlist(&mut ll, 0); // c:2690
5124 }
5125 *list = ll.into_iter().collect();
5126}
5127
5128/// Direct port of `static void addvars(Estate state, Wordcode pc,
5129/// int addflags)` from `Src/exec.c:2497-2648`. Process the WC_ASSIGN
5130/// nodes stacked inline of a simple command — the `var=value` and
5131/// `arr=(v1 v2 v3)` assignments that precede argv. Walks the wordcode
5132/// at `pc`, extracts each assignment's name + value (scalar or array),
5133/// optionally preforks + globs the tokenised RHS, and routes through
5134/// `assignsparam` (scalar) or `assignaparam` (array).
5135///
5136/// XTRACE side-effect: prints `name=value ` / `name=( v1 v2 ) ` to
5137/// stderr (C uses xtrerr; zshrs uses eprint!).
5138///
5139/// `STTY=...` in an inline-export form (`STTY=raw cmd`) gets captured
5140/// into the file-static `STTYval` for `execute()` to apply pre-exec.
5141fn addvars(state: &mut estate, pc: usize, addflags: i32) {
5142 // c:2501 — locals.
5143 let mut vl: LinkList<String>; // c:2501 `LinkList vl;`
5144 let xtr: bool; // c:2502 `int xtr,`
5145 let mut isstr: bool; // c:2502 `int isstr,`
5146 let mut htok: i32 = 0; // c:2502 `int htok = 0;`
5147 let mut arr: Vec<String>; // c:2503 `char **arr, **ptr, *name;`
5148 let mut name: String;
5149 let mut flags: i32; // c:2504 `int flags;`
5150 let opc = state.pc; // c:2506 `Wordcode opc = state->pc;`
5151 let mut ac: wordcode; // c:2507 `wordcode ac;`
5152 // c:2508 `local_list1(svl);` — stack-local one-element LinkList
5153 // for the scalar-assignment path. Rust uses a fresh LinkList per
5154 // iteration; equivalent semantics.
5155
5156 // c:2510-2515 — comment about WARNCREATEGLOBAL warning suppression
5157 // when the assignment list is implicitly local (ADDVAR_RESTORE).
5158 flags = if (addflags & ADDVAR_RESTORE) == 0 {
5159 ASSPM_WARN // c:2516
5160 } else {
5161 0 // c:2516
5162 };
5163 xtr = isset(XTRACE); // c:2517 `xtr = isset(XTRACE);`
5164 if xtr {
5165 // c:2518
5166 printprompt4(); // c:2519
5167 doneps4.store(1, Ordering::Relaxed); // c:2520 `doneps4 = 1;`
5168 }
5169 state.pc = pc; // c:2522 `state->pc = pc;`
5170
5171 // c:2523 `while (wc_code(ac = *state->pc++) == WC_ASSIGN) {`
5172 loop {
5173 if state.pc >= state.prog.prog.len() {
5174 break;
5175 }
5176 ac = state.prog.prog[state.pc];
5177 state.pc += 1;
5178 if wc_code(ac) != WC_ASSIGN {
5179 // Step back so the WC_SIMPLE / outer dispatcher sees the
5180 // non-assignment opcode. C's `state->pc++` post-increment
5181 // already pointed past WC_ASSIGN; we need to unconsume.
5182 state.pc -= 1;
5183 break;
5184 }
5185 let mut myflags = flags; // c:2524 `int myflags = flags;`
5186 name = ecgetstr(state, EC_DUPTOK, Some(&mut htok)); // c:2525
5187 if htok != 0 {
5188 // c:2526 `if (htok) untokenize(name);`
5189 name = untokenize(&name).to_string(); // c:2527
5190 }
5191 if WC_ASSIGN_TYPE2(ac) == WC_ASSIGN_INC {
5192 // c:2528
5193 myflags |= ASSPM_AUGMENT; // c:2529
5194 }
5195 if xtr {
5196 // c:2530
5197 // c:2531-2532 — fprintf(xtrerr, ... "%s+=" : "%s=", name);
5198 if WC_ASSIGN_TYPE2(ac) == WC_ASSIGN_INC {
5199 eprint!("{}+=", name); // c:2532
5200 } else {
5201 eprint!("{}=", name); // c:2532
5202 }
5203 }
5204
5205 // c:2533 `if ((isstr = (WC_ASSIGN_TYPE(ac) == WC_ASSIGN_SCALAR))) {`
5206 isstr = WC_ASSIGN_TYPE(ac) == WC_ASSIGN_SCALAR;
5207 if isstr {
5208 // c:2534 `init_list1(svl, ecgetstr(state, EC_DUPTOK, &htok));`
5209 let svl_val = ecgetstr(state, EC_DUPTOK, Some(&mut htok));
5210 vl = LinkList::new();
5211 vl.push_back(svl_val);
5212 // c:2535 `vl = &svl;` — vl already points at the new list.
5213 } else {
5214 // c:2537 `vl = ecgetlist(state, WC_ASSIGN_NUM(ac), EC_DUPTOK, &htok);`
5215 let items = ecgetlist(
5216 state,
5217 WC_ASSIGN_NUM(ac) as usize,
5218 EC_DUPTOK,
5219 Some(&mut htok),
5220 );
5221 vl = LinkList::new();
5222 for it in items {
5223 vl.push_back(it);
5224 }
5225 if errflag.load(Ordering::Relaxed) != 0 {
5226 // c:2538-2541
5227 state.pc = opc; // c:2539
5228 return; // c:2540
5229 }
5230 }
5231
5232 // c:2544 `if (vl && htok) {`
5233 if htok != 0 {
5234 // c:2545 `int prefork_ret = 0;`
5235 let mut prefork_ret: i32 = 0;
5236 // c:2546-2547 — prefork(vl, (isstr ? PREFORK_SINGLE|PREFORK_ASSIGN
5237 // : PREFORK_ASSIGN), &prefork_ret);
5238 let pf_flags = if isstr {
5239 PREFORK_SINGLE | PREFORK_ASSIGN
5240 } else {
5241 PREFORK_ASSIGN
5242 };
5243 prefork(&mut vl, pf_flags, &mut prefork_ret); // c:2547
5244 if errflag.load(Ordering::Relaxed) != 0 {
5245 // c:2548
5246 state.pc = opc; // c:2549
5247 return; // c:2550
5248 }
5249 if (prefork_ret & PREFORK_KEY_VALUE) != 0 {
5250 // c:2552
5251 myflags |= ASSPM_KEY_VALUE; // c:2553
5252 }
5253 // c:2554-2555 — `if (!isstr || (isset(GLOBASSIGN) && isstr &&
5254 // haswilds((char *)getdata(firstnode(vl)))))`
5255 let needs_glob = if !isstr {
5256 true
5257 } else {
5258 isset(GLOBASSIGN)
5259 && isstr
5260 && !vl.is_empty()
5261 && haswilds(vl.nodes.front().map(|s| s.as_str()).unwrap_or(""))
5262 };
5263 if needs_glob {
5264 globlist(&mut vl, prefork_ret); // c:2556
5265 // c:2557-2562 — `if (isset(GLOBASSIGN) && isstr)
5266 // unsetparam(name);`
5267 if isset(GLOBASSIGN) && isstr {
5268 unsetparam(&name); // c:2562
5269 }
5270 if errflag.load(Ordering::Relaxed) != 0 {
5271 // c:2563
5272 state.pc = opc; // c:2564
5273 return; // c:2565
5274 }
5275 }
5276 }
5277 // c:2569 `if (isstr && (empty(vl) || !nextnode(firstnode(vl))))`
5278 // — scalar-assignment path: zero or one element after prefork.
5279 if isstr && (vl.is_empty() || vl.len() == 1) {
5280 let val: String; // c:2571 `char *val;`
5281 if vl.is_empty() {
5282 // c:2574
5283 val = String::new(); // c:2575 `val = ztrdup("");`
5284 } else {
5285 // c:2577 `untokenize(peekfirst(vl));`
5286 let peek = vl.nodes.front().cloned().unwrap_or_default();
5287 val = untokenize(&peek).to_string(); // c:2577-2578
5288 // c:2578 `val = ztrdup(ugetnode(vl));` — ugetnode pops;
5289 // we just cloned the front above. Equivalent.
5290 }
5291 if xtr {
5292 // c:2580
5293 eprint!("{}", quotedzputs(&val)); // c:2581
5294 eprint!(" "); // c:2582 `fputc(' ', xtrerr);`
5295 }
5296 // c:2584 `if ((addflags & ADDVAR_EXPORT) && !strchr(name, '['))`
5297 let pm = if (addflags & ADDVAR_EXPORT) != 0 && !name.contains('[') {
5298 // c:2585 `if (strcmp(name, "STTY") == 0)`
5299 if name == "STTY" {
5300 // c:2586-2587 — `STTYval = ztrdup(val);`
5301 let mut stty = STTYval.lock().unwrap();
5302 *stty = Some(val.clone()); // c:2587
5303 }
5304 // c:2589 `allexp = opts[ALLEXPORT];`
5305 let allexp = isset(ALLEXPORT);
5306 // c:2590 `opts[ALLEXPORT] = 1;` — temporarily set.
5307 opt_state_set("allexport", true);
5308 if isset(KSHARRAYS) {
5309 // c:2591
5310 unsetparam(&name); // c:2592
5311 }
5312 let pm = assignsparam(&name, &val, myflags); // c:2593
5313 // c:2594 `opts[ALLEXPORT] = allexp;` — restore.
5314 opt_state_set("allexport", allexp);
5315 pm
5316 } else {
5317 // c:2595
5318 assignsparam(&name, &val, myflags) // c:2596
5319 };
5320 if pm.is_none() {
5321 // c:2597 `if (!pm)`
5322 LASTVAL.store(1, Ordering::Relaxed); // c:2598 `lastval = 1;`
5323 // c:2599-2604 — "cheating" comment: don't zerr.
5324 if cmdoutval.load(Ordering::Relaxed) == 0 {
5325 // c:2605 `if (!cmdoutval)`
5326 cmdoutval.store(1, Ordering::Relaxed); // c:2606
5327 }
5328 }
5329 if errflag.load(Ordering::Relaxed) != 0 {
5330 // c:2608
5331 state.pc = opc; // c:2609
5332 return; // c:2610
5333 }
5334 continue; // c:2612
5335 }
5336 // c:2614 `if (vl) { ... }` — array-assignment path: drain vl
5337 // into a fresh `char **arr`.
5338 // c:2615-2619 `ptr = arr = zalloc(...); while (nonempty(vl)) *ptr++ = ztrdup(ugetnode(vl));`
5339 arr = Vec::with_capacity(vl.len() + 1);
5340 while let Some(s) = vl.pop_front() {
5341 arr.push(s);
5342 }
5343 // c:2623 `*ptr = NULL;` — C terminator; Rust Vec doesn't need it.
5344 if xtr {
5345 // c:2624
5346 eprint!("( "); // c:2625
5347 for s in &arr {
5348 // c:2626 `for (ptr = arr; *ptr; ptr++)`
5349 eprint!("{}", quotedzputs(s)); // c:2627
5350 eprint!(" "); // c:2628
5351 }
5352 eprint!(") "); // c:2630
5353 }
5354 // c:2632 `if (!assignaparam(name, arr, myflags))`
5355 if assignaparam(&name, arr, myflags).is_none() {
5356 LASTVAL.store(1, Ordering::Relaxed); // c:2633
5357 // c:2634-2638 — "cheating" comment.
5358 if cmdoutval.load(Ordering::Relaxed) == 0 {
5359 // c:2639
5360 cmdoutval.store(1, Ordering::Relaxed); // c:2640
5361 }
5362 }
5363 if errflag.load(Ordering::Relaxed) != 0 {
5364 // c:2642
5365 state.pc = opc; // c:2643
5366 return; // c:2644
5367 }
5368 }
5369 state.pc = opc; // c:2647 `state->pc = opc;`
5370}
5371
5372// execfuncs[] dispatch table from `Src/exec.c:5499` is inlined as a
5373// match expression at the call sites in execsimple. Not a separate
5374// Rust fn — every C-side reference to
5375// `execfuncs[code - WC_CURSH](state, ...)` resolves inline below.
5376
5377// --- exec.c entries ---------------------------------------------------
5378
5379/// Port of `execcursh(Estate state, int do_exec)` from
5380/// `Src/exec.c:469-498`. Execute a `{ ... }` current-shell command
5381/// group: skip the trailing try-only word, optionally drop a stale
5382/// job slot, then run the inner list.
5383pub fn execcursh(state: &mut estate, do_exec: i32) -> i32 {
5384 // c:472 — `end = state->pc + WC_CURSH_SKIP(state->pc[-1]);`
5385 let prior = state.prog.prog[state.pc.wrapping_sub(1)];
5386 let end = state.pc + WC_CURSH_SKIP(prior) as usize;
5387 // c:475 — `state->pc++;` skip the try/always-only word.
5388 state.pc += 1;
5389 // c:482-486 — drop empty job slot before nested cmd: if outer-pipe
5390 // bookkeeping is clean AND thisjob is a real job that's not the
5391 // pipe-leader AND has no procs yet, deletejob() recycles it. Avoids
5392 // leaking job-table slots when execcursh recurses.
5393 {
5394 let lp = list_pipe.load(Ordering::Relaxed);
5395 let lpj = list_pipe_job.load(Ordering::Relaxed);
5396 let tj = THISJOB.get().map(|m| *m.lock().unwrap()).unwrap_or(-1);
5397 if lp == 0 && tj != -1 && tj != lpj {
5398 if let Some(jt) = JOBTAB.get() {
5399 let mut guard = jt.lock().unwrap();
5400 let has = crate::ported::jobs::hasprocs(&guard, tj as usize);
5401 if !has {
5402 if let Some(j) = guard.get_mut(tj as usize) {
5403 crate::ported::jobs::deletejob(j, false);
5404 }
5405 }
5406 }
5407 }
5408 }
5409 cmdpush(CS_CURSH as u8); // c:487 — `cmdpush(CS_CURSH);`
5410 let _ = execlist(state, 1, do_exec); // c:488 — `execlist(state, 1, do_exec);`
5411 cmdpop(); // c:489 — `cmdpop();`
5412 state.pc = end; // c:491 — `state->pc = end;`
5413 this_noerrexit.store(1, Ordering::Relaxed); // c:492 — `this_noerrexit = 1;`
5414 LASTVAL.load(Ordering::Relaxed) // c:494 — `return lastval;`
5415}
5416
5417// `(...)` subshell — no dedicated C function (handled inline by
5418// `execpline`'s WC_PIPE branch via the WC_SUBSH bit, exec.c:2540+).
5419// In zshrs the subshell branch is folded into `execpline` and
5420// `execsimple`'s WC_SUBSH dispatch — both invoke execcursh for the
5421// inner-list walk since fusevm bytecode handles the forking via
5422// Op::Subshell at a higher layer.
5423
5424/// Port of `execcond(Estate state, UNUSED(int do_exec))` from
5425/// `Src/exec.c:5204-5232`. Run a `[[ ... ]]` cond expression.
5426pub fn execcond(state: &mut estate, _do_exec: i32) -> i32 {
5427 state.pc -= 1; // c:5208 — `state->pc--;`
5428 // c:5209-5213 — XTRACE prelude.
5429 if isset(XTRACE) {
5430 printprompt4();
5431 eprint!("[[");
5432 // c:5212 — `tracingcond++;` not modeled in zshrs.
5433 }
5434 cmdpush(CS_COND as u8); // c:5214
5435 // c:5215 — `stat = evalcond(state, NULL);` — TODO faithful: needs
5436 // the wordcode-level evalcond from Src/cond.c which is distinct
5437 // from the test-builtin evalcond ported in cond.rs. Pending.
5438 let stat: i32 = 0;
5439 // c:5219-5221 — `if (stat == 2) errflag |= ERRFLAG_ERROR;`
5440 if stat == 2 {
5441 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed);
5442 }
5443 cmdpop(); // c:5222
5444 if isset(XTRACE) {
5445 eprintln!(" ]]");
5446 }
5447 stat // c:5230 — `return stat;`
5448}
5449
5450/// Port of `execarith(Estate state, UNUSED(int do_exec))` from
5451/// `Src/exec.c:5237-5275`. Run a `(( ... ))` arithmetic command;
5452/// returns 0 when val != 0 (success), 1 when val == 0 (false), 2 on
5453/// parse error.
5454pub fn execarith(state: &mut estate, _do_exec: i32) -> i32 {
5455 if isset(XTRACE) {
5456 printprompt4();
5457 eprint!("((");
5458 }
5459 cmdpush(CS_MATH as u8); // c:5247
5460 let mut htok: i32 = 0;
5461 let mut e = ecgetstr(state, EC_DUPTOK, Some(&mut htok)); // c:5248
5462 if htok != 0 {
5463 e = singsub(&e); // c:5250 — `singsub(&e);`
5464 }
5465 if isset(XTRACE) {
5466 eprint!(" {}", e);
5467 }
5468 let val_result = wc_matheval(&e); // c:5254 — `val = matheval(e);`
5469 cmdpop(); // c:5256
5470 if isset(XTRACE) {
5471 eprintln!(" ))");
5472 }
5473 // c:5262-5265 — `if (errflag) { errflag &= ~ERRFLAG_ERROR; return 2; }`
5474 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 || val_result.is_err() {
5475 errflag.fetch_and(!ERRFLAG_ERROR, Ordering::Relaxed);
5476 return 2;
5477 }
5478 // c:5267 — `return (val.type == MN_INTEGER) ? val.u.l == 0 : val.u.d == 0.0;`
5479 let val = val_result.unwrap();
5480 if val.type_ == MN_INTEGER {
5481 if val.l == 0 {
5482 1
5483 } else {
5484 0
5485 }
5486 } else if val.d == 0.0 {
5487 1
5488 } else {
5489 0
5490 }
5491}
5492
5493/// Port of `exectime(Estate state, UNUSED(int do_exec))` from
5494/// `Src/exec.c:5279-5294`. Run `time pipeline`: drives execpline with
5495/// the Z_TIMED|Z_SYNC flags so it tracks wall/user/sys time.
5496pub fn exectime(state: &mut estate, _do_exec: i32) -> i32 {
5497 let jb = *THISJOB
5498 .get_or_init(|| std::sync::Mutex::new(-1))
5499 .lock()
5500 .unwrap(); // c:5283
5501 let prior = state.prog.prog[state.pc.wrapping_sub(1)];
5502 // c:5284-5287 — empty `time` (no pipeline) — print accumulated shell time.
5503 if WC_TIMED_TYPE(prior) == WC_TIMED_EMPTY {
5504 // c:5285 — `shelltime(NULL,NULL,NULL,0);` — print accumulated
5505 // shell+kids time deltas since last call.
5506 crate::ported::jobs::shelltime(None, None, None, 0);
5507 return 0; // c:5286
5508 }
5509 // c:5288 — `execpline(state, *state->pc++, Z_TIMED|Z_SYNC, 0);`
5510 let slcode = state.prog.prog[state.pc];
5511 state.pc += 1;
5512 use crate::ported::zsh_h::{Z_SYNC, Z_TIMED};
5513 let _ = execpline(state, slcode, Z_TIMED as i32 | Z_SYNC as i32, 0);
5514 *THISJOB
5515 .get_or_init(|| std::sync::Mutex::new(-1))
5516 .lock()
5517 .unwrap() = jb; // c:5289
5518 LASTVAL.load(Ordering::Relaxed) // c:5290
5519}
5520
5521/// `execshfunc(Shfunc shf, LinkList args)` — `Src/exec.c:5540`.
5522/// Promoted to top-level pub fn so execcmd_exec at the shfunc
5523/// dispatch site (c:4102-4105) can route through it. The real port
5524/// owns queue_signals + cmdstack + sfcontext setup before calling
5525/// doshfunc; doshfunc itself is unported, so we route the body
5526/// through `runshfunc` (exec.rs:1700), which carries the
5527/// wrapper-chain + zunderscore restore. Degraded vs C (no cmdstack
5528/// push, no sfcontext flip, no XTRACE arg-trace) but the function
5529/// body executes and `lastval` is updated.
5530pub fn execshfunc(shf: &mut shfunc, args: &mut Vec<String>) {
5531 // c:5546-5547 — `if (errflag) return;`
5532 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
5533 return;
5534 }
5535 // c:5550-5557 — drop empty job slot before nested shfunc invoke:
5536 // if outer-pipe bookkeeping is clean AND thisjob is a real job
5537 // that's not the pipe-leader AND has no procs yet, deletejob()
5538 // recycles it. Avoids leaking job-table slots across recursive
5539 // function calls. Same pattern as execcursh's c:482-486.
5540 {
5541 let lp = list_pipe.load(Ordering::Relaxed);
5542 let lpj = list_pipe_job.load(Ordering::Relaxed);
5543 let tj = THISJOB.get().map(|m| *m.lock().unwrap()).unwrap_or(-1);
5544 if lp == 0 && tj != -1 && tj != lpj {
5545 if let Some(jt) = JOBTAB.get() {
5546 let mut guard = jt.lock().unwrap();
5547 let has = crate::ported::jobs::hasprocs(&guard, tj as usize);
5548 if !has {
5549 // c:5554-5555 — `last_file_list = jobtab[thisjob].filelist;
5550 // jobtab[thisjob].filelist = NULL;` — preserve
5551 // the filelist so deletejob doesn't unlink temp
5552 // files. Rust take()s the Vec into a local.
5553 let _last_file_list: Vec<jobfile> = if let Some(j) = guard.get_mut(tj as usize)
5554 {
5555 std::mem::take(&mut j.filelist)
5556 } else {
5557 Vec::new()
5558 };
5559 if let Some(j) = guard.get_mut(tj as usize) {
5560 crate::ported::jobs::deletejob(j, false); // c:5556
5561 }
5562 }
5563 }
5564 }
5565 }
5566 // c:5559-5570 — `if (isset(XTRACE)) { printprompt4(); ... \n; }` —
5567 // emit PS4 prefix + space-separated quoted args on the trace
5568 // stream so `set -x` shows the function invocation line.
5569 if isset(XTRACE) {
5570 printprompt4();
5571 for (i, a) in args.iter().enumerate() {
5572 if i > 0 {
5573 eprint!(" ");
5574 }
5575 eprint!("{}", quotedzputs(a));
5576 }
5577 eprintln!();
5578 }
5579 // c:5572-5578 cmdstack/sfcontext setup: omit (no cmdstack in
5580 // zshrs yet — replaced by tracing).
5581 // c:5580 — `doshfunc(shf, args, 0);` — doshfunc swaps PPARAMS
5582 // ($1, $2, …) to the function's args, runs the body via
5583 // runshfunc, then restores. doshfunc itself isn't ported yet
5584 // so we do the swap-and-restore inline here.
5585 // c:5580 — `doshfunc(shf, args, 0);`. The C path always has
5586 // `funcdef` populated since C parses at definition time. zshrs
5587 // compiles to fusevm chunks instead, so `funcdef` is None for
5588 // user-defined functions; only `body` (source string) carries
5589 // the definition. When that's the case, build a one-shot eprog
5590 // whose `strs` carries the source so runshfunc's script-pipeline
5591 // arm (execute_script_zsh_pipeline) executes the body.
5592 let prog_owned: Option<eprog> = if shf.funcdef.is_some() {
5593 None
5594 } else if let Some(ref body) = shf.body {
5595 Some(eprog {
5596 strs: Some(body.clone()),
5597 ..Default::default()
5598 })
5599 } else {
5600 None
5601 };
5602 let prog_ref: Option<&eprog> = match (shf.funcdef.as_deref(), prog_owned.as_ref()) {
5603 (Some(p), _) => Some(p),
5604 (_, Some(p)) => Some(p),
5605 _ => None,
5606 };
5607 if let Some(_prog) = prog_ref {
5608 // c:5580 — `doshfunc(shf, args, 0);`. Direct doshfunc call —
5609 // noreturnval=0 means the body's return value updates LASTVAL
5610 // (caller of execfuncdef reads it back). PPARAMS swap +
5611 // restore happens INSIDE doshfunc's scope; body_runner just
5612 // runs the body.
5613 let name_for_body = shf.node.nam.clone();
5614 let body_args_owned: Vec<String> = if args.len() > 1 {
5615 args[1..].to_vec()
5616 } else {
5617 Vec::new()
5618 };
5619 let body_runner = move || -> i32 {
5620 crate::ported::exec::run_function_body(&name_for_body, &body_args_owned).unwrap_or(0)
5621 };
5622 let _ = doshfunc(shf, args.clone(), false, body_runner);
5623 }
5624 // c:5582-5589 cmdstack restore/free: omit (no cmdstack).
5625}
5626
5627/// Port of `int doshfunc(Shfunc shfunc, LinkList doshargs, int noreturnval)`
5628/// from `Src/exec.c:5823-6158`.
5629///
5630/// C body's scope-management sequence ported here. The C source's
5631/// body-execution call (`runshfunc(prog, wrappers, name)` at c:6042)
5632/// is replaced by `body_runner` — zshrs runs function bodies through
5633/// fusevm bytecode rather than zsh's wordcode walker (per PORT.md
5634/// "zshrs replaces zsh's tree-walking interpreter" rule), so the
5635/// callback hands the live executor back to the caller (typically
5636/// the fusevm bridge) for the actual body run. Every line of scope
5637/// save/restore around the body call mirrors C exactly.
5638///
5639/// **RUST-ONLY ADAPTATION:** the extra `body_runner` parameter is
5640/// not in C. C calls `runshfunc(prog, wrappers, name)` directly at
5641/// c:6042; zshrs delegates to a closure because the body-execution
5642/// pipeline (fusevm) differs from C's (wordcode). The closure
5643/// fully replaces the runshfunc call and returns the body's exit
5644/// status (which doshfunc reads as `lastval` for the `noreturnval`
5645/// path).
5646#[allow(non_snake_case)]
5647pub fn doshfunc(
5648 shfunc: &mut shfunc, // c:5823
5649 doshargs: Vec<String>, // c:5823
5650 noreturnval: bool, // c:5823
5651 mut body_runner: impl FnMut() -> i32, // (Rust-only — body delegate)
5652) -> i32 {
5653 use crate::ported::builtin::{BREAKS, CONTFLAG, LASTVAL, LOOPS, RETFLAG};
5654 use crate::ported::jobs::{NUMPIPESTATS, PIPESTATS};
5655 use crate::ported::modules::parameter::FUNCSTACK;
5656 use crate::ported::params::endparamscope;
5657 use crate::ported::params::locallevel as locallevel_atomic;
5658 use crate::ported::zsh_h::{FS_EVAL, FS_FUNC, FS_SOURCE, FUNCTIONARGZERO, PM_UNDEFINED};
5659 use std::sync::atomic::Ordering;
5660
5661 let name = shfunc.node.nam.clone(); // c:5827
5662 let flags = shfunc.node.flags; // c:5828
5663 let fname = dupstring(&name); // c:5829
5664 let _ = fname; // c:5829 (kept for parity)
5665
5666 // c:6000-6004 — FUNCNEST guard. C:
5667 // if (zsh_funcnest >= 0 && funcstack && funcstacksz >= zsh_funcnest) {
5668 // zerr("maximum nested function level reached; increase FUNCNEST?");
5669 // goto undoshfunc;
5670 // }
5671 // This was previously stubbed out on the assumption that the zshrs
5672 // fusevm "doesn't recurse via real stack frames" — but it DOES:
5673 // dispatch_function_call -> doshfunc -> dispatch_function_call -> …
5674 // nests real native frames, so an accidental infinite recursion
5675 // (e.g. a self-referential hook, a wrapped function that re-invokes
5676 // itself, a zle widget cycle) overflowed the OS stack and
5677 // SEGFAULTED instead of producing zsh's graceful error. Check at
5678 // entry — before queue_signals / inc_locallevel / the funcsave
5679 // snapshot — so the early return needs no unwinding. FUNCNEST < 0
5680 // means "unlimited" (zsh's `zsh_funcnest >= 0` gate). Depth is the
5681 // count of already-active frames on FUNCSTACK; the 501st nested
5682 // call (depth == 500) trips it, matching C's `>=` on the default
5683 // FUNCNEST=500.
5684 let funcnest = crate::ported::params::getiparam("FUNCNEST");
5685 if funcnest >= 0 {
5686 // Count only real function frames (FS_FUNC) — the raw FUNCSTACK
5687 // Vec also carries FS_EVAL/FS_SOURCE/anon frames, which inflate
5688 // the depth several× and would falsely trip on legitimately deep
5689 // (but finite) recursion. FS_FUNC-only matches zsh's nesting
5690 // depth (`${#funcstack}`) and its funcnest accounting.
5691 let depth = crate::ported::modules::parameter::FUNCSTACK
5692 .lock()
5693 .map(|s| s.iter().filter(|f| f.tp == FS_FUNC).count())
5694 .unwrap_or(0) as i64;
5695 if depth >= funcnest {
5696 zerr("maximum nested function level reached; increase FUNCNEST?");
5697 crate::ported::builtin::LASTVAL.store(1, std::sync::atomic::Ordering::Relaxed);
5698 return 1;
5699 }
5700 }
5701
5702 // c:5835 — `queue_signals();` Lots of memory + global-state changes.
5703 queue_signals();
5704
5705 // c:5847-5848 — `marked_prog = shfunc->funcdef; useeprog(marked_prog);`
5706 // Pinned so a recursive unload doesn't free the eprog under us.
5707 // (Skipped: zshrs's shfunc holds a Box<Eprog>; Drop semantics
5708 // already pin until call ends. C does explicit refcount on
5709 // `funcdef->nref` via useeprog.)
5710
5711 // c:5856-5916 — Funcsave allocation + per-field snapshot.
5712 let funcsave_breaks = BREAKS.load(Ordering::Relaxed); // c:5859
5713 let funcsave_contflag = CONTFLAG.load(Ordering::Relaxed); // c:5860
5714 let funcsave_loops = LOOPS.load(Ordering::Relaxed); // c:5861
5715 let funcsave_lastval = LASTVAL.load(Ordering::Relaxed); // c:5862
5716 let funcsave_numpipestats = {
5717 // c:5864
5718 NUMPIPESTATS
5719 .get_or_init(|| std::sync::Mutex::new(0))
5720 .lock()
5721 .map(|n| *n)
5722 .unwrap_or(0)
5723 };
5724 let funcsave_noerrexit = noerrexit.load(Ordering::Relaxed); // c:5865
5725 // c:5866-5867 — trap_state PRIMED branch decrements trap_return.
5726 if TRAP_STATE.load(Ordering::Relaxed) == TRAP_STATE_PRIMED {
5727 // c:5866
5728 TRAP_RETURN.fetch_sub(1, Ordering::Relaxed); // c:5867
5729 }
5730 // c:5871 — `noerrexit &= ~NOERREXIT_RETURN;` — scope-clear of
5731 // return-suppress so a `return` inside the body fires errexit
5732 // checks normally.
5733 noerrexit.fetch_and(!NOERREXIT_RETURN, Ordering::Relaxed);
5734
5735 // c:5872-5880 — noreturnval branch: deep-copy pipestats so the
5736 // function body's pipestats writes are restored on exit.
5737 let funcsave_pipestats: Option<Vec<i32>> = if noreturnval {
5738 // c:5872
5739 let p = PIPESTATS.get_or_init(|| std::sync::Mutex::new([0; MAX_PIPESTATS]));
5740 p.lock().ok().map(|g| g[..funcsave_numpipestats].to_vec()) // c:5879 memcpy
5741 } else {
5742 None
5743 };
5744
5745 // c:5882-5896 — TRAPEXIT special case (deep-copy shfunc so
5746 // starttrapscope doesn't rug-pull). zshrs doesn't yet support
5747 // running TRAPEXIT directly via doshfunc; flagged for follow-up.
5748 // (Skip: name = "TRAPEXIT" path.)
5749 let _ = name.as_str(); // sentinel for the eventual port.
5750
5751 // c:5898 — `starttrapscope();` — canonical port at signals.rs:1135
5752 // tags SIGEXIT for deferred restoration at scope end.
5753 crate::ported::signals::starttrapscope();
5754 // c:5899 — `startpatternscope();`
5755 crate::ported::pattern::startpatternscope();
5756
5757 // c:5901 — `pptab = pparams;` — save outer positional params.
5758 let pptab: Vec<String> = crate::ported::builtin::PPARAMS
5759 .lock()
5760 .map(|p| p.clone())
5761 .unwrap_or_default();
5762
5763 // c:5902-5903 — non-undefined: `scriptname = dupstring(name);`
5764 let funcsave_scriptname = crate::ported::utils::scriptname_get();
5765 if (flags as u32 & PM_UNDEFINED) == 0 {
5766 // c:5902
5767 crate::ported::utils::set_scriptname(Some(dupstring(&name))); // c:5903
5768 }
5769
5770 // c:5904-5908 — `funcsave->zoptind = zoptind; ...` snapshot.
5771 // C zsh saves zoptind (the canonical OPTIND counter) and
5772 // zoptarg into the funcsave struct so OPTIND is implicitly
5773 // function-local: a `getopts` loop inside the function gets
5774 // its own counter that snaps back to the caller's on
5775 // function return. zshrs stores OPTIND/OPTARG in paramtab
5776 // as regular int/string params; snapshot them here and
5777 // restore at scope end. Bug #513.
5778 let funcsave_optind: Option<String> = crate::ported::params::getsparam("OPTIND");
5779 let funcsave_optarg: Option<String> = crate::ported::params::getsparam("OPTARG");
5780 // c:5966-5969 — `if (!isset(POSIXBUILTINS)) { zoptind = 1; optcind = 0; }`.
5781 // The snapshot above is only half the contract: C also RESETS the
5782 // counter on entry so an inner `getopts` loop starts fresh at the
5783 // first positional, independent of the caller's OPTIND. Without
5784 // this, a function whose body runs `getopts` after the caller
5785 // advanced OPTIND mis-parses its own args — e.g. `add-zsh-hook`
5786 // (which `getopts`-parses `precmd func`) printed its usage and
5787 // failed when invoked from a config that had run getopts earlier.
5788 // zshrs keeps the counter in the $OPTIND param plus the ZOPTIND/
5789 // OPTCIND trackers getopts syncs against; reset all three.
5790 if !crate::ported::zsh_h::isset(crate::ported::zsh_h::POSIXBUILTINS) {
5791 crate::ported::params::setiparam("OPTIND", 1); // c:5967 zoptind = 1
5792 crate::ported::builtin::ZOPTIND.store(1, Ordering::Relaxed);
5793 crate::ported::builtin::OPTCIND.store(0, Ordering::Relaxed); // c:5968 optcind = 0
5794 }
5795
5796 // c:5914 — `memcpy(funcsave->opts, opts, sizeof(opts));` — option
5797 // snapshot. Port wraps opts in OPTS_LIVE; capture the live state
5798 // here as a HashMap snapshot.
5799 let funcsave_opts = crate::ported::options::opt_state_snapshot();
5800
5801 // c:5915-5916 — `funcsave->emulation/sticky = emulation/sticky;`
5802 // Emulation snapshot pending the sticky-emulation port.
5803
5804 // c:5954-5969 — PM_TAGGED / PM_WARNNESTED option-override block.
5805 // Anonymous-function name comparison via pointer equality in C;
5806 // zshrs uses string equality. Skip until ANONYMOUS_FUNCTION_NAME
5807 // sentinel is ported.
5808
5809 // c:5970 — `funcsave->oflags = oflags;` — module-global tracking
5810 // function-attribute inheritance. Skip until oflags is ported.
5811
5812 // c:5977 — `opts[PRINTEXITVALUE] = 0;` — suppress printexitvalue
5813 // for inner commands; outer flag restored on exit.
5814 opt_state_set("printexitvalue", false);
5815
5816 // c:5978-5998 — pparams swap. C reads doshargs and constructs the
5817 // function's positional-param array. First arg is the function
5818 // name (regardless of FUNCTIONARGZERO); the rest become $1..$N.
5819 let funcsave_argv0: Option<String> = if !doshargs.is_empty() {
5820 // c:5978
5821 // c:5982-5985 — `pparams = x = zshcalloc(...)`.
5822 let positionals: Vec<String> = if doshargs.len() > 1 {
5823 doshargs[1..].to_vec()
5824 } else {
5825 Vec::new()
5826 };
5827 if let Ok(mut pp) = crate::ported::builtin::PPARAMS.lock() {
5828 *pp = positionals;
5829 }
5830 // c:5984-5987 — FUNCTIONARGZERO: save argzero, install
5831 // doshargs[0] (the function name).
5832 if isset(FUNCTIONARGZERO) {
5833 // c:5984
5834 let prev = crate::ported::utils::argzero();
5835 crate::ported::utils::set_argzero(Some(doshargs[0].clone())); // c:5986
5836 prev
5837 } else {
5838 None
5839 }
5840 } else {
5841 // c:5992-5997 — no args: empty pparams. argzero saved+dup'd.
5842 if let Ok(mut pp) = crate::ported::builtin::PPARAMS.lock() {
5843 *pp = Vec::new();
5844 }
5845 if isset(FUNCTIONARGZERO) {
5846 // c:5994
5847 let prev = crate::ported::utils::argzero();
5848 crate::ported::utils::set_argzero(prev.clone()); // c:5996 ztrdup(argzero)
5849 prev
5850 } else {
5851 None
5852 }
5853 };
5854
5855 // c:5999 — `++funcdepth;` — bumped on entry. Mirror via locallevel
5856 // since zshrs tracks function-call depth there.
5857 //
5858 // Plus the canonical startparamscope (c:6194 inside runshfunc).
5859 // zshrs's body_runner replaces runshfunc's `execode` call so the
5860 // startparamscope/endparamscope pair must wrap body_runner here,
5861 // not inside the closure. inc_locallevel is exactly startparamscope.
5862 inc_locallevel();
5863
5864 // c:6000-6004 — FUNCNEST check + `goto undoshfunc` on overflow.
5865 // Skip the runtime check (the zshrs fusevm doesn't recurse via
5866 // real stack frames so the depth limit is less critical), but
5867 // keep the comment so the C label `undoshfunc:` target is
5868 // visible — `goto undoshfunc;` here would jump straight to the
5869 // epilogue at the `undoshfunc:` label below.
5870
5871 // c:6005-6019 — funcstack frame push. The full C block:
5872 // funcsave->fstack.name = dupstring(name);
5873 // funcsave->fstack.caller = funcstack ? funcstack->name :
5874 // dupstring(argv0 ? argv0 : argzero);
5875 // funcsave->fstack.lineno = lineno;
5876 // funcsave->fstack.prev = funcstack;
5877 // funcsave->fstack.tp = FS_FUNC;
5878 // funcstack = &funcsave->fstack;
5879 // funcsave->fstack.flineno = shfunc->lineno;
5880 // funcsave->fstack.filename = getshfuncfile(shfunc);
5881 // c:6013 — `funcsave->fstack.lineno = lineno;` C has ONE lineno
5882 // global (params.c:123); zshrs mirrors it in both input::lineno
5883 // and lex::LEX_LINENO. The lex mirror is the one driven by
5884 // BUILTIN_SET_LINENO per statement AND zeroed for the duration
5885 // of a function body (see set_lineno(0) below), so it is the
5886 // one that matches C's value at call time: a call made INSIDE a
5887 // caller's body records the caller-relative line (0 for a
5888 // single-line fn), giving `$functrace` entries like `g:0`.
5889 // input::lineno stayed parked at the script-wide line and
5890 // produced `g:1`.
5891 let lineno_now = crate::ported::lex::lineno() as i64;
5892 let (caller, prev_tp): (Option<String>, Option<i32>) = {
5893 let stk = FUNCSTACK.lock().unwrap_or_else(|e| e.into_inner());
5894 if let Some(p) = stk.last() {
5895 (Some(p.name.clone()), Some(p.tp))
5896 } else {
5897 // c:6011-6012 — outermost: argv0 (saved) or argzero global.
5898 let z = funcsave_argv0
5899 .clone()
5900 .or_else(crate::ported::utils::argzero);
5901 (z, None)
5902 }
5903 };
5904 // c:6018-6019 — flineno: shfunc->lineno (function def line)
5905 let flineno = shfunc.lineno;
5906 let filename = shfunc.filename.clone().or_else(|| Some(String::new()));
5907 {
5908 let frame = crate::ported::zsh_h::funcstack {
5909 prev: None, // c:6014 (Vec-stack: index encodes link)
5910 name: dupstring(&name), // c:6005
5911 filename, // c:6019
5912 caller, // c:6011
5913 flineno, // c:6018
5914 lineno: lineno_now, // c:6013
5915 tp: FS_FUNC, // c:6015
5916 };
5917 let _ = prev_tp; // c:6011 (informational)
5918 let mut stack = FUNCSTACK.lock().unwrap_or_else(|e| e.into_inner());
5919 stack.push(frame); // c:6016 funcstack = &funcsave->fstack
5920 }
5921
5922 // c:6021-6042 — body execution. C: `runshfunc(prog, wrappers, name)`.
5923 // zshrs delegates to the body_runner closure (typically a fusevm
5924 // sub-VM run from the bridge). The closure returns the body's
5925 // exit status which becomes lastval.
5926 //
5927 // c:Src/exec.c:1251-1266 — push "shfunc" onto zsh_eval_context
5928 // so the body sees `${zsh_eval_context[*]}` containing the call
5929 // chain context. The execode-based path (c:1245-1282 port at
5930 // exec.rs:7092) already did this, but the fusevm body_runner
5931 // path skipped doshfunc's body_runner invocation without the
5932 // push. Bug #262 in docs/BUGS.md.
5933 //
5934 // Push BOTH the static `zsh_eval_context` (matches C's variable)
5935 // AND the paramtab array entry (what `${zsh_eval_context[*]}`
5936 // reads). Pop on every return path via the guard struct so
5937 // panics / early returns don't leak the entry. Inlined here
5938 // (sole caller) — `zsh_eval_context` is this module's own static.
5939 //
5940 // c:Src/exec.c:1251-1266 — `zsh_eval_context[*]` shell-visible
5941 // mirror: the array entry holds the stack; the scalar
5942 // `ZSH_EVAL_CONTEXT` holds the `:`-joined form. Both written via
5943 // the PM_READONLY bypass (`u_arr`/`u_str` direct), the same shape
5944 // the binary's `-c` ZSH_EVAL_CONTEXT init uses (bins/zshrs.rs).
5945 // A reusable `sync` closure is captured by the guard's Drop so
5946 // the same write happens after the push (here) and the pop (on
5947 // every return path / panic).
5948 let sync_eval_ctx = |stack: &[String]| {
5949 let joined = stack.join(":");
5950 if let Ok(mut tab) = crate::ported::params::paramtab().write() {
5951 if let Some(pm) = tab.get_mut("zsh_eval_context") {
5952 pm.u_arr = Some(stack.to_vec());
5953 pm.node.flags &= !(crate::ported::zsh_h::PM_UNSET as i32);
5954 }
5955 if let Some(pm) = tab.get_mut("ZSH_EVAL_CONTEXT") {
5956 pm.u_str = Some(joined);
5957 pm.node.flags &= !(crate::ported::zsh_h::PM_UNSET as i32);
5958 }
5959 }
5960 };
5961 if let Ok(mut ctx) = zsh_eval_context.lock() {
5962 ctx.push("shfunc".to_string());
5963 sync_eval_ctx(&ctx);
5964 }
5965 struct EvalContextGuard<F: Fn(&[String])>(F);
5966 impl<F: Fn(&[String])> Drop for EvalContextGuard<F> {
5967 fn drop(&mut self) {
5968 if let Ok(mut ctx) = zsh_eval_context.lock() {
5969 ctx.pop();
5970 (self.0)(&ctx);
5971 }
5972 }
5973 }
5974 let _eval_ctx_guard = EvalContextGuard(sync_eval_ctx);
5975 // c:Src/exec.c — function bodies execute with `lineno` reset to
5976 // the relative line within the body (incremented per WC_PIPE
5977 // from the wordcode-encoded lineno). zsh's zerrmsg
5978 // (Src/utils.c:301) emits the lineno prefix only when lineno
5979 // is non-zero AND (!SHINSTDIN || locallevel != 0). For an
5980 // inline single-line function like `f() { x=1 }`, the body's
5981 // WC_PIPE encodes lineno=1, exec sets `lineno = lineno - 1 =
5982 // 0`, and the zerrmsg path falls through to space-only ("f: ").
5983 //
5984 // zshrs's compiler doesn't thread WC_PIPE_LINENO into the
5985 // bytecode, so the global lineno stays at the script-wide
5986 // value (1 for inline `-c`). Suppress the line-number prefix
5987 // inside function bodies by saving lineno on entry and forcing
5988 // it to 0 during body execution; restore on exit. This makes
5989 // warnings inside functions emit `f: ...` matching zsh's
5990 // single-line-function format. Bug #54/#74/#86 in docs/BUGS.md.
5991 let saved_lineno = crate::ported::lex::lineno();
5992 crate::ported::lex::set_lineno(0);
5993 // c:Src/exec.c:6173-6175 + c:6196-6198 — `runshfunc` saves
5994 // zunderscore before the body runs and restores it after, so
5995 // `$_` reads outside the function continue to reflect the
5996 // function CALL's last arg (set by setunderscore at c:3491
5997 // before doshfunc enters). Without this, commands inside the
5998 // body (`:`, `echo`, etc.) update `$_` to their own last arg,
5999 // and the post-call `echo "[$_]"` sees the body's residue
6000 // instead of the call's arg. Bug surfaced via
6001 // test_dollar_underscore_after_function_call.
6002 let saved_zunderscore = crate::ported::params::getsparam("_").unwrap_or_default();
6003 // c:6042 — `runshfunc(prog, wrappers, name)`: the FuncWrap chain.
6004 // zsh/param/private installs `wrap_private` via addwrapper at
6005 // module boot (param_private.c:712); C's runshfunc invokes it
6006 // around every function body so `private_wraplevel` tracks the
6007 // callee's locallevel and outer-scope privates get
6008 // scopeprivate-hidden for the duration. The gate here is module
6009 // BOOT STATE (MOD_INIT_B — the bit `zmodload -e` reads and
6010 // load_module sets after do_boot_module, module.c:2317) —
6011 // exactly C's condition for the wrapper being in the chain: the
6012 // `private` dispatch runs require_module per the exec.c:2710
6013 // autofeature path, which boots the module. NOT is_loaded():
6014 // default-registered static modules carry MOD_LINKED from
6015 // startup, which would arm the wrapper before any `private`
6016 // use. The dispatch is a named special-case rather than a
6017 // WRAPPERS walk because the Rust wrap_private carries a
6018 // body-delegate closure (fusevm chunk runner) that can't live
6019 // in funcwrap's WrapFunc fn-pointer slot. The pwl < locallevel
6020 // pre-check mirrors wrap_private's own c:552 gate so the
6021 // closure is guaranteed to run when routed through it.
6022 let run_wrap_private = crate::ported::module::MODULESTAB
6023 .lock()
6024 .map(|t| {
6025 t.modules
6026 .get("zsh/param/private")
6027 .map(|m| (m.node.flags & crate::ported::zsh_h::MOD_INIT_B) != 0)
6028 .unwrap_or(false)
6029 })
6030 .unwrap_or(false)
6031 && crate::ported::modules::param_private::private_wraplevel.load(Ordering::Relaxed)
6032 < crate::ported::params::locallevel.load(Ordering::Relaxed);
6033 let body_status = if run_wrap_private {
6034 let mut st = 0;
6035 let _ = crate::ported::modules::param_private::wrap_private(
6036 std::ptr::null(),
6037 std::ptr::null(),
6038 std::ptr::null_mut(),
6039 || st = body_runner(), // c:556 runshfunc(prog, w, name)
6040 );
6041 st
6042 } else {
6043 body_runner()
6044 };
6045 crate::ported::params::set_zunderscore(std::slice::from_ref(&saved_zunderscore));
6046 crate::ported::lex::set_lineno(saved_lineno);
6047 LASTVAL.store(body_status, Ordering::Relaxed);
6048
6049 // c:6043 — `doneshfunc:` label. The C `runshfunc` happy-path
6050 // falls through here from c:6042.
6051 // c:6044 — `funcstack = funcsave->fstack.prev;` — pop our frame.
6052 {
6053 let mut stack = FUNCSTACK.lock().unwrap_or_else(|e| e.into_inner());
6054 stack.pop();
6055 }
6056 // c:6045 — `undoshfunc:` label. Reached either by fall-through
6057 // from c:6044 or by `goto undoshfunc;` from the FUNCNEST check
6058 // at c:6003. Tail epilogue follows.
6059
6060 // c:6046 — `--funcdepth;` — paired endparamscope (c:6200 inside
6061 // runshfunc) lives at c:6157 below as `endparamscope()`. Removed
6062 // the dec here so locallevel only decrements once per
6063 // function-call frame; double-dec was purging level-0 globals on
6064 // function exit (the `f() { x=foo; }; f; echo $x` regression).
6065
6066 // c:6047-6053 — retflag clear. C clears retflag and restores
6067 // outer breaks if a `return` fired.
6068 if RETFLAG.load(Ordering::SeqCst) != 0 {
6069 // c:6047
6070 RETFLAG.store(0, Ordering::SeqCst); // c:6051
6071 BREAKS.store(funcsave_breaks, Ordering::SeqCst); // c:6052
6072 }
6073
6074 // c:6054-6058 — pparams + argv0 restore.
6075 if let Ok(mut pp) = crate::ported::builtin::PPARAMS.lock() {
6076 *pp = pptab; // c:6059 pparams = pptab
6077 }
6078 if let Some(saved) = funcsave_argv0 {
6079 // c:6055
6080 crate::ported::utils::set_argzero(Some(saved)); // c:6057
6081 }
6082
6083 // c:Src/exec.c:6060-6062 — `zoptind = funcsave->zoptind;
6084 // zoptarg = funcsave->zoptarg;`. Restore OPTIND/OPTARG so
6085 // an inner getopts loop's counter mutations don't leak to
6086 // the caller. Bug #513.
6087 if let Some(saved) = funcsave_optind {
6088 if let Ok(n) = saved.parse::<i64>() {
6089 crate::ported::params::setiparam("OPTIND", n);
6090 } else {
6091 crate::ported::params::setsparam("OPTIND", &saved);
6092 }
6093 }
6094 if let Some(saved) = funcsave_optarg {
6095 crate::ported::params::setsparam("OPTARG", &saved);
6096 }
6097
6098 // c:6064 — `scriptname = funcsave->scriptname;`
6099 crate::ported::utils::set_scriptname(funcsave_scriptname);
6100
6101 // c:6067 — `endpatternscope();`
6102 crate::ported::pattern::endpatternscope();
6103
6104 // c:6078-6102 — LOCALOPTIONS restore. Re-apply the snapshot when
6105 // localoptions was set inside the body.
6106 if crate::ported::options::opt_state_get("localoptions").unwrap_or(false) {
6107 // c:6091 memcpy(opts, funcsave->opts, sizeof(opts)) — full restore.
6108 let current = crate::ported::options::opt_state_snapshot();
6109 for (k, _) in ¤t {
6110 if !funcsave_opts.contains_key(k) {
6111 crate::ported::options::opt_state_unset(k);
6112 }
6113 }
6114 for (k, v) in &funcsave_opts {
6115 opt_state_set(k, *v);
6116 }
6117 } else {
6118 // c:6097-6101 — non-LOCALOPTIONS: restore only the always-
6119 // restored subset (XTRACE / PRINTEXITVALUE / LOCALOPTIONS /
6120 // LOCALLOOPS / WARNNESTEDVAR).
6121 for opt in [
6122 "xtrace",
6123 "printexitvalue",
6124 "localoptions",
6125 "localloops",
6126 "warnnestedvar",
6127 ] {
6128 if let Some(v) = funcsave_opts.get(opt) {
6129 opt_state_set(opt, *v);
6130 }
6131 }
6132 }
6133
6134 // c:6104-6112 — LOCALLOOPS warn-on-active-continue/break + restore
6135 // breaks/contflag/loops snapshot. Skip the warn lines for now;
6136 // restore the bookkeeping.
6137 if crate::ported::options::opt_state_get("localloops").unwrap_or(false) {
6138 BREAKS.store(funcsave_breaks, Ordering::SeqCst); // c:6109
6139 CONTFLAG.store(funcsave_contflag, Ordering::SeqCst); // c:6110
6140 LOOPS.store(funcsave_loops, Ordering::SeqCst); // c:6111
6141 }
6142
6143 // c:Src/exec.c:6195-6200 — C's runshfunc calls endparamscope()
6144 // BEFORE returning to doshfunc, which then calls endtrapscope()
6145 // at c:6114. So locallevel is ALREADY one less by the time
6146 // endtrapscope's pop loop compares saved local > current.
6147 //
6148 // Bug #80 in docs/BUGS.md: zshrs had endtrapscope FIRST (here at
6149 // line 5774), endparamscope LATER. That left locallevel at the
6150 // function's own level when endtrapscope ran, so saved entries
6151 // tagged with `local == current_function_level` failed the
6152 // `local > locallevel` pop condition. Nested EXIT traps
6153 // (saved at deeper level) never restored at the outer fn's
6154 // endtrapscope — outer EXIT traps fired at script exit instead.
6155 //
6156 // Decrement locallevel via a peer-of-endparamscope locallevel
6157 // bookkeeping call before endtrapscope, then leave the real
6158 // endparamscope at its current site below so the param scope
6159 // unwind still happens after the exit_pending check.
6160 {
6161 use crate::ported::params::locallevel as ll;
6162 let prev = ll.load(Ordering::Relaxed);
6163 if prev > 0 {
6164 ll.store(prev - 1, Ordering::Relaxed);
6165 }
6166 crate::ported::signals::endtrapscope();
6167 // Re-bump so the existing endparamscope() call below sees the
6168 // same pre-decrement state and its own internal decrement
6169 // lands at the right value (mirrors C's "endparamscope already
6170 // happened" comment at c:6135-6136 — the C order is endparam
6171 // (inside runshfunc) → endtrap (in doshfunc); we keep that
6172 // logical ordering for endtrapscope only, without disturbing
6173 // the rest of the epilogue's level math).
6174 ll.store(prev, Ordering::Relaxed);
6175 }
6176
6177 // c:6116-6117 — TRAP_STATE_PRIMED branch: bump trap_return back.
6178 if TRAP_STATE.load(Ordering::Relaxed) == TRAP_STATE_PRIMED {
6179 // c:6116
6180 TRAP_RETURN.fetch_add(1, Ordering::Relaxed); // c:6117
6181 }
6182
6183 // c:6118 — `ret = lastval;`
6184 let ret = LASTVAL.load(Ordering::Relaxed);
6185
6186 // c:6119 — `noerrexit = funcsave->noerrexit;`
6187 noerrexit.store(funcsave_noerrexit, Ordering::Relaxed);
6188
6189 // c:6120-6124 — noreturnval: restore lastval + pipestats. C runs
6190 // the function for side-effects only; outer lastval/pipestats
6191 // should reflect the PRE-call state.
6192 if noreturnval {
6193 // c:6120
6194 LASTVAL.store(funcsave_lastval, Ordering::Relaxed); // c:6121
6195 if let Some(saved_ps) = funcsave_pipestats {
6196 let n = NUMPIPESTATS.get_or_init(|| std::sync::Mutex::new(0));
6197 if let Ok(mut nguard) = n.lock() {
6198 *nguard = funcsave_numpipestats; // c:6122
6199 }
6200 let p = PIPESTATS.get_or_init(|| std::sync::Mutex::new([0; MAX_PIPESTATS]));
6201 if let Ok(mut pguard) = p.lock() {
6202 for (i, v) in saved_ps.iter().enumerate() {
6203 if i < pguard.len() {
6204 pguard[i] = *v; // c:6123 memcpy
6205 }
6206 }
6207 }
6208 }
6209 }
6210
6211 // c:Src/exec.c doshfunc → endparamscope — restore local-typeset
6212 // params installed during the body. In C, this is called inside
6213 // runshfunc (c:6200) BEFORE control returns to doshfunc's tail —
6214 // so by the time the exit_pending check runs at c:6141,
6215 // locallevel has ALREADY been decremented. The c:6135-6136
6216 // comment explicitly states "The endparamscope() has already
6217 // happened, hence the +1 here."
6218 //
6219 // The previous Rust ordering placed endparamscope AFTER the
6220 // exit_pending check, which compared exit_level against the
6221 // un-decremented locallevel. For `foo() { exit 7; }; foo`:
6222 // exit_level=1, cur_locallevel=1 (pre-decrement)
6223 // check: exit_level >= cur_locallevel + 1 ⟹ 1 >= 2 = false
6224 // The function returned cleanly without triggering zexit, and
6225 // the shell exited 0 instead of 7. Moving endparamscope before
6226 // the check matches C and makes the off-by-one resolve.
6227 endparamscope();
6228
6229 // c:6128 — `unqueue_signals();`
6230 unqueue_signals();
6231
6232 // c:6135-6155 — exit_pending branch: when an `exit` was queued
6233 // inside the function body and we've unwound enough scopes for
6234 // it to take effect, either keep unwinding (still inside a
6235 // nested function) or actually exit the shell.
6236 let exit_pending = crate::ported::builtin::EXIT_PENDING.load(Ordering::Relaxed);
6237 let exit_level = crate::ported::builtin::EXIT_LEVEL.load(Ordering::Relaxed);
6238 let cur_locallevel = locallevel.load(Ordering::Relaxed) as i32;
6239 let cur_forklevel = FORKLEVEL.load(Ordering::Relaxed);
6240 let in_exit_trap = crate::ported::signals::in_exit_trap.load(Ordering::Relaxed); // c:Src/signals.c:63
6241 if exit_pending != 0 && exit_level >= cur_locallevel + 1 && in_exit_trap == 0 {
6242 // c:6141
6243 if cur_locallevel > cur_forklevel {
6244 // c:6143 — still inside a nested function: keep unwinding.
6245 RETFLAG.store(1, Ordering::Relaxed); // c:6144
6246 BREAKS.store(LOOPS.load(Ordering::Relaxed), Ordering::Relaxed); // c:6145
6247 } else {
6248 // c:6151 — out of all functions: exit for real.
6249 crate::ported::builtin::STOPMSG.store(1, Ordering::Relaxed); // c:6151
6250 let val = EXIT_VAL.load(Ordering::Relaxed);
6251 crate::ported::builtin::zexit(val, crate::ported::zsh_h::ZEXIT_NORMAL);
6252 // c:6152
6253 }
6254 }
6255
6256 ret // c:6157 return ret
6257}
6258
6259/// `TRAP_STATE_PRIMED` per `Src/signals.h:55` — doshfunc tests this
6260/// to decide whether to bump trap_return on entry/exit. Local
6261/// const here because the canonical zsh_h port doesn't carry
6262/// trap-state numeric constants yet.
6263const TRAP_STATE_PRIMED: i32 = 2; // c:Src/signals.h:55
6264
6265/// Port of `execfuncdef(Estate state, Eprog redir_prog)` from
6266/// `Src/exec.c:5309-5494`. Define a shell function: extract
6267/// name(s)+body from the wordcode payload, allocate the Shfunc,
6268/// install into `shfunctab` (named), or execute immediately (anon).
6269#[allow(non_snake_case)]
6270pub fn execfuncdef(state: &mut estate, mut redir_prog: Option<crate::ported::zsh_h::Eprog>) -> i32 {
6271 use crate::ported::hashtable::{dircache_set, shfunctab_lock};
6272 use crate::ported::jobs::{getsigidx, removetrapnode};
6273 use crate::ported::parse::{dupeprog, freeeprog, incrdumpcount};
6274 use crate::ported::signals::settrap;
6275 use crate::ported::utils::scriptfilename_get;
6276 use crate::ported::zsh_h::{
6277 eprog as eprog_t, hashnode, patprog as patprog_t, shfunc as shfunc_t, Patprog,
6278 EC_DUPTOK as _, EF_HEAP, EF_MAP, EF_REAL, FS_EVAL, FS_FUNC, PM_ANONYMOUS, PM_TAGGED,
6279 PM_TAGGED_LOCAL, PRINTEXITVALUE, SHINSTDIN, ZSIG_FUNC,
6280 };
6281 // c:5311 — `Shfunc shf;`
6282 let mut shf: Box<shfunc_t>;
6283 // c:5312 — `char *s = NULL;`
6284 let mut s: Option<String> = None;
6285 // c:5313 — `int signum, nprg, sbeg, nstrs, npats, do_tracing, len, plen, i, htok = 0, ret = 0;`
6286 let mut signum: i32;
6287 let nprg: i32;
6288 let sbeg: i32;
6289 let nstrs: i32;
6290 let npats: i32;
6291 let do_tracing: i32;
6292 let len: i32;
6293 let plen: i32;
6294 // `i` — C loop counter for pp stamp; Rust uses .map().collect().
6295 let mut htok: i32 = 0;
6296 let mut ret: i32 = 0;
6297 // c:5314 — `int anon_func = 0;`
6298 let mut anon_func: i32 = 0;
6299 // c:5315 — `Wordcode beg = state->pc, end;`
6300 let _beg: usize = state.pc;
6301 let mut end: usize;
6302 // c:5316 — `Eprog prog;`
6303 // (allocated inline per-iter below; no upfront binding needed)
6304 // c:5317 — `Patprog *pp;` — handled by Vec construction.
6305 // c:5318 — `LinkList names;`
6306 let names: Vec<String>;
6307 // c:5319 — `int tracing_flags;`
6308 let tracing_flags: i32;
6309
6310 // c:5321 — `end = beg + WC_FUNCDEF_SKIP(state->pc[-1]);`
6311 end = state.pc + WC_FUNCDEF_SKIP(state.prog.prog[state.pc.wrapping_sub(1)]) as usize;
6312 // c:5322 — `names = ecgetlist(state, *state->pc++, EC_DUPTOK, &htok);`
6313 let num = state.prog.prog[state.pc] as usize;
6314 state.pc += 1;
6315 names = ecgetlist(state, num, EC_DUPTOK, Some(&mut htok));
6316 // c:5323 — `sbeg = *state->pc++;`
6317 sbeg = state.prog.prog[state.pc] as i32;
6318 state.pc += 1;
6319 // c:5324 — `nstrs = *state->pc++;`
6320 nstrs = state.prog.prog[state.pc] as i32;
6321 state.pc += 1;
6322 // c:5325 — `npats = *state->pc++;`
6323 npats = state.prog.prog[state.pc] as i32;
6324 state.pc += 1;
6325 // c:5326 — `do_tracing = *state->pc++;`
6326 do_tracing = state.prog.prog[state.pc] as i32;
6327 state.pc += 1;
6328
6329 // c:5328 — `nprg = (end - state->pc);`
6330 nprg = end.saturating_sub(state.pc) as i32;
6331 // c:5329 — `plen = nprg * sizeof(wordcode);`
6332 plen = nprg.saturating_mul(size_of::<wordcode>() as i32);
6333 // c:5330 — `len = plen + (npats * sizeof(Patprog)) + nstrs;`
6334 len = plen + npats.saturating_mul(size_of::<usize>() as i32) + nstrs;
6335 // c:5331 — `tracing_flags = do_tracing ? PM_TAGGED_LOCAL : 0;`
6336 tracing_flags = if do_tracing != 0 {
6337 PM_TAGGED_LOCAL as i32
6338 } else {
6339 0
6340 };
6341
6342 // c:5333-5339 — htok name substitution.
6343 let mut names_mut: Vec<String> = names;
6344 if htok != 0 && !names_mut.is_empty() {
6345 execsubst(&mut names_mut); // c:5334
6346 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
6347 // c:5335
6348 state.pc = end; // c:5336
6349 return 1; // c:5337
6350 }
6351 }
6352
6353 // c:5341-5342 DPUTS — debug assertion (anon + redir simultaneously).
6354 // Not portable as panic; left as comment.
6355
6356 // c:5343 — `while (!names || (s = (char *) ugetnode(names))) {`
6357 // num==0 → anon (no names); else iterate names.
6358 let mut names_iter = names_mut.into_iter();
6359 loop {
6360 let no_names = num == 0;
6361 if !no_names {
6362 // c:5343 — `s = ugetnode(names)`; break when list exhausted.
6363 match names_iter.next() {
6364 Some(nm) => s = Some(nm),
6365 None => break,
6366 }
6367 }
6368 // c:5344-5374 — Eprog alloc.
6369 let prog: Box<eprog_t>;
6370 let dump_present = state.prog.dump.is_some();
6371 let make_pat = || -> Patprog {
6372 // c:5375-5376 `*pp = dummy_patprog1;` — sentinel slot.
6373 Box::new(patprog_t {
6374 startoff: 0,
6375 size: 0,
6376 mustoff: 0,
6377 patmlen: 0,
6378 globflags: 0,
6379 globend: 0,
6380 flags: 0,
6381 patnpar: 0,
6382 patstartch: 0,
6383 })
6384 };
6385 if no_names {
6386 // c:5345-5346 — `zhalloc`, `nref = -1`.
6387 // c:5355-5357 — EF_HEAP, no dump, npats pats on heap.
6388 let pats: Vec<Patprog> = (0..npats).map(|_| make_pat()).collect();
6389 let prog_words: Vec<wordcode> = state.prog.prog[state.pc..end].to_vec();
6390 // c:5365 — `prog->strs = state->strs + sbeg;`
6391 let strs_tail = state.strs.as_ref().map(|t| {
6392 let off = (sbeg as usize).min(t.len());
6393 t[off..].to_string()
6394 });
6395 prog = Box::new(eprog_t {
6396 flags: EF_HEAP,
6397 len,
6398 npats,
6399 nref: -1, // c:5346
6400 pats,
6401 prog: prog_words,
6402 strs: strs_tail,
6403 shf: None, // c:5377
6404 dump: None, // c:5356
6405 strs_metafied: false, // native pool — clean UTF-8
6406 });
6407 } else if dump_present {
6408 // c:5358-5363 — EF_MAP path: refcount the dump, allocate
6409 // pats permanent, reuse `state->pc` slice in place.
6410 if let Some(dp) = state.prog.dump.as_deref() {
6411 incrdumpcount(dp); // c:5360
6412 }
6413 let pats: Vec<Patprog> = (0..npats).map(|_| make_pat()).collect();
6414 let prog_words: Vec<wordcode> = state.prog.prog[state.pc..end].to_vec();
6415 let strs_tail = state.strs.as_ref().map(|t| {
6416 let off = (sbeg as usize).min(t.len());
6417 t[off..].to_string()
6418 });
6419 prog = Box::new(eprog_t {
6420 flags: EF_MAP, // c:5359
6421 len,
6422 npats,
6423 nref: 1, // c:5349
6424 pats,
6425 prog: prog_words,
6426 strs: strs_tail,
6427 shf: None, // c:5377
6428 dump: state.prog.dump.clone(), // c:5361
6429 strs_metafied: state.prog.strs_metafied, // pool copied verbatim — carry provenance
6430 });
6431 } else {
6432 // c:5366-5374 — EF_REAL: copy wordcode + strs into a
6433 // freshly-owned eprog (no shared dump backing).
6434 let pats: Vec<Patprog> = (0..npats).map(|_| make_pat()).collect();
6435 let pc_end = state.pc + nprg as usize;
6436 let prog_words: Vec<wordcode> = state.prog.prog[state.pc..pc_end].to_vec();
6437 // c:5373 — `memcpy(prog->strs, state->strs + sbeg, nstrs);`
6438 let strs_copy = state.strs.as_ref().map(|t| {
6439 let off = (sbeg as usize).min(t.len());
6440 let n_avail = t.len().saturating_sub(off);
6441 let take = (nstrs as usize).min(n_avail);
6442 t[off..off + take].to_string()
6443 });
6444 prog = Box::new(eprog_t {
6445 flags: EF_REAL, // c:5367
6446 len,
6447 npats,
6448 nref: 1, // c:5349
6449 pats,
6450 prog: prog_words,
6451 strs: strs_copy,
6452 shf: None, // c:5377
6453 dump: None, // c:5371
6454 strs_metafied: false, // native pool — clean UTF-8
6455 });
6456 }
6457
6458 // c:5379-5381 — Shfunc alloc + funcdef + tracing flags.
6459 shf = Box::new(shfunc_t {
6460 node: hashnode {
6461 next: None,
6462 nam: String::new(),
6463 flags: tracing_flags,
6464 },
6465 filename: scriptfilename_get(), // c:5383 `ztrdup(scriptfilename)`
6466 // c:5384-5388 — funcstack top FS_FUNC/FS_EVAL → flineno+lineno
6467 // else just lineno.
6468 lineno: {
6469 let cur_lineno = crate::ported::input::lineno.with(|l| l.get()) as i64;
6470 if let Ok(stk) = crate::ported::modules::parameter::FUNCSTACK.lock() {
6471 if let Some(top) = stk.last() {
6472 if top.tp == FS_FUNC || top.tp == FS_EVAL {
6473 top.flineno + cur_lineno
6474 } else {
6475 cur_lineno
6476 }
6477 } else {
6478 cur_lineno
6479 }
6480 } else {
6481 cur_lineno
6482 }
6483 },
6484 funcdef: Some(prog), // c:5380
6485 redir: None,
6486 sticky: None,
6487 body: None,
6488 });
6489 // c:5396-5401 — redir_prog ownership.
6490 // C: `if (names && nonempty(names) && redir_prog) shf->redir = dupeprog(redir_prog,0)`
6491 // else `shf->redir = redir_prog; redir_prog = 0;`
6492 // "nonempty(names)" means there's a NEXT name still to consume —
6493 // i.e. peek the iterator.
6494 if !no_names && names_iter.len() > 0 && redir_prog.is_some() {
6495 // c:5397 — dupe so each earlier name gets its own copy; the
6496 // last name (when iterator drains) gets the original.
6497 if let Some(rp) = redir_prog.as_deref() {
6498 shf.redir = Some(Box::new(dupeprog(rp, false)));
6499 }
6500 } else {
6501 // c:5399-5400 — last name (or anon) takes original.
6502 shf.redir = redir_prog.take();
6503 }
6504 // c:5402 — `shfunc_set_sticky(shf);`
6505 shfunc_set_sticky(&mut shf);
6506
6507 if no_names {
6508 // c:5404-5457 — anonymous function: execute immediately.
6509 // `LinkList args;` c:5409
6510 let mut args: Vec<String>;
6511
6512 anon_func = 1; // c:5411
6513 shf.node.flags |= PM_ANONYMOUS as i32; // c:5412
6514
6515 state.pc = end; // c:5414
6516 // c:5415 — `end += *state->pc++;`
6517 end += state.prog.prog[state.pc] as usize;
6518 state.pc += 1;
6519 // c:5416 — `args = ecgetlist(state, *state->pc++, EC_DUPTOK, &htok);`
6520 let arg_count = state.prog.prog[state.pc] as usize;
6521 state.pc += 1;
6522 args = ecgetlist(state, arg_count, EC_DUPTOK, Some(&mut htok));
6523
6524 // c:5418-5429 — htok arg subst + cleanup-on-error.
6525 if htok != 0 && !args.is_empty() {
6526 execsubst(&mut args); // c:5419
6527 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
6528 // c:5421 — `freeeprog(shf->funcdef);`
6529 if let Some(mut fd) = shf.funcdef.take() {
6530 freeeprog(&mut fd);
6531 }
6532 if shf.redir.is_some() {
6533 // c:5422-5423 — "shouldn't be" anon+redir, but free if so.
6534 if let Some(mut rd) = shf.redir.take() {
6535 freeeprog(&mut rd);
6536 }
6537 }
6538 dircache_set(&mut shf.filename, None); // c:5424
6539 drop(shf); // c:5425 `zfree(shf, sizeof(*shf));`
6540 state.pc = end; // c:5426
6541 return 1; // c:5427
6542 }
6543 }
6544
6545 // c:5431-5432 — `setunderscore` to last arg (or "").
6546 let under_val = if !args.is_empty() {
6547 args.last().cloned().unwrap_or_default()
6548 } else {
6549 String::new()
6550 };
6551 setunderscore(&under_val);
6552
6553 // c:5434-5435 — `if (!args) args = newlinklist();`
6554 // (Rust Vec is never null; no-op.)
6555 shf.node.nam = ANONYMOUS_FUNCTION_NAME.to_string(); // c:5436
6556 // c:5437 — `pushnode(args, shf->node.nam);` — prepend.
6557 args.insert(0, shf.node.nam.clone());
6558
6559 execshfunc(&mut shf, &mut args); // c:5439
6560 ret = LASTVAL.load(Ordering::Relaxed); // c:5440
6561
6562 // c:5442-5450 — PRINTEXITVALUE+SHINSTDIN exit report.
6563 if isset(PRINTEXITVALUE) && isset(SHINSTDIN) && ret != 0 {
6564 eprintln!("zsh: exit {}", ret); // c:5445/5447
6565 }
6566
6567 // c:5452-5456 — cleanup.
6568 if let Some(mut fd) = shf.funcdef.take() {
6569 freeeprog(&mut fd);
6570 }
6571 if let Some(mut rd) = shf.redir.take() {
6572 // c:5453-5454 — "shouldn't be" but free if present.
6573 freeeprog(&mut rd);
6574 }
6575 dircache_set(&mut shf.filename, None); // c:5455
6576 drop(shf); // c:5456 `zfree(shf, sizeof(*shf));`
6577 break; // c:5457
6578 } else {
6579 // c:5458-5484 — named function path.
6580 let nm = s.as_deref().unwrap_or("");
6581 // c:5460-5475 — TRAP* signal-trap install.
6582 if nm.len() > 4 && nm.starts_with("TRAP") {
6583 if let Some(sn) = getsigidx(&nm[4..]) {
6584 signum = sn;
6585 // c:5462 — `if (settrap(signum, NULL, ZSIG_FUNC))`
6586 if settrap(signum, None, ZSIG_FUNC) != 0 {
6587 if let Some(mut fd) = shf.funcdef.take() {
6588 freeeprog(&mut fd); // c:5463
6589 }
6590 dircache_set(&mut shf.filename, None); // c:5464
6591 drop(shf); // c:5465
6592 state.pc = end; // c:5466
6593 return 1; // c:5467
6594 }
6595 // c:5474 — `removetrapnode(signum);`
6596 removetrapnode(signum);
6597 // c:Src/signals.c::settrap → unsettrap →
6598 // removetrap also clears sigfuncs[sig] (the C
6599 // string-form trap slot). zshrs's port stores
6600 // string-form bodies in a separate
6601 // `traps_table` HashMap not touched by
6602 // removetrap. Drop the string-form entry here
6603 // so dotrap's fallback doesn't double-dispatch
6604 // when a TRAPxxx function REPLACES an
6605 // existing `trap '...' SIG` registration. Bug
6606 // #541 in docs/BUGS.md.
6607 if let Ok(mut t) = crate::ported::builtin::traps_table().lock() {
6608 t.remove(&nm[4..]);
6609 }
6610 }
6611 }
6612 // c:5477-5482 — re-define-self trace flag propagate.
6613 if let Ok(stk) = crate::ported::modules::parameter::FUNCSTACK.lock() {
6614 if let Some(top) = stk.last() {
6615 if top.tp == FS_FUNC && top.name == nm {
6616 // c:5479 — `Shfunc old = shfunctab->getnode(s);`
6617 if let Ok(rd) = shfunctab_lock().read() {
6618 if let Some(old) = rd.get(nm) {
6619 // c:5481 — propagate PM_TAGGED|PM_TAGGED_LOCAL.
6620 shf.node.flags |=
6621 old.node.flags & (PM_TAGGED as i32 | PM_TAGGED_LOCAL as i32);
6622 }
6623 }
6624 }
6625 }
6626 }
6627 // c:5483 — `shfunctab->addnode(shfunctab, ztrdup(s), shf);`
6628 shf.node.nam = nm.to_string();
6629 if let Ok(mut wr) = shfunctab_lock().write() {
6630 wr.add(*shf);
6631 }
6632 }
6633 }
6634 // c:5486-5487 — `if (!anon_func) setunderscore("");`
6635 if anon_func == 0 {
6636 setunderscore("");
6637 }
6638 // c:5488-5491 — leftover redir cleanup ("shouldn't happen").
6639 if let Some(mut rd) = redir_prog.take() {
6640 freeeprog(&mut rd);
6641 }
6642 // c:5492 — `state->pc = end;`
6643 state.pc = end;
6644 // c:5493 — `return ret;`
6645 ret
6646}
6647
6648/// Port of `execsimple(Estate state)` from `Src/exec.c:1290-1340`.
6649/// Fast-path for single-Simple commands that bypasses the full
6650/// `execcmd_exec` machinery.
6651pub fn execsimple(state: &mut estate) -> i32 {
6652 // c:1292 — `wordcode code = *state->pc++;`
6653 let mut code = state.prog.prog[state.pc];
6654 state.pc += 1;
6655 // c:1295-1296 — `if (errflag) return (lastval = 1);`
6656 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
6657 LASTVAL.store(1, Ordering::Relaxed);
6658 return 1;
6659 }
6660 // c:1298-1299 — `if (!isset(EXECOPT)) return lastval = 0;`
6661 if !isset(crate::ported::zsh_h::EXECOPT) {
6662 LASTVAL.store(0, Ordering::Relaxed);
6663 return 0;
6664 }
6665 // c:1301-1303 — `if (!IN_EVAL_TRAP() && !ineval && code) lineno = code - 1;`
6666 // In evaluated traps, don't modify the line number (the trap
6667 // dispatcher restores it). `code` here is the wordcode-encoded
6668 // line number from the WC_SIMPLE entry at state.pc-1.
6669 if !crate::ported::zsh_h::IN_EVAL_TRAP()
6670 && crate::ported::builtin::INEVAL.load(Ordering::SeqCst) == 0
6671 && code != 0
6672 {
6673 crate::ported::input::lineno.with(|l| l.set((code as usize).saturating_sub(1)));
6674 }
6675 // c:1306 — `code = wc_code(*state->pc++);`
6676 code = wc_code(state.prog.prog[state.pc]);
6677 state.pc += 1;
6678 // c:1311-1312 — `otj = thisjob; thisjob = -1;`
6679 let otj = *THISJOB
6680 .get_or_init(|| std::sync::Mutex::new(-1))
6681 .lock()
6682 .unwrap();
6683 *THISJOB
6684 .get_or_init(|| std::sync::Mutex::new(-1))
6685 .lock()
6686 .unwrap() = -1;
6687 use crate::ported::zsh_h::{
6688 WC_ARITH, WC_CASE, WC_COND, WC_FOR, WC_REPEAT, WC_SELECT, WC_SUBSH, WC_TIMED, WC_TRY,
6689 WC_WHILE,
6690 };
6691 use crate::ported::zsh_h::{WC_ASSIGN, WC_CURSH};
6692 let lv = if code == WC_ASSIGN {
6693 // c:1315-1319 — assignment-only simple cmd path.
6694 // cmdoutval = 0; addvars(state, state->pc - 1, 0); setunderscore("");
6695 addvars(state, state.pc.saturating_sub(1), 0);
6696 setunderscore(""); // c:1317
6697 if isset(XTRACE) {
6698 eprintln!();
6699 }
6700 let ef = errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR;
6701 if ef != 0 {
6702 ef
6703 } else {
6704 0
6705 }
6706 } else {
6707 // c:1322-1330 — dispatch via execfuncs[code - WC_CURSH] or execfuncdef.
6708 let q = queue_signal_level();
6709 dont_queue_signals();
6710 let result = if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
6711 ERRFLAG_ERROR
6712 } else if code == WC_FUNCDEF {
6713 execfuncdef(state, None)
6714 } else {
6715 // c:5499 execfuncs[] table inlined — match the WC_* tag.
6716 match code {
6717 WC_CURSH => execcursh(state, 0),
6718 WC_SUBSH => execcursh(state, 0), // subshell folds to cursh body walk
6719 WC_FOR => execfor(state, 0),
6720 WC_SELECT => execselect(state, 0),
6721 WC_CASE => execcase(state, 0),
6722 WC_IF => execif(state, 0),
6723 WC_WHILE => execwhile(state, 0),
6724 WC_REPEAT => execrepeat(state, 0),
6725 WC_TIMED => exectime(state, 0),
6726 WC_COND => execcond(state, 0),
6727 WC_ARITH => execarith(state, 0),
6728 WC_TRY => exectry(state, 0),
6729 _ => 0,
6730 }
6731 };
6732 restore_queue_signals(q);
6733 result
6734 };
6735 // c:1334 — `thisjob = otj;`
6736 *THISJOB
6737 .get_or_init(|| std::sync::Mutex::new(-1))
6738 .lock()
6739 .unwrap() = otj;
6740 LASTVAL.store(lv, Ordering::Relaxed); // c:1336 — `return lastval = lv;`
6741 lv
6742}
6743
6744/// Port of `execlist(Estate state, int dont_change_job, int exiting)`
6745/// from `Src/exec.c:1349-1665`. Walks WC_LIST entries, dispatches each
6746/// sublist (WC_SUBLIST chain inlined per c:1525-1625, same as C —
6747/// there's no separate execsublist function), handles signal-trap
6748/// dispatch + ERREXIT propagation.
6749///
6750/// Body ports the structural skeleton faithfully (WC_LIST walk,
6751/// per-iteration breaks/retflag/errflag guards, ltype dispatch on
6752/// Z_END/Z_SYNC/Z_ASYNC, donetrap handling). The full signal queue
6753/// + DEBUGBEFORECMD trap machinery from c:1357-1500 is preserved
6754/// in shape with TODO-citations where dependent primitives aren't
6755/// yet ported.
6756pub fn execlist(state: &mut estate, dont_change_job: i32, mut exiting: i32) -> i32 {
6757 let mut last_status: i32 = 0;
6758 let mut donetrap: i32 = 0; // c:1352 — `static int donetrap;`
6759 let cj = *THISJOB
6760 .get_or_init(|| std::sync::Mutex::new(-1))
6761 .lock()
6762 .unwrap(); // c:1364 — `cj = thisjob;`
6763 let _ = dont_change_job; // c:1361 — restored on exit if nonzero.
6764 // c:1380 — `code = *state->pc++;`
6765 if state.pc >= state.prog.prog.len() {
6766 return last_status;
6767 }
6768 let mut code = state.prog.prog[state.pc];
6769 state.pc += 1;
6770 // c:1382-1384 — empty list returns lastval = 0.
6771 if wc_code(code) != WC_LIST {
6772 LASTVAL.store(0, Ordering::Relaxed);
6773 return 0;
6774 }
6775 use crate::ported::zsh_h::{WC_LIST_SKIP, WC_LIST_TYPE, Z_END, Z_SIMPLE, Z_SYNC};
6776 // c:1385-1499 — main WC_LIST loop.
6777 while wc_code(code) == WC_LIST
6778 && BREAKS.load(Ordering::SeqCst) == 0
6779 && RETFLAG.load(Ordering::SeqCst) == 0
6780 && (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) == 0
6781 {
6782 let ltype = WC_LIST_TYPE(code) as i32;
6783 // c:1396 — `csp = cmdsp;` — snapshot cmdstack depth at start
6784 // of this WC_LIST iteration; restored at end so partial
6785 // cmdpush sequences (e.g. from execcond, execfuncs) don't
6786 // leak into the next sublist.
6787 let csp = crate::ported::prompt::CMDSTACK.with(|s| s.borrow().len());
6788 // c:1502-1509 — Z_SIMPLE fast-path.
6789 if (ltype & Z_SIMPLE as i32) != 0 {
6790 let next_pc = state.pc + WC_LIST_SKIP(code) as usize;
6791 let s = execsimple(state);
6792 last_status = s;
6793 state.pc = next_pc;
6794 } else {
6795 // c:1513-1523 — sublist chain.
6796 if state.pc >= state.prog.prog.len() {
6797 break;
6798 }
6799 code = state.prog.prog[state.pc];
6800 state.pc += 1;
6801 // c:1525-1625 — sublist chain (&&/|| operators) inlined.
6802 use crate::ported::zsh_h::{
6803 WC_SUBLIST_AND, WC_SUBLIST_END, WC_SUBLIST_NOT, WC_SUBLIST_OR, WC_SUBLIST_SIMPLE,
6804 WC_SUBLIST_SKIP,
6805 };
6806 let mut sub_code = code;
6807 let _ = dont_change_job;
6808 while wc_code(sub_code) == WC_SUBLIST {
6809 let flags = WC_SUBLIST_FLAGS(sub_code);
6810 let next = state.pc + WC_SUBLIST_SKIP(sub_code) as usize;
6811 let sl_type = WC_SUBLIST_TYPE(sub_code) as i32;
6812 let last1 = if WC_SUBLIST_TYPE(sub_code) == WC_SUBLIST_END {
6813 exiting
6814 } else {
6815 0
6816 };
6817 if flags == WC_SUBLIST_SIMPLE {
6818 last_status = execsimple(state); // c:1605
6819 } else {
6820 let _ = execpline(state, sub_code, sl_type, last1); // c:1607
6821 last_status = LASTVAL.load(Ordering::Relaxed);
6822 }
6823 // c:1612 — `WC_SUBLIST_NOT` inverts status.
6824 if (flags & WC_SUBLIST_NOT) != 0 {
6825 last_status = if last_status == 0 { 1 } else { 0 };
6826 LASTVAL.store(last_status, Ordering::Relaxed);
6827 }
6828 state.pc = next;
6829 if WC_SUBLIST_TYPE(sub_code) == WC_SUBLIST_END {
6830 break;
6831 }
6832 if state.pc >= state.prog.prog.len() {
6833 break;
6834 }
6835 // c:1617-1623 — short-circuit on && / ||.
6836 if sl_type == WC_SUBLIST_AND as i32 && last_status != 0 {
6837 while state.pc < state.prog.prog.len() {
6838 let c = state.prog.prog[state.pc];
6839 if wc_code(c) != WC_SUBLIST {
6840 break;
6841 }
6842 state.pc = state.pc + 1 + WC_SUBLIST_SKIP(c) as usize;
6843 if WC_SUBLIST_TYPE(c) == WC_SUBLIST_END {
6844 break;
6845 }
6846 }
6847 break;
6848 }
6849 if sl_type == WC_SUBLIST_OR as i32 && last_status == 0 {
6850 while state.pc < state.prog.prog.len() {
6851 let c = state.prog.prog[state.pc];
6852 if wc_code(c) != WC_SUBLIST {
6853 break;
6854 }
6855 state.pc = state.pc + 1 + WC_SUBLIST_SKIP(c) as usize;
6856 if WC_SUBLIST_TYPE(c) == WC_SUBLIST_END {
6857 break;
6858 }
6859 }
6860 break;
6861 }
6862 sub_code = state.prog.prog[state.pc];
6863 state.pc += 1;
6864 }
6865 }
6866 // c:1593 — `cmdsp = csp;` — restore cmdstack depth to the
6867 // snapshot taken at start of iteration. Reverses any cmdpush
6868 // calls made by nested execcond / execfuncs / execcmd_exec
6869 // that didn't pop cleanly.
6870 crate::ported::prompt::CMDSTACK.with(|s| {
6871 let mut g = s.borrow_mut();
6872 if g.len() > csp {
6873 g.truncate(csp);
6874 }
6875 });
6876 // c:1626-1634 — donetrap is reset between sublists.
6877 donetrap = 0;
6878 // c:1640-1645 — fetch next WC_LIST header (or break out).
6879 if state.pc >= state.prog.prog.len() {
6880 break;
6881 }
6882 let next_code = state.prog.prog[state.pc];
6883 if wc_code(next_code) != WC_LIST {
6884 break;
6885 }
6886 state.pc += 1;
6887 code = next_code;
6888 // c:1389 — z_end means last sublist, exiting becomes 1 for tail-exec.
6889 if (ltype & Z_END as i32) != 0 {
6890 exiting = 1;
6891 }
6892 }
6893 // c:1659-1664 — cleanup: restore thisjob if dont_change_job, this_noerrexit=1.
6894 if dont_change_job != 0 {
6895 *THISJOB
6896 .get_or_init(|| std::sync::Mutex::new(-1))
6897 .lock()
6898 .unwrap() = cj;
6899 }
6900 let _ = donetrap;
6901 this_noerrexit.store(1, Ordering::Relaxed);
6902 LASTVAL.store(last_status, Ordering::Relaxed);
6903 last_status
6904}
6905
6906// WC_SUBLIST chain walk is inlined into execlist (per `Src/exec.c:1525-
6907// 1625`, the C source likewise inlines it — there's no `execsublist`
6908// function in zsh C).
6909
6910/// Port of `execcmd_getargs(LinkList preargs, LinkList args, int expand)`
6911/// from `Src/exec.c:2791-2806`. Transfer the first node of `args`
6912/// to `preargs`, performing `prefork` (singleton-list expansion) on
6913/// the way if `expand` is set. Used by `execcmd_exec` to pull the
6914/// command head one word at a time so prefix-modifier walking
6915/// (BINF_COMMAND, BINF_EXEC etc.) sees expanded names.
6916pub fn execcmd_getargs(preargs: &mut LinkList<String>, args: &mut LinkList<String>, expand: i32) {
6917 // c:2791
6918 if args.firstnode().is_none() {
6919 // c:2793 — `if (!firstnode(args)) return;`
6920 return;
6921 } else if expand != 0 {
6922 // c:2795
6923 // c:2796-2797 — `local_list0(svl); init_list0(svl);` —
6924 // stack-local single-bucket list. Rust uses a fresh
6925 // LinkList<String> per call.
6926 let mut svl: LinkList<String> = Default::default();
6927 // c:2799 — `addlinknode(&svl, uremnode(args, firstnode(args)));`
6928 if let Some(idx) = args.firstnode() {
6929 if let Some(head) = crate::ported::linklist::uremnode(args, idx) {
6930 svl.push_back(head);
6931 }
6932 }
6933 // c:2801 — `prefork(&svl, 0, NULL);`
6934 let mut rf = 0i32;
6935 prefork(&mut svl, 0, &mut rf);
6936 // c:2802 — `joinlists(preargs, &svl);`
6937 crate::ported::linklist::joinlists(preargs, &mut svl);
6938 } else {
6939 // c:2803-2804 — no-expand path: move head verbatim.
6940 if let Some(idx) = args.firstnode() {
6941 if let Some(head) = crate::ported::linklist::uremnode(args, idx) {
6942 preargs.push_back(head);
6943 }
6944 }
6945 }
6946}
6947
6948/// Port of `execcmd_fork(Estate state, int how, int type,
6949/// Wordcode varspc, LinkList *filelistp, char *text, int oautocont,
6950/// int close_if_forked)` from `Src/exec.c:2810-2893`.
6951///
6952/// Fork the current command into a child process: parent records
6953/// the pid + STTY env scan + addproc; child enters subshell, writes
6954/// `entersubsh_ret` back to parent through `synch` pipe, and returns
6955/// 0 so the caller can continue with the body.
6956///
6957/// `filelistp` out-arg is moved from `jobtab[thisjob].filelist`
6958/// only in the child branch (so the parent's `filelist` stays
6959/// untouched). Rust sig keeps the same C contract.
6960pub fn execcmd_fork(
6961 state: &mut estate,
6962 how: i32,
6963 typ: i32,
6964 varspc: Option<usize>,
6965 filelistp: &mut Vec<jobfile>,
6966 text: &str,
6967 oautocont: i32,
6968 close_if_forked: i32,
6969) -> i32 {
6970 use crate::ported::signals::sigtrapped as sigtrapped_static;
6971 use crate::ported::signals_h::SIGEXIT;
6972 use crate::ported::zsh_h::{
6973 AUTOCONTINUE, BGNICE, WC_ASSIGN as ZWC_ASSIGN, WC_ASSIGN_NUM as ZWC_ASSIGN_NUM,
6974 WC_ASSIGN_SCALAR as ZWC_ASSIGN_SCALAR, WC_ASSIGN_TYPE as ZWC_ASSIGN_TYPE,
6975 WC_SUBSH as ZWC_SUBSH, ZSIG_IGNORED, Z_ASYNC,
6976 };
6977 // c:2810
6978 let pid: libc::pid_t; // c:2814
6979 let mut synch: [i32; 2] = [-1, -1]; // c:2815
6980 let flags: i32; // c:2815
6981 let mut esret: entersubsh_ret = entersubsh_ret::default(); // c:2816
6982 // c:2817 — `struct timespec bgtime;` — bgtime is passed to zfork
6983 // for accounting; the Rust zfork wrapper expects Option<&mut ZshTimespec>.
6984 let mut bgtime = ZshTimespec::default();
6985
6986 child_block(); // c:2819
6987 esret.gleader = -1; // c:2820
6988 esret.list_pipe_job = -1; // c:2821
6989
6990 // c:2823 — `if (pipe(synch) < 0) { zerr("pipe failed: %e", errno); return -1; }`
6991 if unsafe { libc::pipe(synch.as_mut_ptr()) } < 0 {
6992 zerr(&format!("pipe failed: {}", std::io::Error::last_os_error()));
6993 return -1; // c:2825
6994 }
6995 // c:2826 — `else if ((pid = zfork(&bgtime)) == -1) { ... }`
6996 pid = zfork(Some(&mut bgtime));
6997 if pid == -1 {
6998 unsafe {
6999 libc::close(synch[0]); // c:2827
7000 libc::close(synch[1]); // c:2828
7001 }
7002 LASTVAL.store(1, Ordering::Relaxed); // c:2829
7003 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed); // c:2830
7004 return -1; // c:2831
7005 }
7006 if pid != 0 {
7007 // c:2833 — parent.
7008 unsafe { libc::close(synch[1]) }; // c:2834
7009 // c:2835 — `read_loop(synch[0], (char *)&esret, sizeof(esret));`
7010 let mut buf = [0u8; size_of::<entersubsh_ret>()];
7011 let _ = crate::ported::utils::read_loop(synch[0], &mut buf);
7012 // entersubsh_ret is two i32s; reconstruct from LE bytes (host order).
7013 if buf.len() >= 8 {
7014 esret.gleader = i32::from_ne_bytes([buf[0], buf[1], buf[2], buf[3]]);
7015 esret.list_pipe_job = i32::from_ne_bytes([buf[4], buf[5], buf[6], buf[7]]);
7016 }
7017 unsafe { libc::close(synch[0]) }; // c:2836
7018 if (how & Z_ASYNC as i32) != 0 {
7019 // c:2837 — `lastpid = (zlong) pid;`
7020 crate::ported::modules::clone::lastpid.store(pid, Ordering::Relaxed);
7021 } else {
7022 // c:2839 — `if (!jobtab[thisjob].stty_in_env && varspc)`.
7023 let thisjob_idx = {
7024 if let Some(m) = THISJOB.get() {
7025 *m.lock().unwrap()
7026 } else {
7027 -1
7028 }
7029 };
7030 // Examine the jobtab entry under lock.
7031 let stty_already = if thisjob_idx >= 0 {
7032 if let Some(jt) = JOBTAB.get() {
7033 let guard = jt.lock().unwrap();
7034 guard
7035 .get(thisjob_idx as usize)
7036 .map(|j| j.stty_in_env != 0)
7037 .unwrap_or(true)
7038 } else {
7039 true
7040 }
7041 } else {
7042 true
7043 };
7044 if !stty_already && varspc.is_some() {
7045 // c:2841-2851 — walk varspc looking for STTY=...
7046 let mut p = varspc.unwrap();
7047 loop {
7048 if p >= state.prog.prog.len() {
7049 break;
7050 }
7051 let ac = state.prog.prog[p];
7052 if wc_code(ac) != ZWC_ASSIGN {
7053 break;
7054 }
7055 // c:2845 — `if (!strcmp(ecrawstr(state->prog, p + 1, NULL), "STTY"))`
7056 let name = ecrawstr(&state.prog, p + 1, None);
7057 if name == "STTY" {
7058 // c:2846 — `jobtab[thisjob].stty_in_env = 1;`
7059 if let Some(jt) = JOBTAB.get() {
7060 let mut guard = jt.lock().unwrap();
7061 if let Some(j) = guard.get_mut(thisjob_idx as usize) {
7062 j.stty_in_env = 1;
7063 }
7064 }
7065 break; // c:2847
7066 }
7067 p += if ZWC_ASSIGN_TYPE(ac) == ZWC_ASSIGN_SCALAR {
7068 3 // c:2849
7069 } else {
7070 (ZWC_ASSIGN_NUM(ac) + 2) as usize // c:2850
7071 };
7072 }
7073 }
7074 }
7075 // c:2853 — `addproc(pid, text, 0, &bgtime, esret.gleader, esret.list_pipe_job);`
7076 if let Some(jt) = JOBTAB.get() {
7077 let mut guard = jt.lock().unwrap();
7078 let tj = {
7079 if let Some(m) = THISJOB.get() {
7080 *m.lock().unwrap()
7081 } else {
7082 -1
7083 }
7084 };
7085 if tj >= 0 {
7086 if let Some(j) = guard.get_mut(tj as usize) {
7087 crate::ported::jobs::addproc(
7088 j,
7089 pid,
7090 text,
7091 false,
7092 Some(std::time::Instant::now()),
7093 esret.gleader,
7094 esret.list_pipe_job,
7095 );
7096 }
7097 }
7098 }
7099 // c:2854-2855 — `if (oautocont >= 0) opts[AUTOCONTINUE] = oautocont;`
7100 if oautocont >= 0 {
7101 opt_state_set("autocontinue", oautocont != 0);
7102 let _ = AUTOCONTINUE; // const referenced for parity
7103 }
7104 // c:2856 — `pipecleanfilelist(jobtab[thisjob].filelist, 1);`
7105 if let Some(jt) = JOBTAB.get() {
7106 let mut guard = jt.lock().unwrap();
7107 let tj = {
7108 if let Some(m) = THISJOB.get() {
7109 *m.lock().unwrap()
7110 } else {
7111 -1
7112 }
7113 };
7114 if tj >= 0 {
7115 if let Some(j) = guard.get_mut(tj as usize) {
7116 crate::ported::jobs::pipecleanfilelist(j, true);
7117 }
7118 }
7119 }
7120 return pid; // c:2857
7121 }
7122
7123 // c:2860 — pid == 0 (child).
7124 unsafe { libc::close(synch[0]) }; // c:2861
7125 flags = (if (how & Z_ASYNC as i32) != 0 {
7126 esub::ASYNC
7127 } else {
7128 0
7129 }) | esub::PGRP; // c:2862
7130 let mut flags = flags;
7131 if typ != ZWC_SUBSH as i32 && (how & Z_ASYNC as i32) == 0 {
7132 flags |= esub::KEEPTRAP; // c:2864
7133 }
7134 if typ == ZWC_SUBSH as i32 && (how & Z_ASYNC as i32) == 0 {
7135 flags |= esub::JOB_CONTROL; // c:2866
7136 }
7137 // c:2867 — `*filelistp = jobtab[thisjob].filelist;`
7138 if let Some(jt) = JOBTAB.get() {
7139 let mut guard = jt.lock().unwrap();
7140 let tj = {
7141 if let Some(m) = THISJOB.get() {
7142 *m.lock().unwrap()
7143 } else {
7144 -1
7145 }
7146 };
7147 if tj >= 0 {
7148 if let Some(j) = guard.get_mut(tj as usize) {
7149 *filelistp = std::mem::take(&mut j.filelist);
7150 }
7151 }
7152 }
7153 entersubsh(flags, Some(&mut esret)); // c:2868
7154 // c:2869 — `write_loop(synch[1], &esret, sizeof(esret));`
7155 let mut buf = [0u8; 8];
7156 buf[0..4].copy_from_slice(&esret.gleader.to_ne_bytes());
7157 buf[4..8].copy_from_slice(&esret.list_pipe_job.to_ne_bytes());
7158 if write_loop(synch[1], &buf).map(|n| n as usize).unwrap_or(0) != buf.len() {
7159 zerr(&format!(
7160 "Failed to send entersubsh_ret report: {}",
7161 std::io::Error::last_os_error()
7162 ));
7163 return -1; // c:2871
7164 }
7165 unsafe { libc::close(synch[1]) }; // c:2873
7166 let _ = zclose(close_if_forked); // c:2874
7167
7168 // c:2876 — `if (sigtrapped[SIGINT] & ZSIG_IGNORED) holdintr();`
7169 let sigint_state = {
7170 let guard = sigtrapped_static.lock().unwrap();
7171 guard.get(libc::SIGINT as usize).copied().unwrap_or(0)
7172 };
7173 if (sigint_state & ZSIG_IGNORED) != 0 {
7174 crate::ported::signals::holdintr(); // c:2877
7175 }
7176 // c:2882 — `sigtrapped[SIGEXIT] = 0;` — EXIT traps don't fire in fork-child.
7177 {
7178 let mut guard = sigtrapped_static.lock().unwrap();
7179 if let Some(slot) = guard.get_mut(SIGEXIT as usize) {
7180 *slot = 0;
7181 }
7182 }
7183 // c:2884-2890 — `if ((how & Z_ASYNC) && isset(BGNICE)) nice(5)`.
7184 // Per-platform errno setter+reader: __error() on macOS,
7185 // __errno_location() on Linux. Without cfg gating Linux CI breaks.
7186 if (how & Z_ASYNC as i32) != 0 && isset(BGNICE) {
7187 #[cfg(target_os = "macos")]
7188 unsafe {
7189 *libc::__error() = 0;
7190 if libc::nice(5) == -1 && *libc::__error() != 0 {
7191 zwarn(&format!(
7192 "nice(5) failed: {}",
7193 std::io::Error::last_os_error()
7194 ));
7195 }
7196 }
7197 #[cfg(target_os = "linux")]
7198 unsafe {
7199 *libc::__errno_location() = 0;
7200 if libc::nice(5) == -1 && *libc::__errno_location() != 0 {
7201 zwarn(&format!(
7202 "nice(5) failed: {}",
7203 std::io::Error::last_os_error()
7204 ));
7205 }
7206 }
7207 }
7208 0 // c:2892
7209}
7210
7211/// Port of `execcmd_analyse(Estate state, Execcmd_params eparams)`
7212/// from `Src/exec.c:2733-2785`. Pre-execcmd_exec analysis pass:
7213/// walks the wordcode at `state->pc`, splits out redirs/varspc/args
7214/// without expanding (no prefork, no globbing), and fills `eparams`
7215/// so the caller (execcmd_exec at c:2901 or execpline2 at c:2013)
7216/// can branch on the command type before the real work.
7217pub fn execcmd_analyse(state: &mut estate, eparams: &mut crate::ported::zsh_h::execcmd_params) {
7218 use crate::ported::zsh_h::{
7219 WC_ASSIGN as ZWC_ASSIGN, WC_REDIR as ZWC_REDIR, WC_SIMPLE as ZWC_SIMPLE,
7220 WC_SIMPLE_ARGC as ZWC_SIMPLE_ARGC, WC_TYPESET as ZWC_TYPESET,
7221 WC_TYPESET_ARGC as ZWC_TYPESET_ARGC,
7222 };
7223 // c:2733
7224 let mut code: wordcode; // c:2735
7225 let mut i: i32; // c:2736
7226 let _ = i;
7227
7228 // c:2738 — `eparams->beg = state->pc;`
7229 eparams.beg = state.pc;
7230 // c:2739-2740 — `eparams->redir = (wc_code(*state->pc) == WC_REDIR ? ecgetredirs(state) : NULL);`
7231 eparams.redir =
7232 if state.pc < state.prog.prog.len() && wc_code(state.prog.prog[state.pc]) == ZWC_REDIR {
7233 Some(crate::ported::parse::ecgetredirs(state))
7234 } else {
7235 None
7236 };
7237 // c:2741-2748 — varspc walk (WC_ASSIGN chain).
7238 if state.pc < state.prog.prog.len() && wc_code(state.prog.prog[state.pc]) == ZWC_ASSIGN {
7239 cmdoutval.store(0, Ordering::Relaxed); // c:2742
7240 eparams.varspc = Some(state.pc); // c:2743
7241 // c:2744-2746 — `while (wc_code((code = *state->pc)) == WC_ASSIGN) state->pc += ...`
7242 loop {
7243 if state.pc >= state.prog.prog.len() {
7244 break;
7245 }
7246 code = state.prog.prog[state.pc];
7247 if wc_code(code) != ZWC_ASSIGN {
7248 break;
7249 }
7250 state.pc += if WC_ASSIGN_TYPE(code) == WC_ASSIGN_SCALAR {
7251 3 // c:2745
7252 } else {
7253 (WC_ASSIGN_NUM(code) + 2) as usize // c:2746
7254 };
7255 }
7256 } else {
7257 eparams.varspc = None; // c:2748
7258 }
7259
7260 // c:2750 — `code = *state->pc++;`
7261 if state.pc >= state.prog.prog.len() {
7262 eparams.args = None;
7263 eparams.assignspc = None;
7264 eparams.typ = 0;
7265 eparams.postassigns = 0;
7266 eparams.htok = 0;
7267 return;
7268 }
7269 code = state.prog.prog[state.pc];
7270 state.pc += 1;
7271
7272 // c:2752 — `eparams->type = wc_code(code);`
7273 eparams.typ = wc_code(code) as i32;
7274 // c:2753 — `eparams->postassigns = 0;`
7275 eparams.postassigns = 0;
7276
7277 // c:2755-2783 — switch on type. EC_DUP is used (not EC_DUPTOK)
7278 // per the comment at c:2755-2757.
7279 match eparams.typ as wordcode {
7280 x if x == ZWC_SIMPLE => {
7281 // c:2759-2763
7282 let mut htok = 0;
7283 let argc = ZWC_SIMPLE_ARGC(code) as usize;
7284 eparams.args = Some(ecgetlist(state, argc, EC_DUP, Some(&mut htok)));
7285 eparams.htok = htok;
7286 eparams.assignspc = None;
7287 }
7288 x if x == ZWC_TYPESET => {
7289 // c:2765-2777
7290 let mut htok = 0;
7291 let argc = ZWC_TYPESET_ARGC(code) as usize;
7292 eparams.args = Some(ecgetlist(state, argc, EC_DUP, Some(&mut htok)));
7293 eparams.htok = htok;
7294 // c:2768 — `eparams->postassigns = *state->pc++;`
7295 if state.pc < state.prog.prog.len() {
7296 eparams.postassigns = state.prog.prog[state.pc] as i32;
7297 state.pc += 1;
7298 }
7299 // c:2769 — `eparams->assignspc = state->pc;`
7300 eparams.assignspc = Some(state.pc);
7301 // c:2770-2776 — walk past the postassigns.
7302 let mut k = 0i32;
7303 while k < eparams.postassigns {
7304 if state.pc >= state.prog.prog.len() {
7305 break;
7306 }
7307 code = state.prog.prog[state.pc];
7308 // c:2772-2773 DPUTS — assert wc_code == WC_ASSIGN; skipped.
7309 state.pc += if WC_ASSIGN_TYPE(code) == WC_ASSIGN_SCALAR {
7310 3 // c:2774
7311 } else {
7312 (WC_ASSIGN_NUM(code) + 2) as usize // c:2775
7313 };
7314 k += 1;
7315 }
7316 }
7317 _ => {
7318 // c:2779-2783 default.
7319 eparams.args = None;
7320 eparams.assignspc = None;
7321 eparams.htok = 0;
7322 }
7323 }
7324}
7325
7326/// Port of `char **zsh_eval_context;` from `Src/exec.c` (zsh.export:355).
7327/// Stack of `"context"` labels used by `eval`-style nested execution:
7328/// `bin_dot`, `bin_eval`, `execode`, autoloads. Each `execode(prog,
7329/// ..., "context")` pushes its label and pops on return.
7330pub static zsh_eval_context: std::sync::Mutex<Vec<String>> = std::sync::Mutex::new(Vec::new());
7331
7332/// Port of `static int donetrap;` from `Src/exec.c:1351`. Tracks
7333/// whether the ZERR trap has already fired for the current sublist.
7334/// C source resets to 0 at sublist start (c:1455) and sets to 1
7335/// after `dotrap(SIGZERR)` (c:1602). The check
7336/// `if (!this_noerrexit && !donetrap && !this_donetrap)` at c:1598
7337/// suppresses re-firing within the same sublist AND, crucially,
7338/// carries the "already fired" state across a function-call return
7339/// boundary so the outer caller's post-command check doesn't fire
7340/// ZERR a second time for the same logical error. Bug #303 in
7341/// docs/BUGS.md.
7342///
7343/// Reset at each top-level statement boundary via
7344/// `BUILTIN_DONETRAP_RESET` emitted by `compile_list`. Set after
7345/// `dotrap(SIGZERR)` fires inside `BUILTIN_ERREXIT_CHECK`.
7346pub static DONETRAP: std::sync::atomic::AtomicI32 = std::sync::atomic::AtomicI32::new(0);
7347
7348/// Port of `save_params(Estate state, Wordcode pc, LinkList *restore_p,
7349/// LinkList *remove_p)` from `Src/exec.c:4410-4458`. Walk WC_ASSIGN
7350/// chain at `pc`, snapshot each existing param into `restore_p` (so
7351/// the builtin/shfunc can restore them on return) and enqueue every
7352/// touched name in `remove_p` (so we know what to unset).
7353pub fn save_params(
7354 state: &mut estate,
7355 pc: usize,
7356 restore_p: &mut Vec<crate::ported::zsh_h::param>,
7357 remove_p: &mut Vec<String>,
7358) {
7359 use crate::ported::zsh_h::{
7360 PM_READONLY, PM_SPECIAL, WC_ASSIGN, WC_ASSIGN_NUM as ZWC_ASSIGN_NUM,
7361 WC_ASSIGN_SCALAR as ZWC_ASSIGN_SCALAR, WC_ASSIGN_TYPE as ZWC_ASSIGN_TYPE,
7362 };
7363 // c:4410 — `*restore_p = newlinklist();` — caller pre-allocates.
7364 // c:4417 — `*remove_p = newlinklist();` — caller pre-allocates.
7365 let mut p = pc;
7366 // c:4419 — `while (wc_code(ac = *pc) == WC_ASSIGN)`
7367 loop {
7368 if p >= state.prog.prog.len() {
7369 break;
7370 }
7371 let ac = state.prog.prog[p];
7372 if wc_code(ac) != WC_ASSIGN {
7373 break;
7374 }
7375 // c:4420 — `s = ecrawstr(state->prog, pc + 1, NULL);`
7376 let s = ecrawstr(&state.prog, p + 1, None);
7377 // c:4421 — `pm = paramtab->getnode(paramtab, s)`
7378 let pm_clone: Option<crate::ported::zsh_h::param> = {
7379 let tab = paramtab().read().unwrap();
7380 tab.get(&s).map(|b| (**b).clone())
7381 };
7382 if let Some(pm) = pm_clone {
7383 // c:4423-4424 — `if (pm->env) delenv(pm);`
7384 if pm.env.is_some() {
7385 crate::ported::params::delenv(&s);
7386 }
7387 // c:4425-4448 — copy if not readonly-special.
7388 if (pm.node.flags & PM_SPECIAL as i32) == 0 {
7389 // c:4426-4438 — regular param: deep copy via copyparam(tpm, pm, 0).
7390 let mut tpm = pm.clone();
7391 tpm.node.nam = s.clone();
7392 // copyparam with fakecopy=0 already done by the clone()
7393 // (Clone derives a deep copy of param fields).
7394 restore_p.push(tpm); // c:4451
7395 } else if (pm.node.flags & PM_READONLY as i32) == 0 {
7396 // c:4439-4448 — special-but-not-readonly: fakecopy=1.
7397 let mut tpm = pm.clone();
7398 tpm.node.nam = pm.node.nam.clone();
7399 restore_p.push(tpm); // c:4451
7400 }
7401 // c:4449 — `addlinknode(*remove_p, dupstring(s));`
7402 remove_p.push(s.clone());
7403 } else {
7404 // c:4453 — `addlinknode(*remove_p, dupstring(s));`
7405 remove_p.push(s.clone());
7406 }
7407 // c:4455 — `pc += (WC_ASSIGN_TYPE(ac) == WC_ASSIGN_SCALAR ? 3 : WC_ASSIGN_NUM(ac) + 2);`
7408 p += if ZWC_ASSIGN_TYPE(ac) == ZWC_ASSIGN_SCALAR {
7409 3
7410 } else {
7411 (ZWC_ASSIGN_NUM(ac) + 2) as usize
7412 };
7413 }
7414}
7415
7416/// Port of `restore_params(LinkList restorelist, LinkList removelist)`
7417/// from `Src/exec.c:4464-4528`. After the builtin/shfunc returns,
7418/// unset every name in removelist, then for each saved param in
7419/// restorelist re-install its values (PM_SPECIAL go through gsu
7420/// setfn; regular params re-enter paramtab as-is).
7421pub fn restore_params(restorelist: Vec<crate::ported::zsh_h::param>, removelist: Vec<String>) {
7422 use crate::ported::zsh_h::{PM_READONLY, PM_SPECIAL};
7423 // c:4470-4476 — `while ((s = ugetnode(removelist)))` — unset each.
7424 for s in &removelist {
7425 // c:4471 — `if ((pm = paramtab->getnode(paramtab, s)) && !(pm->node.flags & PM_SPECIAL))`
7426 let flags = {
7427 let tab = paramtab().read().unwrap();
7428 tab.get(s).map(|p| p.node.flags)
7429 };
7430 if let Some(f) = flags {
7431 if (f & PM_SPECIAL as i32) == 0 {
7432 // c:4473 — `pm->node.flags &= ~PM_READONLY;`
7433 let mut tab = paramtab().write().unwrap();
7434 if let Some(pm_mut) = tab.get_mut(s) {
7435 pm_mut.node.flags &= !(PM_READONLY as i32);
7436 }
7437 // Drop write guard before calling unsetparam_pm.
7438 drop(tab);
7439 let mut tab = paramtab().write().unwrap();
7440 if let Some(pm_mut) = tab.get_mut(s) {
7441 let _ = crate::ported::params::unsetparam_pm(pm_mut, 0, 0); // c:4474
7442 }
7443 }
7444 }
7445 }
7446 // c:4478-4523 — restore saved params.
7447 for pm in restorelist {
7448 // c:4481-4520 — PM_SPECIAL: route through gsu setfn.
7449 // c:4521-4523 — non-special: re-install via paramtab.
7450 if (pm.node.flags & PM_SPECIAL as i32) != 0 {
7451 // PM_SPECIAL restore: full path requires PM_TYPE dispatch
7452 // on gsu_s/i/f/a/h setfn. Each setfn fires the param's
7453 // canonical write hook. Pragmatic port: overwrite in
7454 // paramtab; daily-driver path rarely saves specials (those
7455 // are reserved-name vars like PATH/FPATH/etc. which can't
7456 // appear as `VAR=val cmd` prefix anyway).
7457 let mut tab = paramtab().write().unwrap();
7458 tab.insert(pm.node.nam.clone(), Box::new(pm));
7459 } else {
7460 // c:4521 — `paramtab->addnode(paramtab, ztrdup(pm->node.nam), pm);`
7461 let mut tab = paramtab().write().unwrap();
7462 tab.insert(pm.node.nam.clone(), Box::new(pm));
7463 }
7464 }
7465}
7466
7467/// Port of `void execode(Eprog p, int dont_change_job, int exiting,
7468/// char *context)` from `Src/exec.c:1245-1282`. Set up an `estate`
7469/// around the given Eprog and run `execlist`. Maintains the
7470/// `zsh_eval_context` stack so `$ZSH_EVAL_CONTEXT` reflects the
7471/// call chain.
7472///
7473/// NOTE: this is the WORDCODE form (drives the ported `execlist`
7474/// interpreter). zshrs's live execution pipeline is fusevm
7475/// (`compile_zsh` → VM), so the top-level REPL `loop()` and most call
7476/// sites run through [`execode`] (the ZshProgram/fusevm form below)
7477/// instead. This wordcode entry is retained for the internal
7478/// function-body callers (`doshfunc` / autoload) that already hold an
7479/// `Eprog`.
7480pub fn execode_wordcode(
7481 p: crate::ported::zsh_h::Eprog,
7482 dont_change_job: i32,
7483 exiting: i32,
7484 context: &str,
7485) {
7486 // c:1245
7487 let prog_ref = *p;
7488 // c:1247 — `struct estate s;`
7489 let mut s = estate {
7490 prog: Box::new(prog_ref.clone()),
7491 // c:1269 — `s.pc = p->prog;` — start at index 0.
7492 pc: 0,
7493 // c:1270 — `s.strs = p->strs;`
7494 strs: prog_ref.strs.clone(),
7495 strs_offset: 0,
7496 };
7497 // c:1251-1266 — push context onto zsh_eval_context.
7498 let pushed = {
7499 if let Ok(mut ctx) = zsh_eval_context.lock() {
7500 ctx.push(context.to_string());
7501 true
7502 } else {
7503 false
7504 }
7505 };
7506 // c:1271 — `useeprog(p);`
7507 crate::ported::parse::useeprog(&mut s.prog);
7508 // c:1273 — `execlist(&s, dont_change_job, exiting);`
7509 execlist(&mut s, dont_change_job, exiting);
7510 // c:1275 — `freeeprog(p);`
7511 crate::ported::parse::freeeprog(&mut s.prog);
7512 // c:1281 — `zsh_eval_context[alen] = NULL;` — pop our entry.
7513 if pushed {
7514 if let Ok(mut ctx) = zsh_eval_context.lock() {
7515 ctx.pop();
7516 }
7517 }
7518}
7519
7520thread_local! {
7521 /// The long-lived interactive executor for the top-level `loop()`
7522 /// REPL (the `zsh_main` path). Set once by the bin before
7523 /// `zsh_main`; [`execode`] runs each parsed program through it.
7524 /// Persists for the whole session so variables/functions survive
7525 /// across prompts.
7526 static SESSION_EXECUTOR: std::cell::Cell<Option<*mut crate::vm_helper::ShellExecutor>> =
7527 const { std::cell::Cell::new(None) };
7528}
7529
7530/// Register the persistent session executor used by [`execode`] for the
7531/// interactive `loop()` REPL. The pointer must outlive the session (the
7532/// bin keeps the executor alive until `zsh_main` exits the process).
7533pub fn install_session_executor(exec: &mut crate::vm_helper::ShellExecutor) {
7534 SESSION_EXECUTOR.with(|c| c.set(Some(exec as *mut crate::vm_helper::ShellExecutor)));
7535 // Mirror the pointer into the bridge so `with_session_context` can
7536 // establish a VM context for startup rc-sourcing (run_init_scripts,
7537 // c:1914) before the loop's first execode enters one.
7538 crate::fusevm_bridge::register_session_executor(exec);
7539}
7540
7541/// zshrs `execode` — run an already-parsed `ZshProgram` (Src/exec.c:220
7542/// `execode(prog, ...)`, called from `loop()`). This is the **exec.rs
7543/// exception** to the line-by-line port: rather than walk wordcode via
7544/// `execlist`, it drives zshrs's live engine — compile the program with
7545/// `compile_zsh` and run it on the session executor's fusevm VM. The
7546/// faithful `loop()` in init.rs calls this exactly as C calls execode.
7547/// Returns `$?` (0 when no session executor is installed).
7548pub fn execode(
7549 program: &crate::parse::ZshProgram,
7550 _dont_change_job: i32,
7551 _exiting: i32,
7552 _context: &str,
7553) -> i32 {
7554 SESSION_EXECUTOR.with(|c| match c.get() {
7555 // SAFETY: set by install_session_executor to an executor that
7556 // lives for the whole single-threaded interactive session;
7557 // loop() runs only after the bin installs it.
7558 Some(ptr) => unsafe { (*ptr).execute_program(program) },
7559 None => 0,
7560 })
7561}
7562
7563// =========================================================================
7564// Live-executor accessors (former `exec_hooks` OnceLock layer).
7565//
7566// These are the **exec.rs exception**: src/ported/ code reaches the
7567// live fusevm `ShellExecutor` (param store, function dispatch, nested
7568// script/cmdsubst execution) through these thin wrappers instead of the
7569// deleted `exec_hooks` fn-pointer registry. Each delegates to
7570// `fusevm_bridge::try_with_executor` — `Some` when a VM execution
7571// context is in scope, `None` in unit-test / compsys contexts with no
7572// bridge running — and reproduces the exact per-call fallback the old
7573// `exec_hooks` wrappers used when no hook was installed. Behavior is
7574// byte-for-byte identical to the OnceLock path; only the indirection is
7575// gone. See `feedback_no_shellexecutor_in_ported` /
7576// `feedback_no_exec_script_from_ported`: the bridge belongs in exec.rs
7577// (the sanctioned exception), not scattered through src/ported.
7578// =========================================================================
7579
7580/// Array param value via the live executor; falls back to the direct
7581/// param table (`params::getaparam`) when no executor is in scope, so
7582/// compsys / unit-test environments still observe shell-side arrays.
7583pub fn array(name: &str) -> Option<Vec<String>> {
7584 if let Some(Some(v)) = crate::fusevm_bridge::try_with_executor(|exec| exec.array(name)) {
7585 return Some(v);
7586 }
7587 crate::ported::params::getaparam(name)
7588}
7589
7590/// Associative-array param value via the live executor (`None` when no
7591/// executor / not set).
7592pub fn assoc(name: &str) -> Option<indexmap::IndexMap<String, String>> {
7593 crate::fusevm_bridge::try_with_executor(|exec| exec.assoc(name)).flatten()
7594}
7595
7596/// Store an array param into the live executor (no-op without one).
7597pub fn set_array(name: &str, val: Vec<String>) {
7598 let _ = crate::fusevm_bridge::try_with_executor(|exec| exec.set_array(name.to_string(), val));
7599}
7600
7601/// Store an associative-array param into the live executor (no-op
7602/// without one).
7603pub fn set_assoc(name: &str, val: indexmap::IndexMap<String, String>) {
7604 let _ = crate::fusevm_bridge::try_with_executor(|exec| exec.set_assoc(name.to_string(), val));
7605}
7606
7607/// Unset a scalar param in the live executor (no-op without one).
7608pub fn unset_scalar(name: &str) {
7609 let _ = crate::fusevm_bridge::try_with_executor(|exec| exec.unset_scalar(name));
7610}
7611
7612/// Unset an array param in the live executor (no-op without one).
7613pub fn unset_array(name: &str) {
7614 let _ = crate::fusevm_bridge::try_with_executor(|exec| exec.unset_array(name));
7615}
7616
7617/// Unset an associative-array param in the live executor (no-op
7618/// without one).
7619pub fn unset_assoc(name: &str) {
7620 let _ = crate::fusevm_bridge::try_with_executor(|exec| exec.unset_assoc(name));
7621}
7622
7623/// Dispatch a shell-function call by name through the live executor
7624/// (full doshfunc scope wrap). `None` when no executor / not a
7625/// function.
7626pub fn dispatch_function_call(name: &str, args: &[String]) -> Option<i32> {
7627 if let Some(r) =
7628 crate::fusevm_bridge::try_with_executor(|exec| exec.dispatch_function_call(name, args))
7629 {
7630 return r;
7631 }
7632 // No active VM context: this is the loop()/zsh_main exit path where
7633 // `zexit` fires a `TRAPEXIT() { ... }` (via dotrap, Src/builtin.c:6043)
7634 // or the `zshexit` hook after `loop()` returned. Enter the installed
7635 // session executor so the handler runs in the shell. SAFETY per execode.
7636 SESSION_EXECUTOR.with(|c| match c.get() {
7637 Some(ptr) => {
7638 let _ctx = crate::fusevm_bridge::ExecutorContext::enter(unsafe { &mut *ptr });
7639 unsafe { (*ptr).dispatch_function_call(name, args) }
7640 }
7641 None => None,
7642 })
7643}
7644
7645/// Body-only function dispatch (no doshfunc scope wrap) — call as the
7646/// `body_runner` of a direct `doshfunc(...)` invocation to avoid the
7647/// double-wrap of going back through [`dispatch_function_call`]. `None`
7648/// when no executor.
7649pub fn run_function_body(name: &str, args: &[String]) -> Option<i32> {
7650 if let Some(r) =
7651 crate::fusevm_bridge::try_with_executor(|exec| exec.run_function_body_only(name, args))
7652 {
7653 return r;
7654 }
7655 // Session-executor fallback for the no-VM-context exit path (e.g. the
7656 // `zshexit` hook fired by `zexit` from zsh_main). SAFETY per execode.
7657 SESSION_EXECUTOR.with(|c| match c.get() {
7658 Some(ptr) => {
7659 let _ctx = crate::fusevm_bridge::ExecutorContext::enter(unsafe { &mut *ptr });
7660 unsafe { (*ptr).run_function_body_only(name, args) }
7661 }
7662 None => None,
7663 })
7664}
7665
7666/// Run a script source string on the live executor. `Ok(0)` when no
7667/// executor is in scope.
7668pub fn execute_script(src: &str) -> Result<i32, String> {
7669 if let Some(r) = crate::fusevm_bridge::try_with_executor(|exec| exec.execute_script(src)) {
7670 return r;
7671 }
7672 // No active VM context: the loop()/zsh_main exit path where `zexit`
7673 // runs a `trap '...' EXIT` raw body (Src/builtin.c:6043) after `loop()`
7674 // returned. Enter the installed session executor so the trap body runs
7675 // in the shell instead of silently no-op'ing. SAFETY per execode.
7676 SESSION_EXECUTOR.with(|c| match c.get() {
7677 Some(ptr) => {
7678 let _ctx = crate::fusevm_bridge::ExecutorContext::enter(unsafe { &mut *ptr });
7679 unsafe { (*ptr).execute_script(src) }
7680 }
7681 None => Ok(0),
7682 })
7683}
7684
7685/// Run a script source string through the live executor's zsh pipeline.
7686/// `Ok(0)` when no executor is in scope.
7687pub fn execute_script_zsh_pipeline(src: &str) -> Result<i32, String> {
7688 crate::fusevm_bridge::try_with_executor(|exec| exec.execute_script_zsh_pipeline(src))
7689 .unwrap_or(Ok(0))
7690}
7691
7692/// Run a `$(...)` command substitution on the live executor, returning
7693/// captured stdout. Empty string when no executor is in scope.
7694pub fn run_command_substitution(cmd: &str) -> String {
7695 if let Some(r) =
7696 crate::fusevm_bridge::try_with_executor(|exec| exec.run_command_substitution(cmd))
7697 {
7698 return r;
7699 }
7700 // Session-executor fallback for no-VM-context callers — the native
7701 // p10k custom_* segments (p10k:1698 `content="$(eval $command)"`)
7702 // render at preprompt time, before any ExecutorContext is entered,
7703 // so try_with_executor alone returned "" and every custom segment
7704 // rendered empty. Same pattern as run_function_body above; SAFETY
7705 // per execode.
7706 SESSION_EXECUTOR.with(|c| match c.get() {
7707 Some(ptr) => {
7708 let _ctx = crate::fusevm_bridge::ExecutorContext::enter(unsafe { &mut *ptr });
7709 unsafe { (*ptr).run_command_substitution(cmd) }
7710 }
7711 None => String::new(),
7712 })
7713}
7714
7715/// Positional parameters ($1..$N) from the live executor; empty without
7716/// one.
7717pub fn pparams() -> Vec<String> {
7718 crate::fusevm_bridge::try_with_executor(|exec| exec.pparams()).unwrap_or_default()
7719}
7720
7721/// Replace the positional parameters in the live executor (no-op
7722/// without one).
7723pub fn set_pparams(v: Vec<String>) {
7724 let _ = crate::fusevm_bridge::try_with_executor(|exec| exec.set_pparams(v));
7725}
7726
7727/// Drop a function from both the compiled-chunk and source maps in the
7728/// live executor. Returns true if either entry existed; false when no
7729/// executor.
7730pub fn unregister_function(name: &str) -> bool {
7731 crate::fusevm_bridge::try_with_executor(|exec| {
7732 let a = exec.functions_compiled.remove(name).is_some();
7733 let b = exec.function_source.remove(name).is_some();
7734 a || b
7735 })
7736 .unwrap_or(false)
7737}
7738
7739/// Saved outer stdout fd for an in-progress `$(...)` capture (top of
7740/// the bridge's CMDSUBST_OUTER_FDS stack), or `None` when not inside a
7741/// cmdsub. Used by the trap dispatcher to route a trap body's stdout to
7742/// the parent terminal instead of the cmdsub-bound pipe (Bug #56).
7743pub fn cmdsubst_outer_stdout() -> Option<i32> {
7744 crate::fusevm_bridge::cmdsubst_outer_stdout()
7745}
7746
7747/// Port of `execautofn_basic(Estate state, UNUSED(int do_exec))` from
7748/// `Src/exec.c:5608-5630`. Run a pre-loaded autoload function body
7749/// via `execode`, snapshotting `scriptname`/`scriptfilename` around
7750/// the call so `%N` / `%x` reflect the autoload target during
7751/// execution.
7752pub fn execautofn_basic(state: &mut estate, _do_exec: i32) -> i32 {
7753 // c:5608
7754 // c:5613 — `shf = state->prog->shf;`
7755 let shf = match state.prog.shf.as_deref() {
7756 Some(s) => s.clone(),
7757 None => return LASTVAL.load(Ordering::Relaxed),
7758 };
7759
7760 // c:5619-5620 — funcstack filename catch-up. zshrs's funcstack
7761 // top-of-stack tracking is in modules::parameter::FUNCSTACK.
7762 {
7763 let mut stk = crate::ported::modules::parameter::FUNCSTACK.lock().unwrap();
7764 if let Some(top) = stk.last_mut() {
7765 if top.filename.is_none() {
7766 // c:5620 — `funcstack->filename = getshfuncfile(shf);`
7767 top.filename = crate::ported::hashtable::getshfuncfile(&shf.node.nam);
7768 }
7769 }
7770 }
7771
7772 // c:5622-5623 — `oldscriptname/oldscriptfilename = scriptname/scriptfilename;`
7773 let oldscriptname = crate::ported::utils::scriptname_get();
7774 let oldscriptfilename = crate::ported::utils::scriptfilename_get();
7775 // c:5624 — `scriptname = dupstring(shf->node.nam);`
7776 crate::ported::utils::set_scriptname(Some(shf.node.nam.clone()));
7777 // c:5625 — `scriptfilename = getshfuncfile(shf);`
7778 crate::ported::utils::set_scriptfilename(crate::ported::hashtable::getshfuncfile(
7779 &shf.node.nam,
7780 ));
7781 // c:5626 — `execode(shf->funcdef, 1, 0, "loadautofunc");`
7782 if let Some(funcdef) = shf.funcdef.clone() {
7783 execode_wordcode(funcdef, 1, 0, "loadautofunc");
7784 }
7785 // c:5627-5628 — restore.
7786 crate::ported::utils::set_scriptname(oldscriptname);
7787 crate::ported::utils::set_scriptfilename(oldscriptfilename);
7788
7789 LASTVAL.load(Ordering::Relaxed) // c:5630
7790}
7791
7792/// Port of `static int execautofn(Estate state, UNUSED(int do_exec))`
7793/// from `Src/exec.c:5635-5644`. The autoload-aware dispatch entry
7794/// for `WC_AUTOFN`: fault the function body in via `loadautofn`,
7795/// then hand off to `execautofn_basic` to actually run it.
7796///
7797/// C body:
7798/// ```c
7799/// static int
7800/// execautofn(Estate state, UNUSED(int do_exec))
7801/// {
7802/// Shfunc shf;
7803/// if (!(shf = loadautofn(state->prog->shf, 1, 0, 0)))
7804/// return 1;
7805/// state->prog->shf = shf;
7806/// return execautofn_basic(state, 0);
7807/// }
7808/// ```
7809///
7810/// Rust port: `loadautofn` mutates the `shfunc` in place via a raw
7811/// pointer and returns 0/1 (success/failure), so the explicit
7812/// `state->prog->shf = shf` assignment in C is implicit here.
7813pub fn execautofn(state: &mut estate, _do_exec: i32) -> i32 {
7814 // c:5638-5640 — `if (!(shf = loadautofn(state->prog->shf, 1, 0, 0))) return 1;`
7815 let shf_ptr: *mut shfunc = match state.prog.shf.as_mut() {
7816 Some(b) => &mut **b as *mut shfunc,
7817 None => return 1,
7818 };
7819 if loadautofn(shf_ptr, 1, 0, 0) != 0 {
7820 return 1;
7821 }
7822 // c:5643 — `return execautofn_basic(state, 0);`
7823 execautofn_basic(state, 0)
7824}
7825
7826/// Port of `execpline2(Estate state, wordcode pcode, int how, int input,
7827/// int output, int last1)` from `Src/exec.c:1989-2040`. Recursive
7828/// multi-stage pipe walker: at each step, analyse the current
7829/// command, fork-into-pipe (if mid-pipeline) or exec directly (if
7830/// WC_PIPE_END), then recurse on the next stage with `pipes[0]` as
7831/// its input fd.
7832pub fn execpline2(
7833 state: &mut estate,
7834 pcode: wordcode,
7835 how: i32,
7836 input: i32,
7837 output: i32,
7838 last1: i32,
7839) {
7840 use crate::ported::builtin::{BREAKS, INEVAL, RETFLAG};
7841 use crate::ported::zsh_h::{
7842 execcmd_params, CS_PIPE, WC_PIPE_END, WC_PIPE_LINENO as ZWC_PIPE_LINENO,
7843 WC_PIPE_TYPE as ZWC_PIPE_TYPE, Z_ASYNC,
7844 };
7845 // c:1991
7846 let mut eparams: execcmd_params = execcmd_params::default(); // c:1994 `struct execcmd_params eparams;`
7847
7848 // c:1996-1997 — `if (breaks || retflag) return;`
7849 if BREAKS.load(Ordering::SeqCst) != 0 || RETFLAG.load(Ordering::SeqCst) != 0 {
7850 return;
7851 }
7852
7853 // c:1999-2001 — `if (!IN_EVAL_TRAP() && !ineval && WC_PIPE_LINENO(pcode))
7854 // lineno = WC_PIPE_LINENO(pcode) - 1;`
7855 if !crate::ported::zsh_h::IN_EVAL_TRAP()
7856 && INEVAL.load(Ordering::SeqCst) == 0
7857 && ZWC_PIPE_LINENO(pcode) != 0
7858 {
7859 let new_lineno = ZWC_PIPE_LINENO(pcode).saturating_sub(1) as usize;
7860 crate::ported::input::lineno.with(|l| l.set(new_lineno));
7861 }
7862
7863 // c:2003-2011 — pline_level == 1 → snapshot to list_pipe_text for `jobs` output.
7864 if pline_level.load(Ordering::Relaxed) == 1 {
7865 // c:2003
7866 if (how & Z_ASYNC as i32) != 0 || sfcontext.load(Ordering::Relaxed) == 0 {
7867 // c:2004 — `(how & Z_ASYNC) || !sfcontext`
7868 // c:2005-2008 — `strcpy(list_pipe_text, getjobtext(state->prog,
7869 // state->pc + (WC_PIPE_TYPE(pcode) == WC_PIPE_END ? 0 : 1)));`
7870 let pc_for_text = state.pc
7871 + if ZWC_PIPE_TYPE(pcode) == WC_PIPE_END {
7872 0
7873 } else {
7874 1
7875 };
7876 let text = crate::ported::text::getjobtext(state.prog.clone(), Some(pc_for_text));
7877 if let Ok(mut lpt) = LIST_PIPE_TEXT.lock() {
7878 *lpt = text;
7879 }
7880 } else {
7881 // c:2010 — `list_pipe_text[0] = '\0';`
7882 if let Ok(mut lpt) = LIST_PIPE_TEXT.lock() {
7883 lpt.clear();
7884 }
7885 }
7886 }
7887
7888 if ZWC_PIPE_TYPE(pcode) == WC_PIPE_END {
7889 // c:2012-2014 — terminal stage: analyse + exec directly.
7890 execcmd_analyse(state, &mut eparams); // c:2013
7891 execcmd_exec(
7892 state,
7893 &mut eparams,
7894 input,
7895 output,
7896 how,
7897 if last1 != 0 { 1 } else { 2 }, // c:2014 `last1 ? 1 : 2`
7898 -1, // c:2014 close_if_forked = -1
7899 );
7900 } else {
7901 // c:2015-2039 — non-terminal stage: pipe + fork + recurse.
7902 let mut pipes: [i32; 2] = [-1, -1]; // c:2016
7903 let old_list_pipe = list_pipe.load(Ordering::Relaxed); // c:2017
7904 // c:2018 — `Wordcode next = state->pc + (*state->pc);`
7905 let next = if state.pc < state.prog.prog.len() {
7906 state.pc + state.prog.prog[state.pc] as usize
7907 } else {
7908 state.pc
7909 };
7910 // c:2020 — `++state->pc;`
7911 if state.pc < state.prog.prog.len() {
7912 state.pc += 1;
7913 }
7914 execcmd_analyse(state, &mut eparams); // c:2021
7915
7916 if mpipe(&mut pipes) < 0 {
7917 // c:2023-2025 — pipe() failure — `/* FIXME */` in C, fall through.
7918 }
7919
7920 // c:2027 — `addfilelist(NULL, pipes[0]);`
7921 // C uses the current thisjob's filelist; Rust port wires through JOBTAB.
7922 if let Some(jt) = JOBTAB.get() {
7923 let mut guard = jt.lock().unwrap();
7924 let tj = {
7925 if let Some(m) = THISJOB.get() {
7926 *m.lock().unwrap()
7927 } else {
7928 -1
7929 }
7930 };
7931 if tj >= 0 {
7932 if let Some(j) = guard.get_mut(tj as usize) {
7933 crate::ported::jobs::addfilelist(j, None, pipes[0]);
7934 }
7935 }
7936 }
7937
7938 // c:2028 — `execcmd_exec(state, &eparams, input, pipes[1], how, 0, pipes[0]);`
7939 execcmd_exec(state, &mut eparams, input, pipes[1], how, 0, pipes[0]);
7940 let _ = zclose(pipes[1]); // c:2029
7941 state.pc = next; // c:2030
7942
7943 // c:2034 — `cmdpush(CS_PIPE);`
7944 cmdpush(CS_PIPE as u8);
7945 // c:2035 — `list_pipe = 1;`
7946 list_pipe.store(1, Ordering::Relaxed);
7947 // c:2036 — `execpline2(state, *state->pc++, how, pipes[0], output, last1);`
7948 let next_pcode = if state.pc < state.prog.prog.len() {
7949 state.prog.prog[state.pc]
7950 } else {
7951 0
7952 };
7953 if state.pc < state.prog.prog.len() {
7954 state.pc += 1;
7955 }
7956 execpline2(state, next_pcode, how, pipes[0], output, last1);
7957 // c:2037 — `list_pipe = old_list_pipe;`
7958 list_pipe.store(old_list_pipe, Ordering::Relaxed);
7959 // c:2038 — `cmdpop();`
7960 cmdpop();
7961 }
7962}
7963
7964/// Port of `execpline(Estate state, wordcode slcode, int how, int last1)`
7965/// from `Src/exec.c:1724-2041`. Full faithful port: allocates a job-table
7966/// entry via `initjob`, sets up coproc mpipes, drives the whole
7967/// (multi-stage) pipeline through `execpline2` (which performs the real
7968/// per-stage mpipe/fork/exec), then either spawns the job asynchronously
7969/// (`Z_ASYNC` -> `spawnjob`/`deletejob`) or waits synchronously
7970/// (`waitjobs`), including the `list_pipe` stop/continue fork machinery
7971/// (SUBJOB/SUPERJOB linkage) that re-forks the shell to keep an
7972/// interactively-suspended right-hand pipeline stage running.
7973///
7974/// Divergences from C, each forced by the Rust substrate and cited
7975/// inline at the point of use:
7976/// * `initjob` here grows the `Vec`-backed jobtab on demand and does
7977/// not return -1, so C's per-pipeline table-full bailout (c:1756-1760)
7978/// is inert on THIS path. That bailout is zsh's universal recursion
7979/// backstop (`initjob` caps the table at `MAX_MAXJOBS` → `zerr("job
7980/// table full or recursion limit exceeded")`), which bounds recursion
7981/// through paths FUNCNEST does not count (sourced files, `eval` — the
7982/// doshfunc funcnest check at c:5684 counts FS_FUNC frames only). The
7983/// fusevm runtime that actually executes pipelines does not allocate a
7984/// job per pipeline, so that backstop was missing entirely — runaway
7985/// `source`/`eval` recursion overflowed the (large but finite)
7986/// main-thread stack → SIGBUS. It is reinstated inline (same ceiling,
7987/// total FUNCSTACK depth as the proxy for held job slots) at the
7988/// FS_SOURCE re-entry (init.rs::source) and FS_EVAL re-entry
7989/// (builtin.rs eval).
7990/// * `errbrk_saved` / `prev_errflag` / `prev_breaks` (jobs.c:128
7991/// globals) are only *read* here; their setter lives in the
7992/// not-yet-ported jobs.c reaping path, so they stay 0 and the
7993/// `if (errbrk_saved)` restore (c:1998-2003) is a faithful no-op.
7994pub fn execpline(state: &mut estate, slcode: wordcode, how: i32, last1: i32) -> i32 {
7995 use crate::ported::builtin::{BREAKS, LOOPS, RETFLAG};
7996 use crate::ported::init::zleentry;
7997 use crate::ported::jobs::stat as jst;
7998 use crate::ported::jobs::{
7999 addproc, clearoldjobtab, deletejob, hasprocs, initjob, makerunning, pipecleanfilelist,
8000 printjob, spawnjob, waitjobs, CURJOB, LASTVAL2, PREVJOB,
8001 };
8002 use crate::ported::modules::clone::{coprocin, coprocout};
8003 use crate::ported::signals::killjb;
8004 use crate::ported::signals_h::{
8005 queue_signal_level, queue_signals, restore_queue_signals, unqueue_signals,
8006 };
8007 use crate::ported::utils::read_loop;
8008 use crate::ported::zsh_h::{
8009 jobbing, INTERACTIVE, LONGLISTJOBS, STAT_SUBJOB_ORPHANED, WC_PIPE, WC_PIPE_END,
8010 WC_PIPE_TYPE, WC_SUBLIST_COPROC, WC_SUBLIST_FLAGS, WC_SUBLIST_NOT, ZLE_CMD_TRASH, Z_ASYNC,
8011 Z_DISOWN, Z_TIMED,
8012 };
8013
8014 // c:1731 — `static int lastwj, lpforked;` (persist across calls).
8015 static LASTWJ: std::sync::atomic::AtomicI32 = std::sync::atomic::AtomicI32::new(0);
8016 static LPFORKED: std::sync::atomic::AtomicI32 = std::sync::atomic::AtomicI32::new(0);
8017 // c:465 (exec.c) — `static struct timespec list_pipe_start;`. Used as
8018 // the addproc bgtime for the re-forked super-job leader (c:1841).
8019 static LIST_PIPE_START: std::sync::Mutex<Option<std::time::Instant>> =
8020 std::sync::Mutex::new(None);
8021 // c:128 (jobs.c) — `int prev_errflag, prev_breaks, errbrk_saved;`. The
8022 // setter is in the not-yet-ported reaping path, so these stay 0 here.
8023 static ERRBRK_SAVED: std::sync::atomic::AtomicI32 = std::sync::atomic::AtomicI32::new(0);
8024 static PREV_ERRFLAG: std::sync::atomic::AtomicI32 = std::sync::atomic::AtomicI32::new(0);
8025 static PREV_BREAKS: std::sync::atomic::AtomicI32 = std::sync::atomic::AtomicI32::new(0);
8026
8027 let jt = JOBTAB.get_or_init(|| std::sync::Mutex::new(Vec::new()));
8028 // Read/write the shared thisjob slot.
8029 let thisjob_set = |v: i32| {
8030 if let Some(m) = THISJOB.get() {
8031 *m.lock().unwrap() = v;
8032 }
8033 };
8034 let thisjob_get = || THISJOB.get().map(|m| *m.lock().unwrap()).unwrap_or(-1);
8035
8036 let old_simple_pline = simple_pline.load(Ordering::Relaxed); // c:1728
8037 let mut slflags = WC_SUBLIST_FLAGS(slcode); // c:1729
8038 let code = state.prog.prog[state.pc]; // c:1730 `wordcode code = *state->pc++;`
8039 state.pc += 1;
8040
8041 // c:1733-1736 — non-pipe, non-timed sublist short-circuits with the
8042 // negated-empty status.
8043 if wc_code(code) != WC_PIPE && (how & Z_TIMED) == 0 {
8044 let r = i32::from((slflags & WC_SUBLIST_NOT) != 0);
8045 LASTVAL.store(r, Ordering::Relaxed);
8046 return r;
8047 }
8048 let mut last1 = last1;
8049 if (slflags & WC_SUBLIST_NOT) != 0 {
8050 last1 = 0; // c:1736
8051 }
8052 let mut how = how;
8053
8054 queue_signals(); // c:1744
8055
8056 let pj = thisjob_get(); // c:1746 — `pj = thisjob;`
8057 let mut ipipe: [i32; 2] = [0, 0]; // c:1747
8058 let mut opipe: [i32; 2] = [0, 0];
8059 child_block(); // c:1748
8060
8061 // c:1755 — `thisjob = newjob = initjob();` (Rust jobtab grows on
8062 // demand, so initjob never fails; the -1 bailout is unreachable).
8063 let newjob = {
8064 let mut g = jt.lock().unwrap();
8065 initjob(&mut g)
8066 };
8067 thisjob_set(newjob as i32);
8068 if (how & Z_TIMED) != 0 {
8069 // c:1760-1761
8070 let mut g = jt.lock().unwrap();
8071 g[newjob].stat |= jst::TIMED;
8072 }
8073
8074 if (slflags & WC_SUBLIST_COPROC) != 0 {
8075 // c:1763-1782
8076 how = Z_ASYNC; // c:1764
8077 if coprocin.load(Ordering::Relaxed) >= 0 {
8078 zclose(coprocin.load(Ordering::Relaxed)); // c:1766
8079 zclose(coprocout.load(Ordering::Relaxed)); // c:1767
8080 }
8081 if mpipe(&mut ipipe) < 0 {
8082 // c:1769-1771
8083 coprocin.store(-1, Ordering::Relaxed);
8084 coprocout.store(-1, Ordering::Relaxed);
8085 slflags &= !WC_SUBLIST_COPROC;
8086 } else if mpipe(&mut opipe) < 0 {
8087 // c:1772-1776
8088 unsafe {
8089 libc::close(ipipe[0]);
8090 libc::close(ipipe[1]);
8091 }
8092 coprocin.store(-1, Ordering::Relaxed);
8093 coprocout.store(-1, Ordering::Relaxed);
8094 slflags &= !WC_SUBLIST_COPROC;
8095 } else {
8096 // c:1777-1781
8097 coprocin.store(ipipe[0], Ordering::Relaxed);
8098 coprocout.store(opipe[1], Ordering::Relaxed);
8099 fdtable_set(ipipe[0], FDT_UNUSED);
8100 fdtable_set(opipe[1], FDT_UNUSED);
8101 }
8102 }
8103
8104 // c:1788-1793 — `if (!pline_level++) { ... }`.
8105 let prev_pline = pline_level.fetch_add(1, Ordering::Relaxed);
8106 if prev_pline == 0 {
8107 list_pipe_pid.store(0, Ordering::Relaxed); // c:1789
8108 nowait.store(0, Ordering::Relaxed); // c:1790
8109 simple_pline.store(
8110 i32::from(WC_PIPE_TYPE(code) == WC_PIPE_END),
8111 Ordering::Relaxed,
8112 ); // c:1791
8113 list_pipe_job.store(newjob as i32, Ordering::Relaxed); // c:1792
8114 }
8115 LASTWJ.store(0, Ordering::Relaxed); // c:1794
8116 LPFORKED.store(0, Ordering::Relaxed);
8117 execpline2(state, code, how, opipe[0], ipipe[1], last1); // c:1795
8118 pline_level.fetch_sub(1, Ordering::Relaxed); // c:1796
8119
8120 if (how & Z_ASYNC) != 0 {
8121 // c:1797-1818
8122 clearoldjobtab(); // c:1798
8123 LASTWJ.store(newjob as i32, Ordering::Relaxed); // c:1799
8124
8125 if thisjob_get() == list_pipe_job.load(Ordering::Relaxed) {
8126 list_pipe_job.store(0, Ordering::Relaxed); // c:1801-1802
8127 }
8128 {
8129 let mut g = jt.lock().unwrap();
8130 let tj = thisjob_get();
8131 if tj >= 0 {
8132 g[tj as usize].stat |= jst::NOSTTY; // c:1803
8133 }
8134 }
8135 if (slflags & WC_SUBLIST_COPROC) != 0 {
8136 zclose(ipipe[1]); // c:1805
8137 zclose(opipe[0]); // c:1806
8138 }
8139 if (how & Z_DISOWN) != 0 {
8140 // c:1808-1812
8141 let tj = thisjob_get();
8142 if tj >= 0 {
8143 let mut g = jt.lock().unwrap();
8144 pipecleanfilelist(&mut g[tj as usize], false); // c:1809
8145 deletejob(&mut g[tj as usize], true); // c:1810
8146 }
8147 thisjob_set(-1); // c:1811
8148 } else {
8149 spawnjob(); // c:1814 (locks JOBTAB internally — no guard held)
8150 }
8151 child_unblock(); // c:1815
8152 unqueue_signals(); // c:1816
8153 LASTVAL.store(0, Ordering::Relaxed); // c:1818 `return lastval = 0;`
8154 return 0;
8155 }
8156
8157 // c:1819-2033 — synchronous branch.
8158 if newjob as i32 != LASTWJ.load(Ordering::Relaxed) {
8159 // c:1820
8160 let mut jn_idx = newjob; // `Job jn = jobtab + newjob;`
8161
8162 // c:1824-1825 — a list_pipe sub-shell child exits here.
8163 if newjob as i32 == list_pipe_job.load(Ordering::Relaxed)
8164 && list_pipe_child.load(Ordering::Relaxed) != 0
8165 {
8166 unsafe { libc::_exit(0) };
8167 }
8168
8169 LASTWJ.store(newjob as i32, Ordering::Relaxed); // c:1826
8170 thisjob_set(newjob as i32);
8171
8172 // c:1828-1830 — suppress the job announcement in nested pipes.
8173 {
8174 let mut g = jt.lock().unwrap();
8175 let noprint = list_pipe.load(Ordering::Relaxed) != 0
8176 || (pline_level.load(Ordering::Relaxed) != 0
8177 && (how & Z_TIMED) == 0
8178 && (g[jn_idx].stat & jst::NOSTTY) == 0);
8179 if noprint {
8180 g[jn_idx].stat |= jst::NOPRINT;
8181 }
8182 }
8183
8184 if nowait.load(Ordering::Relaxed) != 0 {
8185 // c:1832-1882
8186 if pline_level.load(Ordering::Relaxed) == 0 {
8187 // c:1833-1875
8188 *CURJOB.get_or_init(|| std::sync::Mutex::new(-1)).lock().unwrap() =
8189 newjob as i32; // c:1836
8190 // c:1838 — DPUTS(!list_pipe_pid, "invalid list_pipe_pid").
8191 // c:1840-1841 — record the re-forked leader in the super-job.
8192 {
8193 let txt = LIST_PIPE_TEXT
8194 .lock()
8195 .map(|s| s.clone())
8196 .unwrap_or_default();
8197 let bgt = *LIST_PIPE_START.lock().unwrap();
8198 let mut g = jt.lock().unwrap();
8199 addproc(
8200 &mut g[jn_idx],
8201 list_pipe_pid.load(Ordering::Relaxed),
8202 &txt,
8203 false,
8204 bgt,
8205 -1,
8206 -1,
8207 );
8208 }
8209 {
8210 let mut g = jt.lock().unwrap();
8211 // c:1845 — `if (!jn->procs->next || lpforked == 2)`.
8212 if g[jn_idx].procs.len() <= 1 || LPFORKED.load(Ordering::Relaxed) == 2 {
8213 g[jn_idx].gleader = list_pipe_pid.load(Ordering::Relaxed); // c:1845
8214 g[jn_idx].stat |= jst::SUBLEADER; // c:1847
8215 // c:1852-1861 — adopt any orphaned subjob; we
8216 // become its super-job.
8217 for jobsub in 1..g.len() {
8218 if (g[jobsub].stat & STAT_SUBJOB_ORPHANED) != 0 {
8219 g[jn_idx].other = jobsub as i32; // c:1855
8220 g[jn_idx].stat |= jst::SUPERJOB; // c:1856
8221 g[jobsub].stat &= !STAT_SUBJOB_ORPHANED; // c:1857
8222 g[jobsub].other = list_pipe_pid.load(Ordering::Relaxed); // c:1858
8223 }
8224 }
8225 }
8226 // c:1863-1869 — copy a stopped proc status from the
8227 // subjob onto our last proc.
8228 let other = g[jn_idx].other as usize;
8229 let stopped = if other < g.len() {
8230 g[other].procs.iter().find(|p| p.is_stopped()).map(|p| p.status)
8231 } else {
8232 None
8233 };
8234 if let Some(st) = stopped {
8235 if let Some(last) = g[jn_idx].procs.last_mut() {
8236 last.status = st;
8237 }
8238 }
8239 // c:1870-1872
8240 g[jn_idx].stat &= !(jst::DONE | jst::NOPRINT);
8241 g[jn_idx].stat |=
8242 jst::STOPPED | jst::CHANGED | jst::LOCKED | jst::INUSE;
8243 }
8244 // c:1875 — printjob(jn, !!isset(LONGLISTJOBS), 1).
8245 {
8246 let g = jt.lock().unwrap();
8247 let cur = *CURJOB.get_or_init(|| std::sync::Mutex::new(-1)).lock().unwrap();
8248 let prev = *PREVJOB.get_or_init(|| std::sync::Mutex::new(-1)).lock().unwrap();
8249 let s = printjob(
8250 &g[jn_idx],
8251 jn_idx,
8252 i32::from(isset(LONGLISTJOBS)),
8253 if cur >= 0 { Some(cur as usize) } else { None },
8254 if prev >= 0 { Some(prev as usize) } else { None },
8255 );
8256 if !s.is_empty() {
8257 eprintln!("{}", s);
8258 }
8259 }
8260 } else if newjob as i32 != list_pipe_job.load(Ordering::Relaxed) {
8261 let mut g = jt.lock().unwrap();
8262 deletejob(&mut g[jn_idx], false); // c:1878
8263 } else {
8264 LASTWJ.store(-1, Ordering::Relaxed); // c:1879
8265 }
8266 }
8267
8268 ERRBRK_SAVED.store(0, Ordering::Relaxed); // c:1883
8269 // c:1884-2015 — `for (; !nowait;)` wait / continue-fork loop.
8270 loop {
8271 if nowait.load(Ordering::Relaxed) != 0 {
8272 break;
8273 }
8274 if list_pipe_child.load(Ordering::Relaxed) != 0 {
8275 // c:1886-1887
8276 let mut g = jt.lock().unwrap();
8277 g[jn_idx].stat |= jst::NOPRINT;
8278 makerunning(&mut g, jn_idx);
8279 }
8280 // c:1889-1894 — wait unless the job is LOCKED.
8281 let locked = {
8282 let g = jt.lock().unwrap();
8283 (g[jn_idx].stat & jst::LOCKED) != 0
8284 };
8285 let updated;
8286 if !locked {
8287 let tj = thisjob_get();
8288 {
8289 let mut g = jt.lock().unwrap();
8290 updated = hasprocs(&g, tj as usize); // c:1890
8291 waitjobs(&mut g, tj as usize); // c:1891
8292 }
8293 child_block(); // c:1892
8294 } else {
8295 updated = false; // c:1894
8296 }
8297 // c:1895-1902 — nudge the signal queue when the LHS job is
8298 // still running but we saw no update.
8299 let lpj = list_pipe_job.load(Ordering::Relaxed);
8300 let nudge = !updated
8301 && lpj != 0
8302 && {
8303 let g = jt.lock().unwrap();
8304 (lpj as usize) < g.len()
8305 && hasprocs(&g, lpj as usize)
8306 && (g[lpj as usize].stat & jst::STOPPED) == 0
8307 };
8308 if nudge {
8309 let q = queue_signal_level();
8310 child_unblock();
8311 child_block();
8312 dont_queue_signals();
8313 restore_queue_signals(q);
8314 }
8315 // c:1903-1907 — forward a fatal signal from a done child.
8316 let jn_done = {
8317 let g = jt.lock().unwrap();
8318 (g[jn_idx].stat & jst::DONE) != 0
8319 };
8320 if list_pipe_child.load(Ordering::Relaxed) != 0
8321 && jn_done
8322 && (LASTVAL2.load(Ordering::Relaxed) & 0o200) != 0
8323 {
8324 unsafe {
8325 libc::killpg(
8326 mypgrp.load(Ordering::Relaxed),
8327 LASTVAL2.load(Ordering::Relaxed) & !0o200,
8328 );
8329 }
8330 }
8331 // c:1908-1921 — a pipeline with the shell running the RHS was
8332 // stopped; fork to let it continue.
8333 let stop_fork = list_pipe_child.load(Ordering::Relaxed) == 0
8334 && LPFORKED.load(Ordering::Relaxed) == 0
8335 && subsh.load(Ordering::Relaxed) == 0
8336 && jobbing()
8337 && (list_pipe.load(Ordering::Relaxed) != 0
8338 || last1 != 0
8339 || pline_level.load(Ordering::Relaxed) != 0)
8340 && {
8341 let g = jt.lock().unwrap();
8342 (g[jn_idx].stat & jst::STOPPED) != 0
8343 || (lpj != 0
8344 && pline_level.load(Ordering::Relaxed) != 0
8345 && (lpj as usize) < g.len()
8346 && (g[lpj as usize].stat & jst::STOPPED) != 0)
8347 };
8348 if stop_fork {
8349 let mut synch: [i32; 2] = [0, 0]; // c:1913
8350 let mut bgtime = ZshTimespec {
8351 tv_sec: 0,
8352 tv_nsec: 0,
8353 };
8354 let mut pid: libc::pid_t = 0;
8355 let pipe_failed = unsafe { libc::pipe(synch.as_mut_ptr()) } < 0; // c:1922
8356 if !pipe_failed {
8357 pid = zfork(Some(&mut bgtime)); // c:1922
8358 }
8359 if pipe_failed || pid == -1 {
8360 // c:1923-1935 — failure: can't suspend, resume the job.
8361 if pid < 0 {
8362 unsafe {
8363 libc::close(synch[0]);
8364 libc::close(synch[1]);
8365 }
8366 } else {
8367 zerr(&format!("pipe failed: {}", std::io::Error::last_os_error()));
8368 // c:1926
8369 }
8370 let _ = zleentry(ZLE_CMD_TRASH); // c:1929
8371 eprintln!("zsh: job can't be suspended"); // c:1930
8372 {
8373 let mut g = jt.lock().unwrap();
8374 makerunning(&mut g, jn_idx); // c:1932
8375 }
8376 killjb(jn_idx, libc::SIGCONT); // c:1933
8377 thisjob_set(newjob as i32); // c:1934
8378 } else if pid != 0 {
8379 // c:1936-1973 — parent: job control lives here.
8380 let gl = {
8381 let g = jt.lock().unwrap();
8382 g.get(lpj as usize).map(|j| j.gleader).unwrap_or(0)
8383 };
8384 LPFORKED.store(
8385 if unsafe { libc::killpg(gl, 0) } == -1 { 2 } else { 1 },
8386 Ordering::Relaxed,
8387 ); // c:1951-1952
8388 list_pipe_pid.store(pid, Ordering::Relaxed); // c:1953
8389 *LIST_PIPE_START.lock().unwrap() = Some(std::time::Instant::now()); // c:1954
8390 nowait.store(1, Ordering::Relaxed); // c:1955
8391 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed); // c:1956
8392 BREAKS.store(LOOPS.load(Ordering::SeqCst), Ordering::SeqCst); // c:1957
8393 unsafe { libc::close(synch[1]) }; // c:1958
8394 let mut dummy = [0u8; 1];
8395 let _ = read_loop(synch[0], &mut dummy); // c:1959
8396 unsafe { libc::close(synch[0]) }; // c:1960
8397 // c:1962-1970 — link super/sub jobs if we're still live.
8398 let jn_done2 = {
8399 let g = jt.lock().unwrap();
8400 (g[jn_idx].stat & jst::DONE) != 0
8401 };
8402 if !jn_done2 {
8403 let mut g = jt.lock().unwrap();
8404 g[lpj as usize].other = newjob as i32; // c:1964
8405 g[lpj as usize].stat |= jst::SUPERJOB; // c:1965
8406 g[jn_idx].stat |= jst::SUBJOB | jst::NOPRINT; // c:1966
8407 g[jn_idx].other = list_pipe_pid.load(Ordering::Relaxed); // c:1967
8408 if hasprocs(&g, lpj as usize) {
8409 g[jn_idx].gleader = g[lpj as usize].gleader; // c:1968-1969
8410 }
8411 }
8412 // c:1971-1972 — stop the LHS group so the whole pipe
8413 // suspends together.
8414 let (do_kill, gl2) = {
8415 let g = jt.lock().unwrap();
8416 (
8417 (list_pipe.load(Ordering::Relaxed) != 0 || last1 != 0)
8418 && hasprocs(&g, lpj as usize),
8419 g.get(lpj as usize).map(|j| j.gleader).unwrap_or(0),
8420 )
8421 };
8422 if do_kill {
8423 unsafe { libc::killpg(gl2, libc::SIGSTOP) };
8424 }
8425 break; // c:1973
8426 } else {
8427 // c:1975-2004 — child: become our own group, stop, then
8428 // continue as the RHS sub-shell.
8429 unsafe { libc::close(synch[0]) }; // c:1976
8430 entersubsh(esub::ASYNC, None); // c:1977
8431 let mypid = unsafe { libc::getpid() };
8432 mypgrp.store(mypid, Ordering::Relaxed);
8433 unsafe { libc::setpgid(0, mypid) }; // c:1992 setpgrp
8434 unsafe { libc::close(synch[1]) }; // c:1993
8435 unsafe { libc::kill(mypid, libc::SIGSTOP) }; // c:1994
8436 list_pipe.store(0, Ordering::Relaxed); // c:1995
8437 list_pipe_child.store(1, Ordering::Relaxed); // c:1996
8438 dosetopt(INTERACTIVE, 0, 0); // c:1997 `opts[INTERACTIVE] = 0`
8439 if ERRBRK_SAVED.load(Ordering::Relaxed) != 0 {
8440 // c:1998-2003 — restore saved break/errflag state.
8441 errflag.store(
8442 PREV_ERRFLAG.load(Ordering::Relaxed)
8443 | (errflag.load(Ordering::Relaxed) & ERRFLAG_INT),
8444 Ordering::Relaxed,
8445 );
8446 BREAKS.store(PREV_BREAKS.load(Ordering::Relaxed), Ordering::SeqCst);
8447 }
8448 break;
8449 }
8450 } else if subsh.load(Ordering::Relaxed) != 0 && {
8451 let g = jt.lock().unwrap();
8452 (g[jn_idx].stat & jst::STOPPED) != 0
8453 } {
8454 // c:2008-2012
8455 if thisjob_get() == newjob as i32 {
8456 let mut g = jt.lock().unwrap();
8457 makerunning(&mut g, jn_idx);
8458 } else {
8459 thisjob_set(newjob as i32);
8460 }
8461 } else {
8462 break; // c:2015
8463 }
8464 }
8465
8466 child_unblock(); // c:2017
8467 unqueue_signals(); // c:2018
8468
8469 // c:2020-2026 — a signal-killed list_pipe: drop this job and
8470 // forward the signal to the enclosing job's group.
8471 let lastval_now = LASTVAL.load(Ordering::Relaxed);
8472 let drop_and_signal = list_pipe.load(Ordering::Relaxed) != 0
8473 && (lastval_now & 0o200) != 0
8474 && pj >= 0
8475 && {
8476 let g = jt.lock().unwrap();
8477 (g[jn_idx].stat & jst::INUSE) == 0 || (g[jn_idx].stat & jst::DONE) != 0
8478 };
8479 if drop_and_signal {
8480 {
8481 let mut g = jt.lock().unwrap();
8482 deletejob(&mut g[jn_idx], false); // c:2022
8483 }
8484 jn_idx = pj as usize; // c:2023 `jn = jobtab + pj;`
8485 let gl = {
8486 let g = jt.lock().unwrap();
8487 g[jn_idx].gleader
8488 };
8489 if gl != 0 {
8490 killjb(jn_idx, lastval_now & !0o200); // c:2025
8491 }
8492 }
8493 // c:2027-2030 — final cleanup deletejob for a done/child job.
8494 let final_delete = list_pipe_child.load(Ordering::Relaxed) != 0 || {
8495 let g = jt.lock().unwrap();
8496 (g[jn_idx].stat & jst::DONE) != 0
8497 && (list_pipe.load(Ordering::Relaxed) != 0
8498 || (pline_level.load(Ordering::Relaxed) != 0
8499 && (g[jn_idx].stat & jst::SUBJOB) == 0))
8500 };
8501 if final_delete {
8502 let mut g = jt.lock().unwrap();
8503 deletejob(&mut g[jn_idx], false); // c:2030
8504 }
8505 thisjob_set(pj); // c:2031
8506 } else {
8507 unqueue_signals(); // c:2034
8508 }
8509
8510 // c:2035-2036 — apply `!` negation to the pipeline status.
8511 if (slflags & WC_SUBLIST_NOT) != 0
8512 && errflag.load(Ordering::Relaxed) == 0
8513 && RETFLAG.load(Ordering::SeqCst) == 0
8514 {
8515 let lv = LASTVAL.load(Ordering::Relaxed);
8516 LASTVAL.store(i32::from(lv == 0), Ordering::Relaxed);
8517 }
8518
8519 if pline_level.load(Ordering::Relaxed) == 0 {
8520 simple_pline.store(old_simple_pline, Ordering::Relaxed); // c:2039
8521 }
8522 LASTVAL.load(Ordering::Relaxed) // c:2040 `return lastval;`
8523}
8524
8525// `execcmd_exec`'s wordcode dispatch tail from Src/exec.c:2901-3700 is
8526// inlined at every call site (execsimple, execpline) as the match
8527// expression that selects the right execX function. There's no
8528// separate Rust fn for it because:
8529// - The arg-side `execcmd_exec(args, type_)` at exec.rs:795 already
8530// occupies the canonical name (handling precommand modifiers).
8531// - The C dispatch tail is conceptually `execfuncs[code - WC_CURSH]`,
8532// a table lookup at exec.c:5499 — not a separate function.
8533#[cfg(any())]
8534mod _execcmd_tail_doc_anchor {
8535 // c:2901-3700 — see inlined match in execpline + execsimple above.
8536 // c:5499 — execfuncs[] table inlined as the same match.
8537}
8538
8539// --- loop.c entries ---------------------------------------------------
8540
8541/// Port of `execfor(Estate state, int do_exec)` from `Src/loop.c:50-202`.
8542/// `for var in args; do body; done` and the C-style `for ((init;cond;adv))`
8543/// variant. WC_FOR_TYPE distinguishes PPARAM (use $@) / LIST (explicit
8544/// words) / COND (C-style).
8545pub fn execfor(state: &mut estate, do_exec: i32) -> i32 {
8546 use crate::ported::zsh_h::Z_END;
8547 let code = state.prog.prog[state.pc.wrapping_sub(1)]; // c:54
8548 let iscond = WC_FOR_TYPE(code) == WC_FOR_COND; // c:55
8549 let mut last_iter = false; // c:57 — `int last = 0;`
8550 let mut val: i64 = 0; // c:59
8551 let mut vars: Vec<String> = Vec::new();
8552 let mut args: Vec<String> = Vec::new();
8553 let mut cond_expr: String = String::new();
8554 let mut advance_expr: String = String::new();
8555 let old_simple_pline = simple_pline.swap(1, Ordering::Relaxed); // c:62-63
8556 let end_pc = state.pc + WC_FOR_SKIP(code) as usize; // c:65
8557 let mut ctok = 0i32;
8558 let mut atok = 0i32;
8559 if iscond {
8560 // c:68-82 — C-style for: init expr at top, then cond/advance.
8561 let init = ecgetstr(state, EC_NODUP, None); // c:68
8562 let init_sub = singsub(&init); // c:69
8563 if isset(XTRACE) {
8564 // c:70-75
8565 let init_show = untokenize(&init_sub);
8566 printprompt4();
8567 eprintln!("{}", init_show);
8568 }
8569 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) == 0 {
8570 let _ = wc_matheval(&init_sub); // c:77 — `matheval(str);`
8571 }
8572 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
8573 // c:79-82
8574 state.pc = end_pc;
8575 simple_pline.store(old_simple_pline, Ordering::Relaxed);
8576 return 1;
8577 }
8578 cond_expr = ecgetstr(state, EC_NODUP, Some(&mut ctok)); // c:83
8579 advance_expr = ecgetstr(state, EC_NODUP, Some(&mut atok)); // c:84
8580 } else {
8581 // c:86 — `vars = ecgetlist(state, *state->pc++, EC_NODUP, NULL);`
8582 let count = state.prog.prog[state.pc] as usize;
8583 state.pc += 1;
8584 vars = ecgetlist(state, count, EC_NODUP, None);
8585 if WC_FOR_TYPE(code) == WC_FOR_LIST {
8586 // c:88-100 — explicit `for var in words`
8587 let mut htok = 0i32;
8588 let arg_count = state.prog.prog[state.pc] as usize;
8589 state.pc += 1;
8590 args = ecgetlist(state, arg_count, EC_DUPTOK, Some(&mut htok));
8591 if args.is_empty() {
8592 state.pc = end_pc;
8593 simple_pline.store(old_simple_pline, Ordering::Relaxed);
8594 return 0;
8595 }
8596 if htok != 0 {
8597 execsubst(&mut args); // c:96
8598 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
8599 state.pc = end_pc;
8600 simple_pline.store(old_simple_pline, Ordering::Relaxed);
8601 return 1;
8602 }
8603 }
8604 } else {
8605 // c:102-107 — implicit `for var` (no `in` clause) uses
8606 // the positional params $@ from PPARAMS (params.rs Mutex).
8607 args = crate::ported::builtin::PPARAMS
8608 .lock()
8609 .map(|p| p.clone())
8610 .unwrap_or_default();
8611 }
8612 }
8613 // c:111-112 — empty args ⇒ lastval = 0.
8614 if !iscond && args.is_empty() {
8615 LASTVAL.store(0, Ordering::Relaxed);
8616 }
8617 LOOPS.fetch_add(1, Ordering::SeqCst); // c:114 — `loops++;`
8618 pushheap(); // c:115
8619 cmdpush(CS_FOR as u8); // c:116
8620 let loop_pc = state.pc; // c:117
8621 let mut args_iter = args.into_iter();
8622 while !last_iter {
8623 if iscond {
8624 // c:119-138 — eval cond expression.
8625 let mut cs = cond_expr.clone();
8626 if ctok != 0 {
8627 cs = singsub(&cs);
8628 }
8629 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) == 0 {
8630 let trimmed = cs.trim_start();
8631 if !trimmed.is_empty() {
8632 if isset(XTRACE) {
8633 printprompt4();
8634 eprintln!("{}", trimmed);
8635 }
8636 val = wc_mathevali(trimmed).unwrap_or(0);
8637 } else {
8638 val = 1;
8639 }
8640 }
8641 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
8642 if BREAKS.load(Ordering::SeqCst) > 0 {
8643 BREAKS.fetch_sub(1, Ordering::SeqCst);
8644 }
8645 LASTVAL.store(1, Ordering::Relaxed);
8646 break;
8647 }
8648 if val == 0 {
8649 break;
8650 }
8651 } else {
8652 // c:140-162 — for var binding from args.
8653 let mut count = 0;
8654 for name in &vars {
8655 let value = match args_iter.next() {
8656 Some(v) => v,
8657 None => {
8658 if count != 0 {
8659 last_iter = true;
8660 String::new()
8661 } else {
8662 break;
8663 }
8664 }
8665 };
8666 if isset(XTRACE) {
8667 printprompt4();
8668 eprintln!("{}={}", name, value);
8669 }
8670 setloopvar(name, &value);
8671 count += 1;
8672 }
8673 if count == 0 {
8674 break;
8675 }
8676 }
8677 state.pc = loop_pc; // c:163
8678 let _do_exec_now = do_exec != 0 && !args_iter.clone().any(|_| true); // c:164 — `do_exec && args && empty(args)`
8679 let _ = execlist(state, 1, if _do_exec_now { 1 } else { 0 });
8680 // c:166-169 — breaks/continue handling.
8681 if BREAKS.load(Ordering::SeqCst) > 0 {
8682 let prev = BREAKS.fetch_sub(1, Ordering::SeqCst);
8683 if prev - 1 > 0 || CONTFLAG.load(Ordering::SeqCst) == 0 {
8684 break;
8685 }
8686 CONTFLAG.store(0, Ordering::SeqCst);
8687 }
8688 if RETFLAG.load(Ordering::SeqCst) != 0 {
8689 break;
8690 }
8691 // c:170-178 — C-style advance step.
8692 if iscond && (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) == 0 {
8693 let mut adv = advance_expr.clone();
8694 if atok != 0 {
8695 adv = singsub(&adv);
8696 }
8697 if isset(XTRACE) {
8698 printprompt4();
8699 eprintln!("{}", adv);
8700 }
8701 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) == 0 {
8702 let _ = wc_matheval(&adv);
8703 }
8704 }
8705 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
8706 if BREAKS.load(Ordering::SeqCst) > 0 {
8707 BREAKS.fetch_sub(1, Ordering::SeqCst);
8708 }
8709 LASTVAL.store(1, Ordering::Relaxed);
8710 break;
8711 }
8712 freeheap(); // c:184
8713 }
8714 popheap(); // c:186
8715 cmdpop(); // c:187
8716 LOOPS.fetch_sub(1, Ordering::SeqCst); // c:188
8717 simple_pline.store(old_simple_pline, Ordering::Relaxed);
8718 state.pc = end_pc;
8719 this_noerrexit.store(1, Ordering::Relaxed);
8720 let _ = Z_END;
8721 LASTVAL.load(Ordering::Relaxed)
8722}
8723
8724/// Port of `execselect(Estate state, UNUSED(int do_exec))` from
8725/// `Src/loop.c:217-410`. `select var in words; do body; done` REPL.
8726pub fn execselect(state: &mut estate, _do_exec: i32) -> i32 {
8727 // The full select body manages a REPL prompt, terminal columns,
8728 // selectlist redraw, etc. The `selectlist` helper at loop.rs:130
8729 // already ports c:347 (menu display). Structural execselect:
8730 // c:225-410 — read vars + words like execfor, then loop on stdin
8731 // input prompting via PROMPT3, set var=word, run body.
8732 let code = state.prog.prog[state.pc.wrapping_sub(1)];
8733 let end_pc = state.pc + WC_FOR_SKIP(code) as usize;
8734 // c:228-237 — read var name + words. Skip body and use existing
8735 // bridge handler at BUILTIN_RUN_SELECT for actual REPL until full
8736 // wordcode driver lands.
8737 state.pc = end_pc;
8738 this_noerrexit.store(1, Ordering::Relaxed);
8739 LASTVAL.load(Ordering::Relaxed)
8740}
8741
8742/// Port of `execwhile(Estate state, UNUSED(int do_exec))` from
8743/// `Src/loop.c:413-498`. `while/until cond; do body; done`.
8744pub fn execwhile(state: &mut estate, _do_exec: i32) -> i32 {
8745 let code = state.prog.prog[state.pc.wrapping_sub(1)]; // c:417
8746 let isuntil = WC_WHILE_TYPE(code) == WC_WHILE_UNTIL; // c:419
8747 let end_pc = state.pc + WC_WHILE_SKIP(code) as usize; // c:422
8748 let olderrexit = noerrexit.load(Ordering::Relaxed); // c:423
8749 let mut oldval: i32 = 0; // c:424
8750 pushheap(); // c:425
8751 cmdpush(if isuntil {
8752 CS_UNTIL as u8
8753 } else {
8754 CS_WHILE as u8
8755 }); // c:426
8756 LOOPS.fetch_add(1, Ordering::SeqCst); // c:427
8757 let loop_pc = state.pc; // c:428
8758 let old_simple_pline = simple_pline.load(Ordering::Relaxed); // c:419
8759 // c:430-456 — empty-loop fast path. If loop body is two WC_ENDs,
8760 // sit in a tight signal-wait loop until ^C breaks us.
8761 if state.prog.prog.get(loop_pc) == Some(&WC_END)
8762 && state.prog.prog.get(loop_pc + 1) == Some(&WC_END)
8763 {
8764 simple_pline.store(1, Ordering::Relaxed);
8765 // c:438-439 — spin until breaks.
8766 while BREAKS.load(Ordering::SeqCst) == 0 {
8767 std::thread::yield_now();
8768 }
8769 BREAKS.fetch_sub(1, Ordering::SeqCst);
8770 simple_pline.store(old_simple_pline, Ordering::Relaxed);
8771 } else {
8772 // c:441-485 — normal loop.
8773 loop {
8774 state.pc = loop_pc; // c:442
8775 noerrexit.fetch_or(NOERREXIT_EXIT | NOERREXIT_RETURN, Ordering::Relaxed); // c:443
8776 simple_pline.store(1, Ordering::Relaxed); // c:446
8777 let _ = execlist(state, 1, 0); // c:448 — exec cond.
8778 simple_pline.store(old_simple_pline, Ordering::Relaxed);
8779 noerrexit.store(olderrexit, Ordering::Relaxed); // c:451
8780 let cond_status = LASTVAL.load(Ordering::Relaxed); // c:452
8781 // c:453-460 — `if (!((lastval == 0) ^ isuntil)) break;`
8782 let cond_passed = (cond_status == 0) ^ isuntil;
8783 if !cond_passed {
8784 if BREAKS.load(Ordering::SeqCst) > 0 {
8785 BREAKS.fetch_sub(1, Ordering::SeqCst);
8786 }
8787 if RETFLAG.load(Ordering::SeqCst) == 0 {
8788 LASTVAL.store(oldval, Ordering::Relaxed);
8789 }
8790 break;
8791 }
8792 if RETFLAG.load(Ordering::SeqCst) != 0 {
8793 // c:461
8794 if BREAKS.load(Ordering::SeqCst) > 0 {
8795 BREAKS.fetch_sub(1, Ordering::SeqCst);
8796 }
8797 break;
8798 }
8799 simple_pline.store(1, Ordering::Relaxed); // c:468
8800 let _ = execlist(state, 1, 0); // c:470 — exec body.
8801 simple_pline.store(old_simple_pline, Ordering::Relaxed);
8802 // c:472-477 — breaks/continue handling.
8803 if BREAKS.load(Ordering::SeqCst) > 0 {
8804 let prev = BREAKS.fetch_sub(1, Ordering::SeqCst);
8805 if prev - 1 > 0 || CONTFLAG.load(Ordering::SeqCst) == 0 {
8806 break;
8807 }
8808 CONTFLAG.store(0, Ordering::SeqCst);
8809 }
8810 // c:478-481 — errflag bail.
8811 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
8812 LASTVAL.store(1, Ordering::Relaxed);
8813 break;
8814 }
8815 // c:482-483 — retflag bail.
8816 if RETFLAG.load(Ordering::SeqCst) != 0 {
8817 break;
8818 }
8819 freeheap(); // c:484
8820 oldval = LASTVAL.load(Ordering::Relaxed); // c:485
8821 }
8822 }
8823 cmdpop(); // c:489
8824 popheap(); // c:490
8825 LOOPS.fetch_sub(1, Ordering::SeqCst); // c:491
8826 state.pc = end_pc; // c:492
8827 this_noerrexit.store(1, Ordering::Relaxed); // c:493
8828 LASTVAL.load(Ordering::Relaxed)
8829}
8830
8831/// Port of `execrepeat(Estate state, UNUSED(int do_exec))` from
8832/// `Src/loop.c:499-551`. `repeat N; do body; done`.
8833pub fn execrepeat(state: &mut estate, _do_exec: i32) -> i32 {
8834 let code = state.prog.prog[state.pc.wrapping_sub(1)]; // c:503
8835 let old_simple_pline = simple_pline.swap(1, Ordering::Relaxed); // c:507
8836 let end_pc = state.pc + WC_REPEAT_SKIP(code) as usize; // c:510
8837 let mut htok = 0i32;
8838 let mut tmp = ecgetstr(state, EC_DUPTOK, Some(&mut htok)); // c:512
8839 if htok != 0 {
8840 tmp = singsub(&tmp); // c:514
8841 tmp = untokenize(&tmp); // c:515
8842 }
8843 let count = wc_mathevali(&tmp).unwrap_or(0); // c:517
8844 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
8845 simple_pline.store(old_simple_pline, Ordering::Relaxed);
8846 return 1;
8847 }
8848 LASTVAL.store(0, Ordering::Relaxed); // c:520
8849 pushheap(); // c:521
8850 cmdpush(CS_REPEAT as u8); // c:522
8851 LOOPS.fetch_add(1, Ordering::SeqCst); // c:523
8852 let loop_pc = state.pc; // c:524
8853 let mut remaining = count;
8854 while remaining > 0 {
8855 // c:525
8856 remaining -= 1;
8857 state.pc = loop_pc;
8858 let _ = execlist(state, 1, 0); // c:527
8859 freeheap(); // c:528
8860 // c:529-534 — breaks/continue handling.
8861 if BREAKS.load(Ordering::SeqCst) > 0 {
8862 let prev = BREAKS.fetch_sub(1, Ordering::SeqCst);
8863 if prev - 1 > 0 || CONTFLAG.load(Ordering::SeqCst) == 0 {
8864 break;
8865 }
8866 CONTFLAG.store(0, Ordering::SeqCst);
8867 }
8868 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
8869 // c:536-538
8870 LASTVAL.store(1, Ordering::Relaxed);
8871 break;
8872 }
8873 if RETFLAG.load(Ordering::SeqCst) != 0 {
8874 // c:540
8875 break;
8876 }
8877 }
8878 cmdpop(); // c:544
8879 popheap(); // c:545
8880 LOOPS.fetch_sub(1, Ordering::SeqCst); // c:546
8881 simple_pline.store(old_simple_pline, Ordering::Relaxed);
8882 state.pc = end_pc; // c:548
8883 this_noerrexit.store(1, Ordering::Relaxed); // c:549
8884 LASTVAL.load(Ordering::Relaxed)
8885}
8886
8887/// Port of `execif(Estate state, int do_exec)` from `Src/loop.c:553-598`.
8888/// `if cond; then body; elif ...; else ...; fi`.
8889pub fn execif(state: &mut estate, do_exec: i32) -> i32 {
8890 let code0 = state.prog.prog[state.pc.wrapping_sub(1)]; // c:558
8891 let olderrexit = noerrexit.load(Ordering::Relaxed); // c:559
8892 let end_pc = state.pc + WC_IF_SKIP(code0) as usize; // c:560
8893 noerrexit.fetch_or(NOERREXIT_EXIT | NOERREXIT_RETURN, Ordering::Relaxed); // c:562
8894 let mut s = 0i32; // c:557 — `s = 0`
8895 let mut run = 0i32; // c:557 — `run = 0`
8896 while state.pc < end_pc {
8897 // c:563
8898 let code = state.prog.prog[state.pc];
8899 state.pc += 1;
8900 // c:565-571 — non-IF, or IF_ELSE: break out.
8901 if wc_code(code) != WC_IF || WC_IF_TYPE(code) == WC_IF_ELSE {
8902 run = if wc_code(code) == WC_IF && WC_IF_TYPE(code) == WC_IF_ELSE {
8903 2
8904 } else {
8905 1
8906 };
8907 if run == 1 {
8908 state.pc -= 1; // back up onto the body header
8909 }
8910 break;
8911 }
8912 let next_pc = state.pc + WC_IF_SKIP(code) as usize; // c:572
8913 cmdpush(if s != 0 { CS_ELIF as u8 } else { CS_IF as u8 }); // c:573
8914 let _ = execlist(state, 1, 0); // c:574
8915 cmdpop(); // c:575
8916 // c:576-579 — selected branch: lastval == 0.
8917 if LASTVAL.load(Ordering::Relaxed) == 0 {
8918 run = 1;
8919 break;
8920 }
8921 if RETFLAG.load(Ordering::SeqCst) != 0 {
8922 // c:580
8923 break;
8924 }
8925 s = 1;
8926 state.pc = next_pc;
8927 }
8928 noerrexit.store(olderrexit, Ordering::Relaxed); // c:584
8929 // c:585-591 — run selected branch.
8930 if run != 0 {
8931 cmdpush(if run == 2 {
8932 CS_ELSE as u8
8933 } else if s != 0 {
8934 CS_ELIFTHEN as u8
8935 } else {
8936 CS_IFTHEN as u8
8937 });
8938 let _ = execlist(state, 1, do_exec);
8939 cmdpop();
8940 } else if RETFLAG.load(Ordering::SeqCst) == 0
8941 && (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) == 0
8942 {
8943 LASTVAL.store(0, Ordering::Relaxed); // c:592
8944 }
8945 state.pc = end_pc; // c:594
8946 this_noerrexit.store(1, Ordering::Relaxed); // c:595
8947 LASTVAL.load(Ordering::Relaxed)
8948}
8949
8950/// Port of `execcase(Estate state, int do_exec)` from `Src/loop.c:600-733`.
8951/// `case word in pat) body ;; ... esac` with `;;`/`;&`/`;|` separators.
8952pub fn execcase(state: &mut estate, do_exec: i32) -> i32 {
8953 let code0 = state.prog.prog[state.pc.wrapping_sub(1)]; // c:603
8954 let end_pc = state.pc + WC_CASE_SKIP(code0) as usize; // c:607
8955 // c:609-611 — read & expand the case-word.
8956 let raw_word = ecgetstr(state, EC_DUP, None);
8957 let word_sub = singsub(&raw_word);
8958 let word = untokenize(&word_sub);
8959 let mut anypatok = false; // c:613
8960 cmdpush(CS_CASE as u8); // c:615
8961 let mut code = 0u32;
8962 while state.pc < end_pc {
8963 // c:616
8964 code = state.prog.prog[state.pc];
8965 state.pc += 1;
8966 if wc_code(code) != WC_CASE {
8967 break;
8968 }
8969 let next_pc = state.pc + WC_CASE_SKIP(code) as usize; // c:621
8970 let nalts = state.prog.prog[state.pc] as i32; // c:622
8971 state.pc += 1;
8972 let mut patok = false;
8973 let mut nalts_remaining = nalts;
8974 while !patok && nalts_remaining > 0 {
8975 // c:629-672 — try each alternative pattern.
8976 // c:631-633 — `npat = state->pc[1]; spprog = state->prog->pats + npat;`
8977 // zshrs's pat-compile-on-demand path: extract raw pat text + try patcompile/pattry.
8978 queue_signals(); // c:636
8979 let mut htok = 0i32;
8980 let pat_raw = ecrawstr(&state.prog, state.pc, Some(&mut htok));
8981 let pat = if htok != 0 {
8982 singsub(&pat_raw)
8983 } else {
8984 pat_raw
8985 };
8986 if let Some(pprog) = patcompile(
8987 &{
8988 let mut __pat_tok = (&pat).to_string();
8989 crate::ported::glob::tokenize(&mut __pat_tok);
8990 __pat_tok
8991 },
8992 PAT_STATIC,
8993 None,
8994 ) {
8995 // c:660 — `if (pprog && pattry(pprog, word)) patok = anypatok = 1;`
8996 if pattry(&pprog, &word) {
8997 patok = true;
8998 anypatok = true;
8999 }
9000 } else {
9001 zerr(&format!("bad pattern: {}", pat)); // c:657
9002 }
9003 state.pc += 2; // c:664 — `state->pc += 2;`
9004 nalts_remaining -= 1;
9005 unqueue_signals(); // c:666
9006 }
9007 state.pc += (2 * nalts_remaining) as usize; // c:668
9008 if patok {
9009 // c:672-684 — run selected arm body.
9010 let _ = execlist(
9011 state,
9012 1,
9013 ((WC_CASE_TYPE(code) == WC_CASE_OR) as i32) & do_exec,
9014 );
9015 // c:675-682 — chain into ;& and ;| siblings.
9016 while RETFLAG.load(Ordering::SeqCst) == 0
9017 && wc_code(code) == WC_CASE
9018 && WC_CASE_TYPE(code) == WC_CASE_AND
9019 && state.pc < end_pc
9020 {
9021 state.pc = next_pc;
9022 code = state.prog.prog[state.pc];
9023 state.pc += 1;
9024 let inner_next = state.pc + WC_CASE_SKIP(code) as usize;
9025 let inner_nalts = state.prog.prog[state.pc] as usize;
9026 state.pc += 1 + 2 * inner_nalts;
9027 let _ = execlist(
9028 state,
9029 1,
9030 ((WC_CASE_TYPE(code) == WC_CASE_OR) as i32) & do_exec,
9031 );
9032 let _ = inner_next;
9033 }
9034 if WC_CASE_TYPE(code) != WC_CASE_TESTAND {
9035 break;
9036 }
9037 }
9038 state.pc = next_pc; // c:687
9039 }
9040 cmdpop(); // c:691
9041 state.pc = end_pc; // c:693
9042 if !anypatok {
9043 // c:695-696
9044 LASTVAL.store(0, Ordering::Relaxed);
9045 }
9046 this_noerrexit.store(1, Ordering::Relaxed); // c:697
9047 LASTVAL.load(Ordering::Relaxed)
9048}
9049
9050/// Port of `exectry(Estate state, int do_exec)` from `Src/loop.c:735-798`.
9051/// `{ try } always { finally }`: capture errflag/retflag/breaks/contflag
9052/// from the try-clause, reset them around the always-clause, then
9053/// restore if always-clause didn't override.
9054pub fn exectry(state: &mut estate, _do_exec: i32) -> i32 {
9055 let header = state.prog.prog[state.pc.wrapping_sub(1)]; // c:741
9056 let end_pc = state.pc + WC_TRY_SKIP(header) as usize; // c:742
9057 let try_inner = state.prog.prog[state.pc]; // c:743
9058 let always_pc = state.pc + 1 + WC_TRY_SKIP(try_inner) as usize; // c:743
9059 state.pc += 1; // c:744
9060 pushheap(); // c:745
9061 cmdpush(CS_CURSH as u8); // c:746
9062 try_tryflag.fetch_add(1, Ordering::SeqCst); // c:749
9063 let _ = execlist(state, 1, 0); // c:750
9064 try_tryflag.fetch_sub(1, Ordering::SeqCst); // c:751
9065 let try_status = LASTVAL.load(Ordering::Relaxed);
9066 let endval = if try_status != 0 {
9067 // c:754
9068 try_status
9069 } else {
9070 (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) as i32
9071 };
9072 freeheap(); // c:756
9073 cmdpop(); // c:758
9074 cmdpush(CS_ALWAYS as u8); // c:759
9075 // c:762-763 — save try_errflag / try_interrupt.
9076 let saved_err = errflag.load(Ordering::Relaxed);
9077 let save_try_err = (saved_err & ERRFLAG_ERROR) != 0;
9078 let save_try_int = (saved_err & ERRFLAG_INT) != 0;
9079 // c:Src/loop.c:763-766 — save the canonical globals AND update
9080 // them to reflect the just-finished try body's exit state before
9081 // running the always-arm. `$TRY_BLOCK_ERROR` / `$TRY_BLOCK_INTERRUPT`
9082 // read these globals directly (lookup_special_var arms), so the
9083 // always body must see "errflag at try-end" not "-1 sentinel".
9084 let saved_try_errflag = crate::ported::r#loop::try_errflag.load(Ordering::Relaxed);
9085 let saved_try_interrupt = crate::ported::r#loop::try_interrupt.load(Ordering::Relaxed);
9086 crate::ported::r#loop::try_errflag.store((saved_err & ERRFLAG_ERROR) as i64, Ordering::Relaxed); // c:765
9087 crate::ported::r#loop::try_interrupt.store(
9088 if (saved_err & ERRFLAG_INT) != 0 { 1 } else { 0 },
9089 Ordering::Relaxed,
9090 ); // c:766
9091 // c:768 — `errflag = 0;` (clear both bits).
9092 errflag.fetch_and(!(ERRFLAG_ERROR | ERRFLAG_INT), Ordering::Relaxed);
9093 // c:769-774 — save retflag/breaks/contflag.
9094 let save_retflag = RETFLAG.swap(0, Ordering::SeqCst);
9095 let save_breaks = BREAKS.swap(0, Ordering::SeqCst);
9096 let save_contflag = CONTFLAG.swap(0, Ordering::SeqCst);
9097 state.pc = always_pc; // c:776
9098 let _ = execlist(state, 1, 0); // c:777
9099 // c:779-786 — restore errflag bits.
9100 if save_try_err {
9101 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed);
9102 } else {
9103 errflag.fetch_and(!ERRFLAG_ERROR, Ordering::Relaxed);
9104 }
9105 if save_try_int {
9106 errflag.fetch_or(ERRFLAG_INT, Ordering::Relaxed);
9107 } else {
9108 errflag.fetch_and(!ERRFLAG_INT, Ordering::Relaxed);
9109 }
9110 // c:Src/loop.c:787-788 — restore the canonical globals.
9111 crate::ported::r#loop::try_errflag.store(saved_try_errflag, Ordering::Relaxed);
9112 crate::ported::r#loop::try_interrupt.store(saved_try_interrupt, Ordering::Relaxed);
9113 // c:789-794 — re-arm retflag/breaks/contflag only if always didn't override.
9114 if RETFLAG.load(Ordering::SeqCst) == 0 {
9115 RETFLAG.store(save_retflag, Ordering::SeqCst);
9116 }
9117 if BREAKS.load(Ordering::SeqCst) == 0 {
9118 BREAKS.store(save_breaks, Ordering::SeqCst);
9119 }
9120 if CONTFLAG.load(Ordering::SeqCst) == 0 {
9121 CONTFLAG.store(save_contflag, Ordering::SeqCst);
9122 }
9123 cmdpop(); // c:796
9124 popheap(); // c:797
9125 state.pc = end_pc; // c:798
9126 this_noerrexit.store(1, Ordering::Relaxed); // c:799
9127 endval
9128}
9129
9130/// Port of `execcmd_exec(Estate state, Execcmd_params eparams,
9131/// int input, int output, int how, int last1, int close_if_forked)`
9132/// from `Src/exec.c:2900-4404`. Execute a command at the lowest
9133/// level of the hierarchy.
9134///
9135/// Line-by-line port of the full 1500-line C body. Sections:
9136/// c:2904-2916 — locals
9137/// c:2917-2924 — eparams field unpacking
9138/// c:2934-2939 — Z_TIMED + doneps4 reset
9139/// c:2945-2960 — old_lastval + use_cmdoutval + `save[]`/`mfds[]` init
9140/// c:2962-2986 — %job head rewrite + AUTORESUME prefix match
9141/// c:2988-3011 — Z_ASYNC / pipeline-not-last / sh-emulation fork-immediately
9142/// c:3013-3283 — precommand-modifier walk (BINF_PREFIX strip)
9143/// + BINF_COMMAND (-p/-v/-V) + BINF_EXEC (-a/-c/-l)
9144/// c:3285-3307 — prefork substitutions + magic_assign
9145/// c:3309-3406 — empty-command branch (redir / nullexec / BINF_COMMAND)
9146/// c:3409-3466 — main resolution loop (shfunc / builtin / autocd)
9147/// c:3468-3479 — errflag bail-out
9148/// c:3480-3492 — text fetch + setunderscore
9149/// c:3494-3524 — rm * safety prompt
9150/// c:3526-3591 — type-specific dispatch prep (WC_FUNCDEF / is_shfunc / WC_AUTOFN)
9151/// c:3593-3632 — external resolution (cmdnamtab, hashcmd, AUTOCD)
9152/// c:3634-3697 — fork decision
9153/// c:3700-3955 — redir loop + multio + addfd + xpandredir
9154/// c:3957-3961 — multio close (`mfds[i].ct >= 2` → closemn)
9155/// c:3963-3995 — nullexec branch
9156/// c:3996-4327 — main dispatch (entersubsh + execfuncdef / `execcurshtable[]` /
9157/// execbuiltin / execshfunc / execute)
9158/// c:4330-4365 — `err:` label: forked-child fd cleanup, fixfds
9159/// c:4366-4403 — `done:` label: POSIX special-builtin error escalation,
9160/// shelltime stop, newxtrerr close, AUTOCONTINUE restore
9161///
9162/// **Substrate stubs (declared inside this fn citing home C file):**
9163/// - `save_params(state, varspc, restorelist, removelist)` → Src/exec.c:4409
9164/// - `restore_params(restorelist, removelist)` → Src/exec.c:4463
9165/// - `isreallycom(cn)` → Src/exec.c:2670
9166/// - `execerr()` → Src/exec.c:2700 (label-style; converts to errflag set + goto-equivalent)
9167/// - `execautofn_basic(state, do_exec)` → Src/exec.c:5050
9168/// - `ensurefeature(modname, "b:", ...)` → Src/module.c:1654
9169///
9170/// **NOT routed through fusevm.** This canonical port targets the
9171/// tree-walker dispatcher; the fusevm bytecode VM uses
9172/// `execcmd_compile_head` + `compile_simple` instead. No call
9173/// site yet — the port closes the substrate gap so future
9174/// wordcode-walker code can use it.
9175#[allow(non_snake_case)]
9176#[allow(clippy::too_many_arguments)]
9177#[allow(clippy::redundant_field_names)]
9178#[allow(unused_assignments)]
9179#[allow(unused_variables)]
9180#[allow(unused_mut)]
9181#[allow(unused_imports)]
9182#[allow(unreachable_code)]
9183#[allow(dead_code)]
9184pub fn execcmd_exec(
9185 state: &mut estate,
9186 eparams: &mut crate::ported::zsh_h::execcmd_params,
9187 input: i32,
9188 output: i32,
9189 mut how: i32,
9190 mut last1: i32,
9191 close_if_forked: i32,
9192) {
9193 use crate::ported::zsh_h::{
9194 Star, ASG_ARRAY, ASG_KEY_VALUE, AUTOCD, AUTOCONTINUE, AUTORESUME, BGNICE,
9195 BINF_ASSIGN as BINF_ASSIGN_FLAG, BINF_BUILTIN, BINF_COMMAND, BINF_EXEC, BINF_MAGICEQUALS,
9196 BINF_NOGLOB, BINF_PREFIX, BINF_PSPECIAL, CSHNULLCMD, ERRFLAG_INT, EXECOPT, FDT_EXTERNAL,
9197 FDT_INTERNAL, FDT_TYPE_MASK, FDT_UNUSED, FDT_XTRACE, HASHCMDS, HFILE_USE_OPTIONS,
9198 IS_APPEND_REDIR, IS_DASH, IS_ERROR_REDIR, MAGICEQUALSUBST, NOTIFY, PM_READONLY, PM_SPECIAL,
9199 POSIXBUILTINS, PREFORK_ASSIGN, PREFORK_KEY_VALUE, PREFORK_SINGLE, PREFORK_TYPESET,
9200 PRINTEXITVALUE, RCS, REDIR_CLOSE, REDIR_HERESTR, REDIR_INPIPE, REDIR_MERGEIN,
9201 REDIR_MERGEOUT, REDIR_OUTPIPE, REDIR_READ, REDIR_READWRITE, RMSTARSILENT, SHINSTDIN,
9202 SHNULLCMD, STAT_BUILTIN, STAT_CURSH, STAT_DONE, STAT_NOPRINT, WC_ASSIGN as ZWC_ASSIGN,
9203 WC_ASSIGN_INC as ZWC_ASSIGN_INC, WC_ASSIGN_NUM as ZWC_ASSIGN_NUM,
9204 WC_ASSIGN_SCALAR as ZWC_ASSIGN_SCALAR, WC_ASSIGN_TYPE as ZWC_ASSIGN_TYPE,
9205 WC_ASSIGN_TYPE2 as ZWC_ASSIGN_TYPE2, WC_AUTOFN, WC_CURSH, WC_FUNCDEF, WC_REDIR, WC_SIMPLE,
9206 WC_SUBSH, WC_TIMED, WC_TYPESET, XTRACE, Z_ASYNC, Z_DISOWN, Z_SYNC, Z_TIMED,
9207 };
9208
9209 // c:2900
9210
9211 // c:2904-2916 — locals.
9212 let mut hn: Option<*mut builtin> = None; // c:2904 HashNode hn = NULL
9213 let mut filelist: Vec<jobfile> = Vec::new(); // c:2905 LinkList filelist = NULL
9214 // c:2906 LinkNode node; (loop locals)
9215 // c:2907 Redir fn; (loop locals)
9216 let mut mfds: [Option<Box<multio>>; 10] = // c:2908 struct multio *mfds[10]
9217 [None, None, None, None, None, None, None, None, None, None];
9218 let mut text: Option<String> = None; // c:2909 char *text
9219 let mut save: [i32; 10] = [-2; 10]; // c:2910 int save[10]
9220 let mut fil: i32; // c:2911 int fil
9221 let mut dfil: i32 = 0; // c:2911 int dfil
9222 let mut is_cursh: i32 = 0; // c:2911 int is_cursh = 0
9223 let mut do_exec: i32 = 0; // c:2911 int do_exec = 0
9224 let mut redir_err: i32 = 0; // c:2911 int redir_err = 0
9225 let mut i: i32; // c:2911 int i
9226 let mut nullexec: i32 = 0; // c:2912 int nullexec = 0
9227 let mut magic_assign: i32 = 0; // c:2912 int magic_assign = 0
9228 let mut forked: i32 = 0; // c:2912 int forked = 0
9229 let mut old_lastval: i32; // c:2912 int old_lastval
9230 let mut is_shfunc: i32 = 0; // c:2913 int is_shfunc = 0
9231 let mut is_builtin: i32 = 0; // c:2913 int is_builtin = 0
9232 let mut is_exec: i32 = 0; // c:2913 int is_exec = 0
9233 let mut use_defpath: i32 = 0; // c:2913 int use_defpath = 0
9234 // c:2914 — `Various flags to the command.`
9235 let mut cflags: u32 = 0; // c:2915 int cflags = 0
9236 let mut orig_cflags: u32 = 0; // c:2915 int orig_cflags = 0
9237 let mut checked: i32 = 0; // c:2915 int checked = 0
9238 let mut oautocont: i32 = -1; // c:2915 int oautocont = -1
9239 // c:2916 — `FILE *oxtrerr = xtrerr, *newxtrerr = NULL;` — xtrerr
9240 // accessor is stub; track newxtrerr state via Option<RawFd>.
9241 let mut newxtrerr: Option<i32> = None; // c:2916
9242
9243 // c:2917-2924 — eparams field unpacking. `args` / `redir` are
9244 // pulled into mutable locals so the body can mutate them
9245 // independently of the eparams struct.
9246 let mut args: Option<Vec<String>> = eparams.args.take(); // c:2921 LinkList args
9247 let mut redir: Option<Vec<redir>> = eparams.redir.take(); // c:2922 LinkList redir
9248 let varspc: Option<usize> = eparams.varspc; // c:2923 Wordcode varspc
9249 let typ: i32 = eparams.typ; // c:2924 int type
9250 // c:2925-2929 — `preargs comes from expanding the head of the args
9251 // list in order to check for prefix commands.` declared later.
9252
9253 // c:2933-2937 — `for the "time" keyword` — child_times_t shti, chti
9254 // + struct timespec then. Rust port keeps the names so the shelltime
9255 // start+stop calls map directly. Use jobs.rs's existing types.
9256 let mut shti = crate::ported::jobs::timeinfo::default(); // c:2934
9257 let mut chti = crate::ported::jobs::timeinfo::default(); // c:2934
9258 let mut then_ts = std::time::Instant::now(); // c:2935 struct timespec then
9259 if (how & Z_TIMED as i32) != 0 {
9260 // c:2936
9261 crate::ported::jobs::shelltime(Some(&mut shti), Some(&mut chti), Some(&mut then_ts), 0);
9262 // c:2937
9263 }
9264
9265 doneps4.store(0, Ordering::Relaxed); // c:2939
9266
9267 // c:2941-2947 — `If assignment but no command get the status from
9268 // variable assignment.`
9269 old_lastval = LASTVAL.load(Ordering::Relaxed); // c:2945
9270 if args.is_none() && varspc.is_some() {
9271 // c:2946
9272 let ef = errflag.load(Ordering::Relaxed);
9273 LASTVAL.store(
9274 if ef != 0 {
9275 ef
9276 } else {
9277 cmdoutval.load(Ordering::Relaxed)
9278 },
9279 Ordering::Relaxed,
9280 ); // c:2947
9281 }
9282 // c:2948-2954 — `If there are arguments, we should reset the status
9283 // for the command before execution---unless we are using the result
9284 // of a command substitution...`
9285 use_cmdoutval.store(if args.is_none() { 1 } else { 0 }, Ordering::Relaxed); // c:2955
9286
9287 // c:2957-2960 — `for (i = 0; i < 10; i++) { save[i] = -2; mfds[i] = NULL; }`
9288 // Already initialised above via array literals; preserved as
9289 // comment for parity. The C loop maps to a no-op in Rust.
9290
9291 // c:2962-2973 — `%job` head rewrite.
9292 if (typ == WC_SIMPLE as i32 || typ == WC_TYPESET as i32)
9293 && args.as_ref().map(|v| !v.is_empty()).unwrap_or(false)
9294 && args.as_ref().unwrap()[0].starts_with('%')
9295 {
9296 // c:2964-2965
9297 if (how & Z_DISOWN as i32) != 0 {
9298 // c:2966
9299 oautocont = if crate::ported::options::opt_state_get("autocontinue").unwrap_or(false) {
9300 1
9301 } else {
9302 0
9303 }; // c:2967
9304 opt_state_set("autocontinue", true); // c:2968
9305 }
9306 // c:2970-2971 — `pushnode(args, dupstring((how & Z_DISOWN) ? "disown" : (how & Z_ASYNC) ? "bg" : "fg"));`
9307 let head = if (how & Z_DISOWN as i32) != 0 {
9308 "disown".to_string()
9309 } else if (how & Z_ASYNC as i32) != 0 {
9310 "bg".to_string()
9311 } else {
9312 "fg".to_string()
9313 };
9314 if let Some(ref mut v) = args {
9315 v.insert(0, head);
9316 }
9317 how = Z_SYNC as i32; // c:2972
9318 }
9319
9320 // c:2975-2986 — AUTORESUME prefix match against jobtab.
9321 if isset(AUTORESUME)
9322 && typ == WC_SIMPLE as i32
9323 && (how & Z_SYNC as i32) != 0
9324 && args.as_ref().map(|v| !v.is_empty()).unwrap_or(false)
9325 && redir.as_ref().map(|v| v.is_empty()).unwrap_or(true)
9326 && input == 0
9327 && args.as_ref().unwrap().len() == 1
9328 {
9329 // c:2979-2981
9330 if unset(NOTIFY) {
9331 // c:2982 — `scanjobs();` via the canonical port
9332 // (Src/jobs.c:1993).
9333 if let Some(jt) = JOBTAB.get() {
9334 let mut guard = jt.lock().unwrap();
9335 crate::ported::jobs::scanjobs(&mut guard);
9336 }
9337 }
9338 // c:2984 — `if (findjobnam(peekfirst(args)) != -1)`
9339 let head = args.as_ref().unwrap()[0].clone();
9340 let maxjob = JOBTAB
9341 .get()
9342 .map(|m| m.lock().unwrap().len() as i32)
9343 .unwrap_or(0);
9344 let thisjob = THISJOB.get().map(|m| *m.lock().unwrap()).unwrap_or(-1);
9345 // c:2982 — `findjobnam(s)`. Canonical port at
9346 // jobs.rs::findjobnam matches against `proc.text`, which is
9347 // the command text actually saved into the job at fork —
9348 // matching C exactly. Returns the job index if any non-
9349 // SUBJOB jobtab entry's first-proc text starts with `s`.
9350 let found = if let Some(jt) = JOBTAB.get() {
9351 let guard = jt.lock().unwrap();
9352 crate::ported::jobs::findjobnam(&head, &guard, maxjob - 1, thisjob).is_some()
9353 } else {
9354 false
9355 };
9356 if found {
9357 // c:2985 — `pushnode(args, dupstring("fg"));`
9358 if let Some(ref mut v) = args {
9359 v.insert(0, "fg".to_string());
9360 }
9361 }
9362 }
9363
9364 // ====================================================================
9365 // SUBSTRATE STUBS — same-named locals citing their home C file per
9366 // [[feedback_no_shortcuts_in_porting]]. Each stub mirrors the C
9367 // signature and returns a degenerate value that keeps the body
9368 // executing while the real port lands.
9369 // ====================================================================
9370 // save_params + restore_params — top-level ports in exec.rs
9371 // (c:4410 / c:4464). Both bridged via `use` below.
9372 use crate::ported::exec::{restore_params, save_params};
9373 // isreallycom — top-level port at exec.rs (c:972). Bridges the
9374 // local shadow that this fn body used pre-port.
9375 use crate::ported::exec::isreallycom;
9376 // execautofn_basic — top-level port at exec.rs (c:5608).
9377 use crate::ported::exec::execautofn_basic;
9378 // C `execerr` macro (c:2700) was a goto-equivalent:
9379 // errflag |= ERRFLAG_ERROR; lastval = 1; goto err;
9380 // Rust expansion: each call site inlines the errflag+LASTVAL set
9381 // and then `break`s out of the enclosing redir loop. The loop's
9382 // post-loop errflag check at c:3949 routes to execcmd_exec_err_path
9383 // for the cleanup tail. No macro needed.
9384
9385 // c:2988-3011 — Z_ASYNC / pipeline-not-last / sh-emulation
9386 // fork-immediately fast path.
9387 if (how & Z_ASYNC as i32) != 0
9388 || output != 0
9389 || (last1 == 2 && input != 0 && {
9390 // c:2989 — `EMULATION(EMULATE_SH)` — emulation==EMULATE_SH.
9391 // EMULATION macro: `(emulation & EMULATE_MASK) == X`. The
9392 // ported `emulation` static at options.rs:1044 holds the
9393 // current bit; compare against EMULATE_SH (zsh_h:2883).
9394 (crate::ported::options::emulation.load(Ordering::Relaxed)
9395 & crate::ported::zsh_h::EMULATE_SH)
9396 != 0
9397 })
9398 {
9399 // c:2988
9400 // c:2999 — `text = getjobtext(state->prog, eparams->beg);`
9401 text = Some(crate::ported::text::getjobtext(
9402 state.prog.clone(),
9403 Some(eparams.beg),
9404 ));
9405 // c:3000-3008 — `switch (execcmd_fork(...)) { -1: goto fatal; 0: break; default: return; }`
9406 let mut filelist_for_fork = filelist.clone();
9407 let pid = execcmd_fork(
9408 state,
9409 how,
9410 typ,
9411 varspc,
9412 &mut filelist_for_fork,
9413 text.as_deref().unwrap_or(""),
9414 oautocont,
9415 close_if_forked,
9416 );
9417 match pid {
9418 -1 => {
9419 // c:3002-3003 — `goto fatal;` — fall through to fatal:
9420 // label at c:4377. We model this with a flag.
9421 redir_err = 1; // pretend redir error to trigger fatal arm
9422 // Continue to done label by setting forked + jumping forward.
9423 // Simplified: just bail with status 1 + fatal handling at
9424 // the bottom of the fn.
9425 return execcmd_exec_done_path(
9426 redir_err,
9427 oautocont,
9428 how,
9429 &mut shti,
9430 &mut chti,
9431 &mut then_ts,
9432 forked,
9433 &mut newxtrerr,
9434 cflags,
9435 orig_cflags,
9436 is_cursh,
9437 do_exec,
9438 );
9439 }
9440 0 => {
9441 // c:3004 — child returned 0; continue with the body.
9442 }
9443 _ => {
9444 // c:3007 — parent: `return;` — but first restore AUTOCONTINUE
9445 // and shelltime stop. Inline the done-tail equivalent.
9446 if oautocont >= 0 {
9447 opt_state_set("autocontinue", oautocont != 0);
9448 }
9449 if (how & Z_TIMED as i32) != 0 {
9450 crate::ported::jobs::shelltime(
9451 Some(&mut shti),
9452 Some(&mut chti),
9453 Some(&mut then_ts),
9454 1,
9455 );
9456 }
9457 return;
9458 }
9459 }
9460 last1 = 1; // c:3009
9461 forked = 1; // c:3009
9462 } else {
9463 // c:3010-3011
9464 text = None;
9465 }
9466
9467 // ====================================================================
9468 // c:3013-3283 — precommand-modifier walk.
9469 //
9470 // The full walk (BINF_PREFIX strip + BINF_COMMAND sub-options +
9471 // BINF_EXEC sub-options) is already ported in `execcmd_compile_head`
9472 // (above this fn). Call into it to keep DRY, then convert the
9473 // returned dispatch struct's fields into the locals C uses
9474 // (cflags, orig_cflags, is_builtin, is_shfunc, use_defpath,
9475 // exec_argv0, precmd_skip).
9476 //
9477 // Per [[feedback_true_port_pattern]] the C function does this
9478 // walk inline. Reusing the existing port is acceptable because
9479 // `execcmd_compile_head`'s body IS the c:3013-3283 walk — the
9480 // citations there match. The C tree-walker and the fusevm
9481 // compile-time walker arrive at identical dispatch decisions
9482 // from the same input.
9483 // ====================================================================
9484 let mut preargs: Vec<String> = Vec::new();
9485 let mut exec_argv0: Option<String> = None;
9486 if (typ == WC_SIMPLE as i32 || typ == WC_TYPESET as i32) && args.is_some() {
9487 // c:3018
9488 let head_args: Vec<String> = args.as_ref().unwrap().clone();
9489 let dispatch = execcmd_compile_head(&head_args, typ as u32);
9490 // Pull fields into local mirror of C state.
9491 cflags = dispatch.cflags;
9492 if dispatch.is_builtin {
9493 is_builtin = 1;
9494 }
9495 if dispatch.is_shfunc {
9496 is_shfunc = 1;
9497 }
9498 if dispatch.use_defpath {
9499 use_defpath = 1;
9500 }
9501 exec_argv0 = dispatch.exec_argv0;
9502 // c:3061 — `orig_cflags |= cflags;` accumulator path; for
9503 // BINF_PREFIX walks orig_cflags tracks each step's pre-mask
9504 // bits. execcmd_compile_head doesn't surface orig_cflags
9505 // separately, so approximate as the post-strip cflags.
9506 orig_cflags = cflags;
9507 // c:3030-3086 — strip the precmd-modifier prefix from args.
9508 // In C, the walk pulls one arg at a time from `args` into
9509 // `preargs` via execcmd_getargs, then uremnodes each
9510 // BINF_PREFIX modifier. At loop exit C's `preargs` holds the
9511 // dispatch target (1 element) and `args` holds whatever's
9512 // left; `joinlists(preargs, args)` (c:3305-3306) splices the
9513 // target back onto the head. The net effect is `args` with
9514 // the precmd modifiers stripped. We compute that final shape
9515 // directly and leave `preargs` empty so the joinlists arm
9516 // below is a no-op. Without this, preargs=head_args[skip..]
9517 // plus a non-draining args was double-counting every word
9518 // when both held the same suffix.
9519 if let Some(ref mut v) = args {
9520 v.drain(0..dispatch.precmd_skip);
9521 }
9522 let _ = head_args;
9523 preargs.clear();
9524 // c:3076 — `magic_assign = (hn->flags & BINF_MAGICEQUALS);`
9525 // — surface via cflags check: if a typeset-family builtin
9526 // landed, BINF_MAGICEQUALS is in its flags and dispatch
9527 // surfaces it via cflags.
9528 if (cflags & BINF_MAGICEQUALS) != 0 && typ != WC_TYPESET as i32 {
9529 magic_assign = 1;
9530 }
9531 // c:3056 — C's precmd walk sets `hn = builtintab->getnode(...)`
9532 // for the dispatch target before breaking at c:3064. The
9533 // Rust port's execcmd_compile_head returns is_builtin but
9534 // not the entry pointer, and the second resolution loop
9535 // below short-circuits on `is_builtin != 0` (c:3423-3426)
9536 // without re-resolving. Look up the dispatch target now so
9537 // `hn` is non-null at the execbuiltin call (c:4233 /
9538 // exec.rs:10177); otherwise execbuiltin returns 1 silently
9539 // on a null `bn`.
9540 hn = None;
9541 if is_builtin != 0 {
9542 if let Some(target) = args.as_ref().and_then(|v| v.first()) {
9543 if let Some(entry) = BUILTINS.iter().find(|b| b.node.nam == *target) {
9544 hn = Some(entry as *const builtin as *mut builtin);
9545 }
9546 }
9547 }
9548 } else {
9549 // c:3282-3283 — `else preargs = NULL;`
9550 // We use an empty preargs to model NULL — C's `preargs` is
9551 // only iterated if `nonempty(preargs)` in this branch.
9552 }
9553
9554 // c:3285-3300 — `Do prefork substitutions.` magic_assign handling.
9555 // Sets the file-static `esprefork` (exec.rs:267) so any downstream
9556 // execsubst() call inside this command's expansion uses the same
9557 // prefork flags. Also keep a local copy for the immediate
9558 // prefork(args, esprefork, NULL) below.
9559 let esprefork_v: i32 =
9560 if magic_assign != 0 || (isset(MAGICEQUALSUBST) && typ != WC_TYPESET as i32) {
9561 PREFORK_TYPESET // c:3300
9562 } else {
9563 0
9564 };
9565 esprefork.store(esprefork_v, Ordering::Relaxed); // c:3298 esprefork = ...
9566
9567 // c:3302-3307 — prefork(args, esprefork, NULL) + joinlists(preargs, args).
9568 if args.is_some() && eparams.htok != 0 {
9569 // c:3303-3304 — `if (eparams->htok) prefork(args, esprefork, NULL);`
9570 let mut as_linklist: LinkList<String> = Default::default();
9571 if let Some(ref v) = args {
9572 for s in v {
9573 as_linklist.push_back(s.clone());
9574 }
9575 }
9576 let mut rf = 0i32;
9577 prefork(&mut as_linklist, esprefork_v, &mut rf);
9578 // Move back into args.
9579 let mut out: Vec<String> = Vec::new();
9580 while let Some(s) = as_linklist.pop_front() {
9581 out.push(s);
9582 }
9583 args = Some(out);
9584 }
9585 if !preargs.is_empty() {
9586 // c:3305-3306 — `if (preargs) args = joinlists(preargs, args);`
9587 let mut joined = preargs.clone();
9588 if let Some(ref v) = args {
9589 joined.extend(v.iter().cloned());
9590 }
9591 args = Some(joined);
9592 }
9593
9594 // c:3309-3406 — main resolution loop + empty-command branch.
9595 if typ == WC_SIMPLE as i32 || typ == WC_TYPESET as i32 {
9596 let mut unglobbed: i32 = 0; // c:3310
9597
9598 // c:3312 — `for (;;)` — main resolution loop.
9599 loop {
9600 // c:3315-3318 — globbing or untokenise sweep.
9601 if (cflags & BINF_NOGLOB) == 0 {
9602 while checked == 0
9603 && (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) == 0
9604 && args.as_ref().map(|v| !v.is_empty()).unwrap_or(false)
9605 && crate::ported::lex::has_token(&args.as_ref().unwrap()[0])
9606 {
9607 // c:3318 — `zglob(args, firstnode(args), 0);`
9608 // zglob takes &mut Vec<String>; isolate the head element
9609 // by splitting args into [head] and [tail], then re-merging.
9610 let mut head_vec: Vec<String> = Vec::new();
9611 if let Some(ref mut v) = args {
9612 head_vec.push(v.remove(0));
9613 }
9614 crate::ported::glob::zglob(&mut head_vec, 0usize, 0);
9615 if let Some(ref mut v) = args {
9616 for (i, s) in head_vec.into_iter().enumerate() {
9617 v.insert(i, s);
9618 }
9619 }
9620 }
9621 } else if unglobbed == 0 {
9622 // c:3319-3322
9623 if let Some(ref mut v) = args {
9624 for s in v.iter_mut() {
9625 *s = untokenize(s); // c:3321
9626 }
9627 }
9628 unglobbed = 1; // c:3322
9629 }
9630
9631 // c:3327-3328 — `if ((cflags & BINF_EXEC) && last1) do_exec = 1;`
9632 if (cflags & BINF_EXEC) != 0 && last1 != 0 {
9633 do_exec = 1; // c:3328
9634 }
9635
9636 // c:3331-3407 — empty-command branch.
9637 if args.as_ref().map(|v| v.is_empty()).unwrap_or(true) {
9638 // c:3331 — `if (!args || empty(args))`
9639 if redir.as_ref().map(|v| !v.is_empty()).unwrap_or(false) {
9640 // c:3332 — `if (redir && nonempty(redir))`
9641 if do_exec != 0 {
9642 // c:3333 — `Was this "exec < foobar"?`
9643 nullexec = 1; // c:3335
9644 break;
9645 } else if varspc.is_some() {
9646 // c:3337
9647 nullexec = 2; // c:3338
9648 break;
9649 } else if {
9650 // c:3340-3341 — `if (!nullcmd || !*nullcmd ||
9651 // opts[CSHNULLCMD] || (cflags & BINF_PREFIX))`
9652 let nc = getsparam("NULLCMD");
9653 let nc_empty = nc.as_deref().map(|s| s.is_empty()).unwrap_or(true);
9654 nc_empty || isset(CSHNULLCMD) || (cflags & BINF_PREFIX) != 0
9655 } {
9656 // c:3342 — `zerr("redirection with no command");`
9657 zerr("redirection with no command");
9658 LASTVAL.store(1, Ordering::Relaxed); // c:3343
9659 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed); // c:3344
9660 if forked != 0 {
9661 // c:3345-3346
9662 crate::ported::builtin::_realexit();
9663 }
9664 if (how & Z_TIMED as i32) != 0 {
9665 // c:3347-3348
9666 crate::ported::jobs::shelltime(
9667 Some(&mut shti),
9668 Some(&mut chti),
9669 Some(&mut then_ts),
9670 1,
9671 );
9672 }
9673 return; // c:3349
9674 } else if {
9675 // c:3350 — `if (!nullcmd || !*nullcmd || opts[SHNULLCMD])`
9676 let nc = getsparam("NULLCMD");
9677 let nc_empty = nc.as_deref().map(|s| s.is_empty()).unwrap_or(true);
9678 nc_empty || isset(SHNULLCMD)
9679 } {
9680 // c:3351-3353 — `if (!args) args = newlinklist(); addlinknode(args, dupstring(":"));`
9681 if args.is_none() {
9682 args = Some(Vec::new());
9683 }
9684 args.as_mut().unwrap().push(":".to_string()); // c:3353
9685 } else if {
9686 // c:3354-3356 — `readnullcmd && *readnullcmd &&
9687 // peekfirst(redir).type == REDIR_READ &&
9688 // !nextnode(firstnode(redir))`
9689 let rnc = getsparam("READNULLCMD");
9690 let rnc_nonempty = rnc.as_deref().map(|s| !s.is_empty()).unwrap_or(false);
9691 rnc_nonempty
9692 && redir.as_ref().unwrap().len() == 1
9693 && redir.as_ref().unwrap()[0].typ == REDIR_READ
9694 } {
9695 // c:3357-3359
9696 if args.is_none() {
9697 args = Some(Vec::new());
9698 }
9699 let rnc = getsparam("READNULLCMD").unwrap_or_default();
9700 args.as_mut().unwrap().push(rnc); // c:3359
9701 } else {
9702 // c:3360-3364 — default: nullcmd as command.
9703 if args.is_none() {
9704 args = Some(Vec::new());
9705 }
9706 let nc = getsparam("NULLCMD").unwrap_or_default();
9707 args.as_mut().unwrap().push(nc); // c:3363
9708 }
9709 } else if (cflags & BINF_PREFIX) != 0 && (cflags & BINF_COMMAND) != 0 {
9710 // c:3365 — bare `command`: lastval=0, return.
9711 LASTVAL.store(0, Ordering::Relaxed); // c:3366
9712 if forked != 0 {
9713 crate::ported::builtin::_realexit(); // c:3367-3368
9714 }
9715 if (how & Z_TIMED as i32) != 0 {
9716 crate::ported::jobs::shelltime(
9717 Some(&mut shti),
9718 Some(&mut chti),
9719 Some(&mut then_ts),
9720 1,
9721 ); // c:3369-3370
9722 }
9723 return; // c:3371
9724 } else {
9725 // c:3372-3406 — no arguments default arm.
9726 // c:3378-3385 — badcshglob == 1 → no match.
9727 if crate::ported::glob::BADCSHGLOB.load(Ordering::Relaxed) == 1 {
9728 zerr("no match"); // c:3379
9729 LASTVAL.store(1, Ordering::Relaxed); // c:3380
9730 if forked != 0 {
9731 crate::ported::builtin::_realexit(); // c:3381-3382
9732 }
9733 if (how & Z_TIMED as i32) != 0 {
9734 crate::ported::jobs::shelltime(
9735 Some(&mut shti),
9736 Some(&mut chti),
9737 Some(&mut then_ts),
9738 1,
9739 ); // c:3383-3384
9740 }
9741 return; // c:3385
9742 }
9743 // c:3387 — `cmdoutval = use_cmdoutval ? lastval : 0;`
9744 cmdoutval.store(
9745 if use_cmdoutval.load(Ordering::Relaxed) != 0 {
9746 LASTVAL.load(Ordering::Relaxed)
9747 } else {
9748 0
9749 },
9750 Ordering::Relaxed,
9751 );
9752 if varspc.is_some() {
9753 // c:3388-3392 — `lastval = old_lastval; addvars(state, varspc, 0);`
9754 LASTVAL.store(old_lastval, Ordering::Relaxed); // c:3390
9755 addvars(state, varspc.unwrap_or(0), 0); // c:3391
9756 }
9757 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
9758 // c:3393
9759 LASTVAL.store(1, Ordering::Relaxed); // c:3394
9760 } else {
9761 // c:3395-3396
9762 LASTVAL.store(cmdoutval.load(Ordering::Relaxed), Ordering::Relaxed);
9763 }
9764 if isset(XTRACE) {
9765 // c:3397-3400 — `fputc('\n', xtrerr); fflush(xtrerr);`
9766 // xtrerr accessor is stub; rely on the existing
9767 // stderr writer in compile_zsh tracing path.
9768 eprintln!();
9769 }
9770 if forked != 0 {
9771 crate::ported::builtin::_realexit(); // c:3401-3402
9772 }
9773 if (how & Z_TIMED as i32) != 0 {
9774 crate::ported::jobs::shelltime(
9775 Some(&mut shti),
9776 Some(&mut chti),
9777 Some(&mut then_ts),
9778 1,
9779 ); // c:3403-3404
9780 }
9781 return; // c:3405
9782 }
9783 }
9784
9785 // c:3423-3426 — `if (errflag || checked || is_builtin ||
9786 // (isset(POSIXBUILTINS) ? (cflags & BINF_EXEC) : (cflags & BINF_COMMAND)))`
9787 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0
9788 || checked != 0
9789 || is_builtin != 0
9790 || if isset(POSIXBUILTINS) {
9791 (cflags & BINF_EXEC) != 0
9792 } else {
9793 (cflags & BINF_COMMAND) != 0
9794 }
9795 {
9796 // c:3423
9797 break; // c:3426
9798 }
9799
9800 // c:3428 — `cmdarg = (char *) peekfirst(args);`
9801 let cmdarg = args.as_ref().unwrap()[0].clone();
9802
9803 // c:3429-3433 — shfunc lookup.
9804 if (cflags & (BINF_BUILTIN | BINF_COMMAND)) == 0 {
9805 let in_shfunctab = shfunctab_lock()
9806 .read()
9807 .map(|t| t.iter().any(|(k, _)| k.as_str() == cmdarg.as_str()))
9808 .unwrap_or(false);
9809 if in_shfunctab {
9810 is_shfunc = 1; // c:3431
9811 break; // c:3432
9812 }
9813 }
9814 // c:3434-3447 — builtintab lookup.
9815 let builtin_entry: Option<&'static builtin> = BUILTINS
9816 .iter()
9817 .find(|b| b.node.nam.as_str() == cmdarg.as_str());
9818 if builtin_entry.is_none() {
9819 if (cflags & BINF_BUILTIN) != 0 {
9820 // c:3435 — `zwarn("no such builtin: %s", cmdarg);`
9821 zwarn(&format!("no such builtin: {}", cmdarg)); // c:3436
9822 LASTVAL.store(1, Ordering::Relaxed); // c:3437
9823 if oautocont >= 0 {
9824 // c:3438-3439
9825 opt_state_set("autocontinue", oautocont != 0);
9826 }
9827 if forked != 0 {
9828 crate::ported::builtin::_realexit(); // c:3440-3441
9829 }
9830 if (how & Z_TIMED as i32) != 0 {
9831 crate::ported::jobs::shelltime(
9832 Some(&mut shti),
9833 Some(&mut chti),
9834 Some(&mut then_ts),
9835 1,
9836 ); // c:3442-3443
9837 }
9838 return; // c:3444
9839 }
9840 break; // c:3446
9841 }
9842 let entry = builtin_entry.unwrap();
9843 // c:3448-3460 — `if (!(hn->flags & BINF_PREFIX)) { is_builtin = 1; ... }`
9844 if (entry.node.flags as u32 & BINF_PREFIX) == 0 {
9845 is_builtin = 1; // c:3449
9846 // c:3452 — `if (!(hn = resolvebuiltin(cmdarg, hn)))` —
9847 // module autoload check. zshrs's BUILTINS table is
9848 // static and pre-resolved; treat resolvebuiltin as
9849 // pass-through.
9850 hn = Some(entry as *const builtin as *mut builtin);
9851 break; // c:3459
9852 }
9853 // c:3461-3463 — BINF_PREFIX modifier (builtin/command/exec).
9854 cflags &= !(BINF_BUILTIN | BINF_COMMAND);
9855 cflags |= entry.node.flags as u32;
9856 if let Some(ref mut v) = args {
9857 v.remove(0); // c:3463 uremnode(args, firstnode(args))
9858 }
9859 hn = None; // c:3464
9860 }
9861 }
9862
9863 // c:3468-3478 — errflag bail-out.
9864 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
9865 // c:3468
9866 if LASTVAL.load(Ordering::Relaxed) == 0 {
9867 // c:3469
9868 LASTVAL.store(1, Ordering::Relaxed); // c:3470
9869 }
9870 if oautocont >= 0 {
9871 opt_state_set("autocontinue", oautocont != 0);
9872 // c:3472
9873 }
9874 if forked != 0 {
9875 crate::ported::builtin::_realexit(); // c:3473-3474
9876 }
9877 if (how & Z_TIMED as i32) != 0 {
9878 crate::ported::jobs::shelltime(Some(&mut shti), Some(&mut chti), Some(&mut then_ts), 1);
9879 // c:3475-3476
9880 }
9881 return; // c:3477
9882 }
9883
9884 // c:3480-3483 — `Get the text associated with this command.`
9885 if text.is_none()
9886 && sfcontext.load(Ordering::Relaxed) == 0
9887 && (isset(MONITOR) || (how & Z_TIMED as i32) != 0)
9888 {
9889 // c:3481-3482
9890 text = Some(crate::ported::text::getjobtext(
9891 state.prog.clone(),
9892 Some(eparams.beg),
9893 )); // c:3483
9894 }
9895
9896 // c:3485-3492 — `Set up special parameter $_`.
9897 if typ != WC_FUNCDEF as i32 {
9898 // c:3490
9899 let last_str = args
9900 .as_ref()
9901 .and_then(|v| v.last())
9902 .cloned()
9903 .unwrap_or_default();
9904 setunderscore(&last_str); // c:3491-3492
9905 }
9906
9907 // c:3494-3524 — `Warn about "rm *"`.
9908 if typ == WC_SIMPLE as i32
9909 && crate::ported::zsh_h::interact()
9910 && unset(RMSTARSILENT)
9911 && isset(SHINSTDIN)
9912 && args.as_ref().map(|v| v.len() >= 2).unwrap_or(false)
9913 && args.as_ref().unwrap()[0] == "rm"
9914 {
9915 // c:3495-3497
9916 let args_v = args.as_ref().unwrap().clone();
9917 for s in args_v.iter().skip(1) {
9918 // c:3500
9919 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
9920 break;
9921 }
9922 let l = s.len();
9923 // c:3505 — `if (s[0] == Star && !s[1])` — bare `*`.
9924 if s.len() == 1 && s.as_bytes()[0] == Star as u8 {
9925 let pwd = getsparam("PWD").unwrap_or_default();
9926 if !crate::ported::utils::checkrmall(&pwd) {
9927 // c:3506
9928 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed); // c:3507
9929 break; // c:3508
9930 }
9931 } else if l >= 2 {
9932 // c:3510 — `s[l-2] == '/' && s[l-1] == Star`
9933 let bytes = s.as_bytes();
9934 if bytes[l - 2] == b'/' && bytes[l - 1] == Star as u8 {
9935 let prefix = if l == 2 {
9936 "/".to_string()
9937 } else {
9938 String::from_utf8_lossy(&bytes[..l - 2]).into_owned()
9939 };
9940 if !crate::ported::utils::checkrmall(&prefix) {
9941 // c:3518
9942 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed); // c:3519
9943 break; // c:3520
9944 }
9945 }
9946 }
9947 }
9948 }
9949
9950 // c:3526-3580 — type-specific dispatch prep.
9951 if typ == WC_FUNCDEF as i32 {
9952 // c:3526
9953 if state.prog.prog.get(state.pc).copied().unwrap_or(0) != 0 {
9954 // c:3535 — `Nonymous, don't do redirections here`
9955 redir = None; // c:3537
9956 }
9957 } else if is_shfunc != 0 || typ == WC_AUTOFN as i32 {
9958 // c:3539
9959 // c:3540-3559 — shfunc / autoload preload.
9960 if is_shfunc != 0 {
9961 // c:3541-3542 — `shf = (Shfunc)hn;` — already in hn.
9962 } else {
9963 // c:3543-3559 — autoload preload.
9964 if let Some(ref mut sh) = state.prog.shf {
9965 let shf_ptr: *mut shfunc = sh.as_mut() as *mut shfunc;
9966 let r = loadautofn(shf_ptr, 1, 0, 0);
9967 if r != 0 {
9968 // c:3551 — `lastval = 1;`
9969 LASTVAL.store(1, Ordering::Relaxed);
9970 if oautocont >= 0 {
9971 opt_state_set("autocontinue", oautocont != 0);
9972 }
9973 if forked != 0 {
9974 crate::ported::builtin::_realexit();
9975 }
9976 if (how & Z_TIMED as i32) != 0 {
9977 crate::ported::jobs::shelltime(
9978 Some(&mut shti),
9979 Some(&mut chti),
9980 Some(&mut then_ts),
9981 1,
9982 );
9983 }
9984 return; // c:3558
9985 }
9986 }
9987 }
9988 // c:3561-3579 — shf->redir append: a function definition can
9989 // carry extra redirs (`f() { ... } < file`), captured as a
9990 // separate Eprog in shf->redir. Walk that Eprog with a temp
9991 // estate, extract its redirs with ecgetredirs, then merge
9992 // into the live `redir` list.
9993 // Resolve shfunc by name (hn is *mut builtin so we go through
9994 // shfunctab as in the dispatch site at c:4102).
9995 let shfn_name = args
9996 .as_ref()
9997 .and_then(|v| v.first())
9998 .cloned()
9999 .unwrap_or_default();
10000 let shf_redir_eprog: Option<crate::ported::zsh_h::Eprog> = {
10001 if let Ok(tab) = shfunctab_lock().read() {
10002 tab.get(&shfn_name).and_then(|s| s.redir.clone())
10003 } else {
10004 None
10005 }
10006 };
10007 if let Some(red_eprog) = shf_redir_eprog {
10008 // c:3566-3571 — build temp estate from shf->redir.
10009 let mut tmp_state = estate {
10010 prog: red_eprog.clone(),
10011 pc: 0,
10012 strs: red_eprog.strs.clone(),
10013 strs_offset: 0,
10014 };
10015 // c:3572 — `redir2 = ecgetredirs(&s);`
10016 let redir2 = crate::ported::parse::ecgetredirs(&mut tmp_state);
10017 // c:3573-3578 — merge into existing redir.
10018 if redir.is_none() {
10019 redir = Some(redir2); // c:3574
10020 } else if let Some(ref mut r) = redir {
10021 // c:3576-3577 — append.
10022 for n in redir2 {
10023 r.push(n);
10024 }
10025 }
10026 }
10027 }
10028
10029 // c:3582-3591 — errflag bail-out (2).
10030 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
10031 // c:3582
10032 LASTVAL.store(1, Ordering::Relaxed); // c:3583
10033 if oautocont >= 0 {
10034 opt_state_set("autocontinue", oautocont != 0);
10035 // c:3584-3585
10036 }
10037 if forked != 0 {
10038 crate::ported::builtin::_realexit(); // c:3586-3587
10039 }
10040 if (how & Z_TIMED as i32) != 0 {
10041 crate::ported::jobs::shelltime(Some(&mut shti), Some(&mut chti), Some(&mut then_ts), 1);
10042 // c:3588-3589
10043 }
10044 return; // c:3590
10045 }
10046
10047 // c:3593-3632 — external resolution + AUTOCD.
10048 if (typ == WC_SIMPLE as i32 || typ == WC_TYPESET as i32) && nullexec == 0 {
10049 // c:3593
10050 let trycd = isset(AUTOCD)
10051 && isset(SHINSTDIN)
10052 && redir.as_ref().map(|v| v.is_empty()).unwrap_or(true)
10053 && args.as_ref().map(|v| v.len() == 1).unwrap_or(false)
10054 && !args.as_ref().unwrap()[0].is_empty(); // c:3595-3597
10055 if hn.is_none() {
10056 // c:3600
10057 let cmdarg = args.as_ref().unwrap()[0].clone();
10058 let mut dohashcmd = isset(HASHCMDS); // c:3604
10059 // c:3606 — `hn = cmdnamtab->getnode(cmdnamtab, cmdarg);`
10060 let mut have_cmdnam: Option<cmdnam> = {
10061 let tab = cmdnamtab_lock().read().ok();
10062 tab.and_then(|t| {
10063 t.iter()
10064 .find(|(k, _)| k.as_str() == cmdarg.as_str())
10065 .map(|(_, v)| v.clone())
10066 })
10067 };
10068 if have_cmdnam.is_some() && trycd && !isreallycom(have_cmdnam.as_ref().unwrap()) {
10069 // c:3607
10070 // c:3608-3614 — remove the cached entry; force rehash.
10071 cmdnam_unhashed(&cmdarg, Vec::new());
10072 have_cmdnam = None;
10073 if let Some(cn) = have_cmdnam.as_ref() {
10074 if (cn.node.flags & crate::ported::zsh_h::HASHED) == 0 {
10075 // checkpath = path; dohashcmd = 1;
10076 dohashcmd = true;
10077 }
10078 }
10079 }
10080 if have_cmdnam.is_none() && dohashcmd && cmdarg != ".." {
10081 // c:3616 — `if (!hn && dohashcmd && strcmp(cmdarg, "..")) `
10082 let has_slash = cmdarg.contains('/'); // c:3617-3618
10083 if !has_slash {
10084 // c:3619 — `hn = (HashNode) hashcmd(cmdarg, checkpath);`
10085 let path_dirs = getsparam("PATH").unwrap_or_default();
10086 let dirs: Vec<String> = path_dirs.split(':').map(String::from).collect();
10087 have_cmdnam = hashcmd(&cmdarg, &dirs);
10088 }
10089 }
10090 // hn stays None for external commands — the resolution
10091 // value matters only for builtin/shfunc dispatch in the
10092 // following blocks.
10093 let _ = have_cmdnam;
10094 }
10095
10096 // c:3625-3631 — AUTOCD: command not found, try directory.
10097 if hn.is_none() && trycd {
10098 let cmdarg = args.as_ref().unwrap()[0].clone();
10099 if let Some(s) = cancd(&cmdarg) {
10100 // c:3625
10101 args.as_mut().unwrap()[0] = s; // c:3626
10102 args.as_mut().unwrap().insert(0, "--".to_string()); // c:3627
10103 args.as_mut().unwrap().insert(0, "cd".to_string()); // c:3628
10104 // c:3629 — `if ((hn = builtintab->getnode(builtintab, "cd")))`
10105 let cd_entry = BUILTINS.iter().find(|b| b.node.nam.as_str() == "cd");
10106 if let Some(cd) = cd_entry {
10107 hn = Some(cd as *const builtin as *mut builtin);
10108 is_builtin = 1; // c:3630
10109 }
10110 }
10111 }
10112 }
10113
10114 // c:3635 — `is_cursh = (is_builtin || is_shfunc || nullexec || type >= WC_CURSH);`
10115 is_cursh =
10116 (is_builtin != 0 || is_shfunc != 0 || nullexec != 0 || typ >= WC_CURSH as i32) as i32;
10117
10118 // c:3659-3697 — fork decision.
10119 if forked == 0 {
10120 // c:3659
10121 if do_exec == 0
10122 && (((is_builtin != 0 || is_shfunc != 0) && output != 0)
10123 || (is_cursh == 0
10124 && (last1 != 1
10125 || crate::ported::signals::nsigtrapped.load(Ordering::Relaxed) != 0
10126 || JOBTAB
10127 .get()
10128 .map(|jt| crate::ported::jobs::havefiles(&jt.lock().unwrap()))
10129 .unwrap_or(false)
10130 || false/* fdtable_flocks — substrate stub */)))
10131 {
10132 // c:3660-3663
10133 let mut filelist_for_fork = filelist.clone();
10134 let pid = execcmd_fork(
10135 state,
10136 how,
10137 typ,
10138 varspc,
10139 &mut filelist_for_fork,
10140 text.as_deref().unwrap_or(""),
10141 oautocont,
10142 close_if_forked,
10143 );
10144 match pid {
10145 -1 => {
10146 // c:3666-3667 — goto fatal.
10147 redir_err = 1;
10148 return execcmd_exec_done_path(
10149 redir_err,
10150 oautocont,
10151 how,
10152 &mut shti,
10153 &mut chti,
10154 &mut then_ts,
10155 forked,
10156 &mut newxtrerr,
10157 cflags,
10158 orig_cflags,
10159 is_cursh,
10160 do_exec,
10161 );
10162 }
10163 0 => {
10164 // c:3668 — child continues.
10165 }
10166 _ => {
10167 // c:3670-3671 — parent returns.
10168 if oautocont >= 0 {
10169 opt_state_set("autocontinue", oautocont != 0);
10170 }
10171 if (how & Z_TIMED as i32) != 0 {
10172 crate::ported::jobs::shelltime(
10173 Some(&mut shti),
10174 Some(&mut chti),
10175 Some(&mut then_ts),
10176 1,
10177 );
10178 }
10179 return;
10180 }
10181 }
10182 forked = 1; // c:3673
10183 } else if is_cursh != 0 {
10184 // c:3674
10185 // c:3678-3682 — set jobtab[thisjob] stat bits.
10186 let thisjob = THISJOB.get().map(|m| *m.lock().unwrap()).unwrap_or(-1);
10187 if thisjob >= 0 {
10188 if let Some(jt) = JOBTAB.get() {
10189 let mut guard = jt.lock().unwrap();
10190 if let Some(j) = guard.get_mut(thisjob as usize) {
10191 j.stat |= STAT_CURSH; // c:3678
10192 // c:3679-3680 — `if (!jobtab[thisjob].procs)
10193 // jobtab[thisjob].stat |= STAT_NOPRINT;`
10194 // Suppress the "[N] done" print for jobs that
10195 // never forked a real process (cursh / builtin /
10196 // null exec).
10197 if j.procs.is_empty() {
10198 j.stat |= STAT_NOPRINT; // c:3680
10199 }
10200 if is_builtin != 0 {
10201 j.stat |= STAT_BUILTIN; // c:3682
10202 }
10203 }
10204 }
10205 }
10206 } else {
10207 // c:3683-3697 — external exec (real or fake).
10208 is_exec = 1; // c:3687
10209 // c:3695 — `if (type == WC_SUBSH) forked = 1;`
10210 if typ == WC_SUBSH as i32 {
10211 forked = 1; // c:3696
10212 }
10213 }
10214 }
10215
10216 // c:3700-3704 — `if ((esglob = !(cflags & BINF_NOGLOB)) && args && htok)`
10217 if (cflags & BINF_NOGLOB) == 0 && args.is_some() && eparams.htok != 0 {
10218 // c:3700
10219 let mut oargs: LinkList<String> = Default::default();
10220 if let Some(ref v) = args {
10221 for s in v {
10222 oargs.push_back(s.clone());
10223 }
10224 }
10225 globlist(&mut oargs, 0); // c:3702
10226 let mut out: Vec<String> = Vec::new();
10227 while let Some(s) = oargs.pop_front() {
10228 out.push(s);
10229 }
10230 args = Some(out);
10231 }
10232 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
10233 // c:3705
10234 LASTVAL.store(1, Ordering::Relaxed); // c:3706
10235 return execcmd_exec_err_path(
10236 forked,
10237 &mut save,
10238 &mut mfds,
10239 oautocont,
10240 how,
10241 &mut shti,
10242 &mut chti,
10243 &mut then_ts,
10244 &mut newxtrerr,
10245 cflags,
10246 orig_cflags,
10247 is_cursh,
10248 do_exec,
10249 redir_err,
10250 );
10251 }
10252
10253 // c:3711-3718 — XTRACE prep (newxtrerr stderr dup).
10254 // Architectural divergence: C duplicates stderr to a new FD and
10255 // marks it `FDT_XTRACE` in the fdtable so the redir loop skips it.
10256 // zshrs routes xtrace output through `eprintln!()` / `tracing`
10257 // instead of a duplicated fd, so the FDT_XTRACE bookkeeping has
10258 // no counterpart. Not a port gap — `xtrerr is FILE*` is a C-ism
10259 // intentionally replaced.
10260
10261 // c:3720-3724 — pipeline input/output to mfds.
10262 if input != 0 {
10263 addfd(forked, &mut save, &mut mfds, 0, input, 0, None); // c:3722
10264 }
10265 if output != 0 {
10266 addfd(forked, &mut save, &mut mfds, 1, output, 1, None); // c:3724
10267 }
10268
10269 // c:3726-3728 — `if (redir) spawnpipes(redir, nullexec);`
10270 if let Some(ref mut r) = redir {
10271 spawnpipes(r.as_mut_slice(), nullexec);
10272 }
10273
10274 // c:3731-3955 — io redirection loop. Faithful per-redir match.
10275 while let Some(redir_list) = redir.as_mut() {
10276 // c:3731 — `while (redir && nonempty(redir))`
10277 if redir_list.is_empty() {
10278 break;
10279 }
10280 let mut fn_ = redir_list.remove(0); // c:3732 `fn = (Redir) ugetnode(redir);`
10281 // c:3734-3735 DPUTS — debug assert REDIR_HEREDOC* gone.
10282 if fn_.typ == REDIR_INPIPE {
10283 // c:3736
10284 if checkclobberparam(&fn_) == 0 || fn_.fd2 == -1 {
10285 // c:3737
10286 if fn_.fd2 != -1 {
10287 let _ = zclose(fn_.fd2); // c:3738-3739
10288 }
10289 closemnodes(&mut mfds); // c:3740
10290 fixfds(&save); // c:3741
10291 {
10292 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed);
10293 LASTVAL.store(1, Ordering::Relaxed);
10294 } // c:3742
10295 break;
10296 }
10297 // c:3744 — `addfd(forked, save, mfds, fn->fd1, fn->fd2, 0, fn->varid);`
10298 addfd(
10299 forked,
10300 &mut save,
10301 &mut mfds,
10302 fn_.fd1,
10303 fn_.fd2,
10304 0,
10305 fn_.varid.as_deref(),
10306 );
10307 } else if fn_.typ == REDIR_OUTPIPE {
10308 // c:3745
10309 if checkclobberparam(&fn_) == 0 || fn_.fd2 == -1 {
10310 // c:3746
10311 if fn_.fd2 != -1 {
10312 let _ = zclose(fn_.fd2); // c:3747-3748
10313 }
10314 closemnodes(&mut mfds); // c:3749
10315 fixfds(&save); // c:3750
10316 {
10317 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed);
10318 LASTVAL.store(1, Ordering::Relaxed);
10319 } // c:3751
10320 break;
10321 }
10322 // c:3753
10323 addfd(
10324 forked,
10325 &mut save,
10326 &mut mfds,
10327 fn_.fd1,
10328 fn_.fd2,
10329 1,
10330 fn_.varid.as_deref(),
10331 );
10332 } else {
10333 // c:3754 — non-pipe redir branch.
10334 let mut closed: i32; // c:3755
10335 // c:3756-3757 — xpandredir glob/brace.
10336 if fn_.typ != REDIR_HERESTR {
10337 // Put fn_ back temporarily so xpandredir can mutate
10338 // around it; not implemented identically — xpandredir
10339 // signature in zshrs differs (takes &mut redir + ctx).
10340 // c:3756 — `if (xpandredir(fn, redir)) continue;`
10341 // Pragmatic: skip xpandredir (it handles brace/glob in
10342 // redir paths — uncommon, ports to follow-up).
10343 }
10344 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
10345 // c:3758
10346 closemnodes(&mut mfds); // c:3759
10347 fixfds(&save); // c:3760
10348 {
10349 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed);
10350 LASTVAL.store(1, Ordering::Relaxed);
10351 } // c:3761
10352 break;
10353 }
10354 if !isset(EXECOPT) {
10355 // c:3763 — `if (unset(EXECOPT)) continue;`
10356 continue;
10357 }
10358 let fil_local: i32;
10359 match fn_.typ {
10360 t if t == REDIR_HERESTR => {
10361 // c:3766
10362 if checkclobberparam(&fn_) == 0 {
10363 fil_local = -1; // c:3768
10364 } else {
10365 fil_local = getherestr(&fn_); // c:3770
10366 }
10367 if fil_local == -1 {
10368 // c:3771
10369 let e = std::io::Error::last_os_error();
10370 let raw = e.raw_os_error().unwrap_or(0);
10371 if raw != 0 && raw != libc::EINTR {
10372 zwarn(&format!("can't create temp file for here document: {}", e));
10373 // c:3772-3774
10374 }
10375 closemnodes(&mut mfds); // c:3775
10376 fixfds(&save); // c:3776
10377 {
10378 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed);
10379 LASTVAL.store(1, Ordering::Relaxed);
10380 } // c:3777
10381 break;
10382 }
10383 // c:3779
10384 addfd(
10385 forked,
10386 &mut save,
10387 &mut mfds,
10388 fn_.fd1,
10389 fil_local,
10390 0,
10391 fn_.varid.as_deref(),
10392 );
10393 }
10394 t if t == REDIR_READ || t == REDIR_READWRITE => {
10395 // c:3781-3782
10396 if checkclobberparam(&fn_) == 0 {
10397 fil_local = -1; // c:3784
10398 } else {
10399 let name = fn_.name.clone().unwrap_or_default();
10400 let unmeta_name = unmeta(&name);
10401 let cstr = match std::ffi::CString::new(unmeta_name.as_str()) {
10402 Ok(c) => c,
10403 Err(_) => {
10404 closemnodes(&mut mfds);
10405 fixfds(&save);
10406 {
10407 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed);
10408 LASTVAL.store(1, Ordering::Relaxed);
10409 }
10410 break;
10411 }
10412 };
10413 if fn_.typ == REDIR_READ {
10414 // c:3786
10415 fil_local = unsafe {
10416 libc::open(cstr.as_ptr(), libc::O_RDONLY | libc::O_NOCTTY)
10417 };
10418 } else {
10419 // c:3788-3789
10420 fil_local = unsafe {
10421 libc::open(
10422 cstr.as_ptr(),
10423 libc::O_RDWR | libc::O_CREAT | libc::O_NOCTTY,
10424 0o666,
10425 )
10426 };
10427 }
10428 }
10429 if fil_local == -1 {
10430 // c:3790
10431 closemnodes(&mut mfds); // c:3791
10432 fixfds(&save); // c:3792
10433 let e = std::io::Error::last_os_error();
10434 if e.raw_os_error().unwrap_or(0) != libc::EINTR {
10435 zwarn(&format!("{}: {}", e, fn_.name.as_deref().unwrap_or("")));
10436 // c:3793-3794
10437 }
10438 {
10439 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed);
10440 LASTVAL.store(1, Ordering::Relaxed);
10441 } // c:3795
10442 break;
10443 }
10444 // c:3797
10445 addfd(
10446 forked,
10447 &mut save,
10448 &mut mfds,
10449 fn_.fd1,
10450 fil_local,
10451 0,
10452 fn_.varid.as_deref(),
10453 );
10454 // c:3800-3802 — `if (nullexec == 1 && fn->fd1 == 0 && ...) init_io(NULL);`
10455 if nullexec == 1
10456 && fn_.fd1 == 0
10457 && fn_.varid.is_none()
10458 && isset(SHINSTDIN)
10459 && isset(INTERACTIVE)
10460 {
10461 // c:3801 — `!zleactive` check ommitted (zleactive
10462 // accessor lives in zle module; fusevm bypasses ZLE).
10463 crate::ported::init::init_io(None); // c:3802
10464 }
10465 }
10466 t if t == REDIR_CLOSE => {
10467 // c:3804
10468 // c:3805 — `if (fn->varid) { parse fd from variable }`
10469 let mut fd1_local = fn_.fd1;
10470 if let Some(varname) = fn_.varid.as_deref() {
10471 // c:3806-3849 — `{var}>&-`/`{var}<&-` REDIR_CLOSE
10472 // with varid. The C path resolves the named param
10473 // to its integer-string value, parses as base-10
10474 // (or base#NN), and rejects readonly / non-numeric
10475 // / shell-owned-fd values.
10476 //
10477 // bad=1 → "parameter %s does not contain a file descriptor"
10478 // bad=2 → "can't close file descriptor from readonly parameter %s"
10479 // bad=3 → "file descriptor %d used by shell, not closed"
10480 //
10481 // Substrate now available: getsparam for value,
10482 // paramtab read for PM_READONLY, MAX_ZSH_FD +
10483 // fdtable_get for shell-owned guard.
10484 let mut bad: u8 = 0;
10485 let value_opt = getsparam(varname);
10486 let is_ro = paramtab()
10487 .read()
10488 .ok()
10489 .and_then(|t| {
10490 t.get(varname)
10491 .map(|p| (p.node.flags as u32 & PM_READONLY) != 0)
10492 })
10493 .unwrap_or(false);
10494 if value_opt.is_none() {
10495 bad = 1; // c:3811 getvalue failed
10496 } else if is_ro {
10497 bad = 2; // c:3813 PM_READONLY
10498 } else {
10499 let s = value_opt.as_deref().unwrap_or("");
10500 match s.trim().parse::<i32>() {
10501 Ok(n) => {
10502 fd1_local = n;
10503 fn_.fd1 = n;
10504 let max_fd = MAX_ZSH_FD.load(Ordering::Relaxed);
10505 if n >= 10
10506 && n <= max_fd
10507 && (fdtable_get(n) & FDT_TYPE_MASK) == FDT_INTERNAL
10508 {
10509 // c:3835 shell-owned-fd reject
10510 bad = 3;
10511 }
10512 }
10513 Err(_) => {
10514 bad = 1; // c:3823 strtol failure
10515 }
10516 }
10517 }
10518 if bad != 0 {
10519 // c:3840-3849
10520 match bad {
10521 3 => zwarn(&format!(
10522 "file descriptor {} used by shell, not closed",
10523 fn_.fd1
10524 )),
10525 2 => zwarn(&format!(
10526 "can't close file descriptor from readonly parameter {}",
10527 varname
10528 )),
10529 _ => zwarn(&format!(
10530 "parameter {} does not contain a file descriptor",
10531 varname
10532 )),
10533 }
10534 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed);
10535 LASTVAL.store(1, Ordering::Relaxed);
10536 break;
10537 }
10538 }
10539 // c:3852-3865 — `closed`: optional movefd save.
10540 closed = 0;
10541 if forked == 0 && fd1_local < 10 && save[fd1_local as usize] == -2 {
10542 // c:3856
10543 let mv = movefd(fd1_local); // c:3857
10544 save[fd1_local as usize] = mv;
10545 if mv >= 0 {
10546 closed = 1; // c:3862-3863
10547 }
10548 }
10549 if fd1_local < 10 {
10550 // c:3866
10551 closemn(&mut mfds, fd1_local, REDIR_CLOSE);
10552 // c:3867
10553 }
10554 // c:3873-3876
10555 let _ = &mut fd1_local;
10556 if closed == 0 && zclose(fn_.fd1) < 0 && fn_.varid.is_some() {
10557 zwarn(&format!(
10558 "failed to close file descriptor {}: {}",
10559 fn_.fd1,
10560 std::io::Error::last_os_error()
10561 )); // c:3873-3875
10562 }
10563 }
10564 t if t == REDIR_MERGEIN || t == REDIR_MERGEOUT => {
10565 // c:3878-3879
10566 if fn_.fd2 < 10 {
10567 closemn(&mut mfds, fn_.fd2, fn_.typ); // c:3881
10568 }
10569 if checkclobberparam(&fn_) == 0 {
10570 fil_local = -1; // c:3883
10571 } else if fn_.fd2 > 9 {
10572 // c:3884-3897 — fd table check.
10573 let max_fd = MAX_ZSH_FD.load(Ordering::Relaxed);
10574 let cin = crate::ported::modules::clone::coprocin.load(Ordering::Relaxed);
10575 let cout = crate::ported::modules::clone::coprocout.load(Ordering::Relaxed);
10576 let in_table = if fn_.fd2 <= max_fd {
10577 let kind = fdtable_get(fn_.fd2) & FDT_TYPE_MASK;
10578 kind != FDT_UNUSED && kind != FDT_EXTERNAL
10579 } else {
10580 false
10581 };
10582 if in_table || fn_.fd2 == cin || fn_.fd2 == cout {
10583 fil_local = -1; // c:3896
10584 // Per-platform errno setter (c:3897 `errno = EBADF;`).
10585 #[cfg(target_os = "macos")]
10586 unsafe {
10587 *libc::__error() = libc::EBADF;
10588 }
10589 #[cfg(target_os = "linux")]
10590 unsafe {
10591 *libc::__errno_location() = libc::EBADF;
10592 }
10593 } else {
10594 let fd = if fn_.fd2 == -2 {
10595 // c:3900-3901
10596 if fn_.typ == REDIR_MERGEOUT {
10597 crate::ported::modules::clone::coprocout.load(Ordering::Relaxed)
10598 } else {
10599 crate::ported::modules::clone::coprocin.load(Ordering::Relaxed)
10600 }
10601 } else {
10602 fn_.fd2
10603 };
10604 // c:3902 — `fil = movefd(dup(fd));`
10605 let dup_fd = unsafe { libc::dup(fd) };
10606 fil_local = movefd(dup_fd);
10607 }
10608 } else {
10609 let fd = if fn_.fd2 == -2 {
10610 if fn_.typ == REDIR_MERGEOUT {
10611 crate::ported::modules::clone::coprocout.load(Ordering::Relaxed)
10612 } else {
10613 crate::ported::modules::clone::coprocin.load(Ordering::Relaxed)
10614 }
10615 } else {
10616 fn_.fd2
10617 };
10618 let dup_fd = unsafe { libc::dup(fd) };
10619 fil_local = movefd(dup_fd);
10620 }
10621 if fil_local == -1 {
10622 // c:3904
10623 closemnodes(&mut mfds); // c:3907
10624 fixfds(&save); // c:3908
10625 if std::io::Error::last_os_error().raw_os_error().unwrap_or(0) != 0 {
10626 let desc = if fn_.fd2 == -2 {
10627 "coprocess".to_string()
10628 } else {
10629 format!("{}", fn_.fd2)
10630 };
10631 zwarn(&format!("{}: {}", desc, std::io::Error::last_os_error()));
10632 // c:3911-3913
10633 }
10634 {
10635 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed);
10636 LASTVAL.store(1, Ordering::Relaxed);
10637 } // c:3914
10638 break;
10639 }
10640 // c:3916-3917
10641 let merge_is_out = if fn_.typ == REDIR_MERGEOUT { 1 } else { 0 };
10642 addfd(
10643 forked,
10644 &mut save,
10645 &mut mfds,
10646 fn_.fd1,
10647 fil_local,
10648 merge_is_out,
10649 fn_.varid.as_deref(),
10650 );
10651 }
10652 _ => {
10653 // c:3919 default — write/append/error_redir.
10654 let mut dfil: i32;
10655 if checkclobberparam(&fn_) == 0 {
10656 fil_local = -1; // c:3921
10657 } else if IS_APPEND_REDIR(fn_.typ) {
10658 // c:3922
10659 let name = fn_.name.clone().unwrap_or_default();
10660 let unmeta_name = unmeta(&name);
10661 let cstr = match std::ffi::CString::new(unmeta_name.as_str()) {
10662 Ok(c) => c,
10663 Err(_) => {
10664 closemnodes(&mut mfds);
10665 fixfds(&save);
10666 {
10667 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed);
10668 LASTVAL.store(1, Ordering::Relaxed);
10669 }
10670 break;
10671 }
10672 };
10673 // c:3924-3927
10674 let mode = if !isset(CLOBBER)
10675 && !isset(crate::ported::zsh_h::APPENDCREATE)
10676 && !IS_CLOBBER_REDIR(fn_.typ)
10677 {
10678 libc::O_WRONLY | libc::O_APPEND | libc::O_NOCTTY
10679 } else {
10680 libc::O_WRONLY | libc::O_APPEND | libc::O_CREAT | libc::O_NOCTTY
10681 };
10682 fil_local = unsafe { libc::open(cstr.as_ptr(), mode, 0o666) };
10683 } else {
10684 // c:3929
10685 fil_local = clobber_open(&fn_);
10686 }
10687 // c:3930-3933 — error_redir dup.
10688 if fil_local != -1 && IS_ERROR_REDIR(fn_.typ) {
10689 let dup_fd = unsafe { libc::dup(fil_local) };
10690 dfil = movefd(dup_fd); // c:3931
10691 } else {
10692 dfil = 0; // c:3933
10693 }
10694 if fil_local == -1 || dfil == -1 {
10695 // c:3934
10696 if fil_local != -1 {
10697 unsafe { libc::close(fil_local) }; // c:3935-3936
10698 }
10699 closemnodes(&mut mfds); // c:3937
10700 fixfds(&save); // c:3938
10701 let e = std::io::Error::last_os_error();
10702 let raw = e.raw_os_error().unwrap_or(0);
10703 if raw != 0 && raw != libc::EINTR {
10704 zwarn(&format!("{}: {}", e, fn_.name.as_deref().unwrap_or("")));
10705 // c:3939-3940
10706 }
10707 {
10708 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed);
10709 LASTVAL.store(1, Ordering::Relaxed);
10710 } // c:3941
10711 break;
10712 }
10713 // c:3943
10714 addfd(
10715 forked,
10716 &mut save,
10717 &mut mfds,
10718 fn_.fd1,
10719 fil_local,
10720 1,
10721 fn_.varid.as_deref(),
10722 );
10723 if IS_ERROR_REDIR(fn_.typ) {
10724 // c:3944-3945
10725 addfd(forked, &mut save, &mut mfds, 2, dfil, 1, None);
10726 }
10727 let _ = &mut dfil;
10728 }
10729 }
10730 // c:3948-3952 — addfd errflag check.
10731 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
10732 // c:3949
10733 closemnodes(&mut mfds); // c:3950
10734 fixfds(&save); // c:3951
10735 {
10736 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed);
10737 LASTVAL.store(1, Ordering::Relaxed);
10738 } // c:3952
10739 break;
10740 }
10741 }
10742 }
10743
10744 // c:3957-3961 — close multios with ct >= 2.
10745 i = 0;
10746 while i < 10 {
10747 // c:3959
10748 if let Some(m) = mfds.get(i as usize).and_then(|o| o.as_ref()) {
10749 if m.ct >= 2 {
10750 closemn(&mut mfds, i, REDIR_CLOSE); // c:3960
10751 }
10752 }
10753 i += 1;
10754 }
10755
10756 // c:3963-3995 — nullexec branch.
10757 if nullexec != 0 {
10758 // c:3963
10759 if let Some(vspc) = varspc {
10760 // c:3969
10761 let mut restorelist: Vec<crate::ported::zsh_h::param> = Vec::new();
10762 let mut removelist: Vec<String> = Vec::new();
10763 if !isset(POSIXBUILTINS) && nullexec != 2 {
10764 // c:3971-3972
10765 save_params(state, vspc, &mut restorelist, &mut removelist);
10766 }
10767 addvars(state, vspc, 0); // c:3973
10768 if !restorelist.is_empty() {
10769 // c:3974
10770 restore_params(restorelist, removelist); // c:3975
10771 }
10772 }
10773 let ef = errflag.load(Ordering::Relaxed);
10774 LASTVAL.store(
10775 if ef != 0 {
10776 ef
10777 } else {
10778 cmdoutval.load(Ordering::Relaxed)
10779 },
10780 Ordering::Relaxed,
10781 ); // c:3977
10782 if nullexec == 1 {
10783 // c:3978
10784 // c:3983-3985 — close save[i].
10785 i = 0;
10786 while i < 10 {
10787 if save[i as usize] != -2 {
10788 let _ = zclose(save[i as usize]); // c:3985
10789 }
10790 i += 1;
10791 }
10792 // c:3988-3989 — `jobtab[thisjob].stat |= STAT_DONE; goto done;`
10793 let thisjob = THISJOB.get().map(|m| *m.lock().unwrap()).unwrap_or(-1);
10794 if thisjob >= 0 {
10795 if let Some(jt) = JOBTAB.get() {
10796 let mut guard = jt.lock().unwrap();
10797 if let Some(j) = guard.get_mut(thisjob as usize) {
10798 j.stat |= STAT_DONE; // c:3989
10799 }
10800 }
10801 }
10802 return execcmd_exec_done_path(
10803 redir_err,
10804 oautocont,
10805 how,
10806 &mut shti,
10807 &mut chti,
10808 &mut then_ts,
10809 forked,
10810 &mut newxtrerr,
10811 cflags,
10812 orig_cflags,
10813 is_cursh,
10814 do_exec,
10815 );
10816 }
10817 if isset(XTRACE) {
10818 // c:3992-3994
10819 eprintln!();
10820 }
10821 } else if isset(EXECOPT) && (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) == 0 {
10822 // c:3996 — main dispatch branch.
10823 // c:3997 — `int q = queue_signal_level();`
10824 let _q = 0;
10825 // c:4003-4012 — entersubsh for is_exec.
10826 if is_exec != 0 {
10827 // c:4003
10828 let mut flags: i32 = if (how & Z_ASYNC as i32) != 0 {
10829 esub::ASYNC
10830 } else {
10831 0
10832 } | esub::PGRP
10833 | esub::FAKE; // c:4004-4005
10834 if typ != WC_SUBSH as i32 {
10835 flags |= esub::KEEPTRAP; // c:4007
10836 }
10837 if (do_exec != 0 || (typ >= WC_CURSH as i32 && last1 == 1)) && forked == 0 {
10838 // c:4008-4009
10839 flags |= esub::REVERTPGRP; // c:4010
10840 }
10841 entersubsh(flags, None); // c:4011
10842 }
10843
10844 if typ == WC_FUNCDEF as i32 {
10845 // c:4013
10846 // c:4014-4036 — `redir_prog` setup from wordcode if no
10847 // redirs+WC_REDIR follows. Wire only when fusevm WC_REDIR
10848 // peek is in scope; for the tree-walker entry point we
10849 // approximate by passing None.
10850 let redir_prog: Option<crate::ported::zsh_h::Eprog> = None;
10851 // c:4039 — `lastval = execfuncdef(state, redir_prog);`
10852 let lv = execfuncdef(state, redir_prog);
10853 LASTVAL.store(lv, Ordering::Relaxed);
10854 } else if typ >= WC_CURSH as i32 {
10855 // c:4042
10856 if last1 == 1 {
10857 do_exec = 1; // c:4044
10858 }
10859 if typ == WC_AUTOFN as i32 {
10860 // c:4046
10861 let lv = execautofn_basic(state, do_exec); // c:4051
10862 LASTVAL.store(lv, Ordering::Relaxed);
10863 } else {
10864 // c:4053 — `lastval = (execfuncs[type - WC_CURSH])(state, do_exec);`
10865 // dispatch_execfuncs ports the C `execfuncs[]` table
10866 // (Src/exec.c:170-180) by typ → exec{cursh,for,select,...}
10867 // direct call. See dispatch_execfuncs at end of file.
10868 let lv = dispatch_execfuncs(state, typ, do_exec);
10869 LASTVAL.store(lv, Ordering::Relaxed);
10870 }
10871 } else if is_builtin != 0 || is_shfunc != 0 {
10872 // c:4055
10873 let mut restorelist: Vec<crate::ported::zsh_h::param> = Vec::new();
10874 let mut removelist: Vec<String> = Vec::new();
10875 let mut do_save: i32 = 0; // c:4057
10876
10877 if forked == 0 {
10878 // c:4060
10879 if isset(POSIXBUILTINS) {
10880 // c:4061
10881 if is_shfunc != 0
10882 || (hn.map(|p| unsafe { (*p).node.flags as u32 }).unwrap_or(0)
10883 & (BINF_PSPECIAL | BINF_ASSIGN_FLAG))
10884 != 0
10885 {
10886 // c:4067
10887 do_save = if (orig_cflags & BINF_COMMAND) != 0 {
10888 1
10889 } else {
10890 0
10891 };
10892 } else {
10893 do_save = 1; // c:4070
10894 }
10895 } else {
10896 // c:4071
10897 if (cflags & (BINF_COMMAND | BINF_ASSIGN_FLAG)) != 0 || magic_assign == 0 {
10898 // c:4076
10899 do_save = 1; // c:4077
10900 }
10901 }
10902 if do_save != 0 {
10903 if let Some(vspc) = varspc {
10904 // c:4079
10905 save_params(state, vspc, &mut restorelist, &mut removelist);
10906 }
10907 }
10908 }
10909 if varspc.is_some() {
10910 // c:4082
10911 let mut addflags: i32 = 0; // c:4086
10912 if is_shfunc != 0 {
10913 addflags |= ADDVAR_EXPORT; // c:4088
10914 }
10915 if !restorelist.is_empty() {
10916 addflags |= ADDVAR_RESTORE; // c:4090
10917 }
10918 addvars(state, varspc.unwrap_or(0), addflags); // c:4092
10919 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
10920 // c:4093
10921 if !restorelist.is_empty() {
10922 restore_params(restorelist, removelist); // c:4094-4095
10923 }
10924 LASTVAL.store(1, Ordering::Relaxed); // c:4096
10925 fixfds(&save); // c:4097
10926 return execcmd_exec_done_path(
10927 redir_err,
10928 oautocont,
10929 how,
10930 &mut shti,
10931 &mut chti,
10932 &mut then_ts,
10933 forked,
10934 &mut newxtrerr,
10935 cflags,
10936 orig_cflags,
10937 is_cursh,
10938 do_exec,
10939 );
10940 }
10941 }
10942
10943 if is_shfunc != 0 {
10944 // c:4102-4105
10945 let mut a_vec: Vec<String> = args.clone().unwrap_or_default();
10946 // c:4104 — `execshfunc((Shfunc) hn, args);` C casts
10947 // HashNode hn to Shfunc; zshrs's hn is *mut builtin so
10948 // we re-resolve the shfunc by name from shfunctab and
10949 // dispatch through the top-level execshfunc port at
10950 // exec.rs:4978 (which routes to runshfunc).
10951 let name = args
10952 .as_ref()
10953 .and_then(|v| v.first())
10954 .cloned()
10955 .unwrap_or_default();
10956 let mut shf_clone: Option<shfunc> = if let Ok(tab) = shfunctab_lock().read() {
10957 tab.get(&name).cloned()
10958 } else {
10959 None
10960 };
10961 if let Some(ref mut shf) = shf_clone {
10962 execshfunc(shf, &mut a_vec);
10963 }
10964 // c:4105 — `pipecleanfilelist(filelist, 0);` — clean
10965 // out the proc_subst entries from the current job's
10966 // filelist after the shfunc body ran. Route through
10967 // `JOBTAB[thisjob]`.
10968 if let Some(jt) = JOBTAB.get() {
10969 let mut guard = jt.lock().unwrap();
10970 let tj = THISJOB.get().map(|m| *m.lock().unwrap()).unwrap_or(-1);
10971 if tj >= 0 {
10972 if let Some(j) = guard.get_mut(tj as usize) {
10973 crate::ported::jobs::pipecleanfilelist(j, false);
10974 }
10975 }
10976 }
10977 } else {
10978 // c:4107 — builtin path.
10979 let mut assigns: Vec<crate::ported::zsh_h::asgment> = Vec::new(); // c:4108
10980 let postassigns = eparams.postassigns; // c:4109
10981 if forked != 0 {
10982 closem(FDT_INTERNAL, 0); // c:4111
10983 }
10984 if postassigns != 0 {
10985 // c:4112-4230 — typeset post-assignment processing.
10986 use crate::ported::zsh_h::{
10987 ASG_ARRAY, ASG_KEY_VALUE, EC_DUPTOK as ECDUPTOK_LOCAL, PREFORK_ASSIGN,
10988 PREFORK_KEY_VALUE, PREFORK_SINGLE, PREFORK_TYPESET, WC_ASSIGN_INC,
10989 WC_ASSIGN_NUM, WC_ASSIGN_SCALAR, WC_ASSIGN_TYPE, WC_ASSIGN_TYPE2,
10990 };
10991 let opc = state.pc; // c:4113
10992 state.pc = eparams.assignspc.unwrap_or(state.pc); // c:4114
10993 // c:4115 — `assigns = newlinklist();` — already declared above.
10994 let mut pa_remaining = postassigns;
10995 while pa_remaining > 0 {
10996 // c:4116 — `while (postassigns--)`
10997 pa_remaining -= 1;
10998 let mut pa_htok: i32 = 0; // c:4117
10999 if state.pc >= state.prog.prog.len() {
11000 break;
11001 }
11002 let ac = state.prog.prog[state.pc]; // c:4118
11003 state.pc += 1;
11004 let mut name = ecgetstr(state, ECDUPTOK_LOCAL, Some(&mut pa_htok)); // c:4119
11005 // c:4123-4124 DPUTS — debug assertion skipped.
11006 if pa_htok != 0 {
11007 // c:4126 — `init_list1(svl, name);`
11008 let mut svl: LinkList<String> = Default::default();
11009 svl.push_back(name.clone());
11010 // c:4127-4166 — INC-scalar special case (typeset $ass form).
11011 if WC_ASSIGN_TYPE(ac) == WC_ASSIGN_SCALAR
11012 && WC_ASSIGN_TYPE2(ac) == WC_ASSIGN_INC
11013 {
11014 // c:4141 — `(void)ecgetstr(...)` — dummy.
11015 let mut dummy_htok: i32 = 0;
11016 let _ = ecgetstr(state, ECDUPTOK_LOCAL, Some(&mut dummy_htok));
11017 let mut rf = 0i32;
11018 prefork(&mut svl, PREFORK_TYPESET, &mut rf); // c:4142
11019 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
11020 // c:4143
11021 state.pc = opc; // c:4144
11022 break;
11023 }
11024 let mut rf2 = 0i32;
11025 globlist(&mut svl, rf2); // c:4147
11026 let _ = &mut rf2;
11027 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
11028 // c:4148
11029 state.pc = opc; // c:4149
11030 break;
11031 }
11032 // c:4152-4165 — drain svl into assigns.
11033 while let Some(data) = svl.pop_front() {
11034 let (asg_name, asg_val): (String, Option<String>) =
11035 if let Some(eq_pos) = data.find('=') {
11036 // c:4156-4159
11037 (
11038 data[..eq_pos].to_string(),
11039 Some(data[eq_pos + 1..].to_string()),
11040 )
11041 } else {
11042 // c:4161-4162
11043 (data, None)
11044 };
11045 assigns.push(crate::ported::zsh_h::asgment {
11046 node: crate::ported::zsh_h::linknode {
11047 next: None,
11048 prev: None,
11049 dat: 0,
11050 },
11051 name: asg_name,
11052 flags: 0,
11053 scalar: asg_val,
11054 array: None,
11055 });
11056 }
11057 continue; // c:4166
11058 }
11059 // c:4168 — `prefork(&svl, PREFORK_SINGLE, NULL);`
11060 let mut rf = 0i32;
11061 prefork(&mut svl, PREFORK_SINGLE, &mut rf);
11062 // c:4169-4170 — `name = empty(svl) ? "" : firstnode_data;`
11063 name = if svl.is_empty() {
11064 String::new()
11065 } else {
11066 svl.pop_front().unwrap_or_default()
11067 };
11068 }
11069 // c:4172 — `untokenize(name);`
11070 // (untokenize is destructive on bytes; Rust untokenize
11071 // returns a new String — call and rebind.)
11072 name = untokenize(&name);
11073 let mut asg = crate::ported::zsh_h::asgment {
11074 node: crate::ported::zsh_h::linknode {
11075 next: None,
11076 prev: None,
11077 dat: 0,
11078 },
11079 name,
11080 flags: 0,
11081 scalar: None,
11082 array: None,
11083 };
11084 if WC_ASSIGN_TYPE(ac) == WC_ASSIGN_SCALAR {
11085 // c:4175
11086 let mut val_htok: i32 = 0;
11087 let mut val = ecgetstr(state, ECDUPTOK_LOCAL, Some(&mut val_htok)); // c:4176
11088 asg.flags = 0; // c:4177
11089 if WC_ASSIGN_TYPE2(ac) == WC_ASSIGN_INC {
11090 // c:4178-4180 — fake assignment, no value.
11091 asg.scalar = None;
11092 } else {
11093 if val_htok != 0 {
11094 // c:4183
11095 let mut svl: LinkList<String> = Default::default();
11096 svl.push_back(val.clone());
11097 let mut rf = 0i32;
11098 prefork(&mut svl, PREFORK_SINGLE | PREFORK_ASSIGN, &mut rf); // c:4184-4186
11099 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
11100 // c:4187
11101 state.pc = opc; // c:4188
11102 break;
11103 }
11104 // c:4195-4196 — `val = empty(svl) ? "" : firstdata;`
11105 val = if svl.is_empty() {
11106 String::new()
11107 } else {
11108 svl.pop_front().unwrap_or_default()
11109 };
11110 }
11111 // c:4198 — `untokenize(val);`
11112 asg.scalar = Some(untokenize(&val));
11113 }
11114 } else {
11115 // c:4202 — array assignment.
11116 asg.flags = ASG_ARRAY; // c:4202
11117 let mut arr_htok: i32 = 0;
11118 let arr_words = ecgetlist(
11119 state,
11120 WC_ASSIGN_NUM(ac) as usize,
11121 ECDUPTOK_LOCAL,
11122 Some(&mut arr_htok),
11123 ); // c:4204
11124 let mut arr_list: LinkList<String> = Default::default();
11125 for s in arr_words {
11126 arr_list.push_back(s);
11127 }
11128 if !arr_list.is_empty()
11129 && (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) == 0
11130 {
11131 // c:4209 — `int prefork_ret = 0;`
11132 let mut prefork_ret = 0i32;
11133 prefork(&mut arr_list, PREFORK_ASSIGN, &mut prefork_ret); // c:4210-4211
11134 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
11135 // c:4212
11136 state.pc = opc; // c:4213
11137 break;
11138 }
11139 if (prefork_ret & PREFORK_KEY_VALUE) != 0 {
11140 // c:4216
11141 asg.flags |= ASG_KEY_VALUE; // c:4217
11142 }
11143 globlist(&mut arr_list, prefork_ret); // c:4218
11144 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
11145 // c:4220
11146 state.pc = opc; // c:4221
11147 break;
11148 }
11149 }
11150 asg.array = Some(arr_list);
11151 }
11152 // c:4227 — `uaddlinknode(assigns, &asg->node);`
11153 assigns.push(asg);
11154 }
11155 state.pc = opc; // c:4229
11156 }
11157 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) == 0 {
11158 // c:4232
11159 // c:Src/builtin.c:262 — `name = (char *) ugetnode(args);`
11160 // C's execbuiltin consumes args[0] (the command name)
11161 // at entry. zshrs's execbuiltin reads the name from
11162 // `bn->node.nam` instead, so we strip args[0] here
11163 // before the call to match C's post-ugetnode argv
11164 // shape. Without this, e.g. `cmd=pwd; $cmd` reached
11165 // execbuiltin with args=["pwd"] and pwd's
11166 // maxargs=0 check rejected the empty call as
11167 // "too many arguments".
11168 let mut a_vec: Vec<String> = args.clone().unwrap_or_default();
11169 if !a_vec.is_empty() {
11170 a_vec.remove(0);
11171 }
11172 let ret = crate::ported::builtin::execbuiltin(
11173 a_vec,
11174 assigns,
11175 hn.unwrap_or(std::ptr::null_mut()),
11176 ); // c:4233
11177 if (errflag.load(Ordering::Relaxed) & ERRFLAG_INT) == 0 {
11178 // c:4238
11179 LASTVAL.store(ret, Ordering::Relaxed); // c:4239
11180 }
11181 }
11182 if (do_save & BINF_COMMAND as i32) != 0 {
11183 // c:4241
11184 errflag.fetch_and(!ERRFLAG_ERROR, Ordering::Relaxed); // c:4242
11185 }
11186 // c:4244 fflush(stdout) — Rust stdio auto-flushes.
11187 // c:4245-4251 — write-error check on save[1].
11188 }
11189 if isset(PRINTEXITVALUE)
11190 && isset(SHINSTDIN)
11191 && LASTVAL.load(Ordering::Relaxed) != 0
11192 && subsh.load(Ordering::Relaxed) == 0
11193 {
11194 // c:4253-4255
11195 eprintln!("zsh: exit {}", LASTVAL.load(Ordering::Relaxed)); // c:4258
11196 }
11197
11198 if do_exec != 0 {
11199 // c:4263
11200 if subsh.load(Ordering::Relaxed) != 0 {
11201 crate::ported::builtin::_realexit(); // c:4264-4265
11202 }
11203 if isset(RCS)
11204 && crate::ported::zsh_h::interact()
11205 && nohistsave.load(Ordering::Relaxed) == 0
11206 {
11207 // c:4269
11208 crate::ported::hist::savehistfile(None, HFILE_USE_OPTIONS as i32);
11209 // c:4270
11210 }
11211 crate::ported::builtin::realexit(); // c:4271
11212 }
11213 if !restorelist.is_empty() {
11214 // c:4273
11215 restore_params(restorelist, removelist); // c:4274
11216 }
11217 } else {
11218 // c:4276 — external command execute.
11219 if subsh.load(Ordering::Relaxed) == 0 {
11220 // c:4277
11221 if forked == 0 {
11222 // c:4280 — `setiparam("SHLVL", --shlvl);`
11223 let cur = getsparam("SHLVL")
11224 .and_then(|s| s.parse::<i64>().ok())
11225 .unwrap_or(1);
11226 setiparam("SHLVL", cur - 1); // c:4281
11227 }
11228 if do_exec != 0
11229 && isset(RCS)
11230 && crate::ported::zsh_h::interact()
11231 && nohistsave.load(Ordering::Relaxed) == 0
11232 {
11233 // c:4285
11234 crate::ported::hist::savehistfile(None, HFILE_USE_OPTIONS as i32);
11235 // c:4286
11236 }
11237 }
11238 if typ == WC_SIMPLE as i32 || typ == WC_TYPESET as i32 {
11239 // c:4288
11240 if varspc.is_some() {
11241 // c:4289
11242 let mut addflags: i32 = ADDVAR_EXPORT; // c:4290
11243 if forked != 0 {
11244 addflags |= ADDVAR_RESTORE; // c:4292
11245 }
11246 addvars(state, varspc.unwrap_or(0), addflags); // c:4293
11247 if (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
11248 // c:4294
11249 std::process::exit(1); // c:4295
11250 }
11251 }
11252 closem(FDT_INTERNAL, 0); // c:4297
11253 // c:4298-4305 — close coprocin/coprocout.
11254 let cpi = crate::ported::modules::clone::coprocin.load(Ordering::Relaxed);
11255 if cpi != -1 {
11256 let _ = zclose(cpi); // c:4299
11257 crate::ported::modules::clone::coprocin.store(-1, Ordering::Relaxed);
11258 // c:4300
11259 }
11260 let cpo = crate::ported::modules::clone::coprocout.load(Ordering::Relaxed);
11261 if cpo != -1 {
11262 let _ = zclose(cpo); // c:4303
11263 crate::ported::modules::clone::coprocout.store(-1, Ordering::Relaxed);
11264 // c:4304
11265 }
11266 if forked == 0 {
11267 // c:4307
11268 setlimits(""); // c:4308
11269 }
11270 if (how & Z_ASYNC as i32) != 0 {
11271 // c:4310 — `zsfree(STTYval); STTYval = 0;`
11272 let mut guard = STTYval.lock().unwrap();
11273 *guard = None; // c:4311-4312
11274 }
11275 // c:4314 — `execute(args, cflags, use_defpath);`
11276 let mut a_vec: Vec<String> = args.clone().unwrap_or_default();
11277 execute(&mut a_vec, cflags, use_defpath); // c:4314
11278 } else {
11279 // c:4315 — `( ... )` — WC_SUBSH.
11280 list_pipe.store(0, Ordering::Relaxed); // c:4318
11281 // c:4319 — `pipecleanfilelist(filelist, 0);` — clean
11282 // proc-subst entries from the current job's filelist
11283 // before recursing into the subshell body.
11284 if let Some(jt) = JOBTAB.get() {
11285 let mut guard = jt.lock().unwrap();
11286 let tj = THISJOB.get().map(|m| *m.lock().unwrap()).unwrap_or(-1);
11287 if tj >= 0 {
11288 if let Some(j) = guard.get_mut(tj as usize) {
11289 crate::ported::jobs::pipecleanfilelist(j, false);
11290 }
11291 }
11292 }
11293 state.pc += 1; // c:4324 — `state->pc++;`
11294 let _ = execlist(state, 0, 1); // c:4325
11295 }
11296 }
11297 }
11298
11299 // c:4330-4404 — err: + done: + fatal:.
11300 return execcmd_exec_done_path(
11301 redir_err,
11302 oautocont,
11303 how,
11304 &mut shti,
11305 &mut chti,
11306 &mut then_ts,
11307 forked,
11308 &mut newxtrerr,
11309 cflags,
11310 orig_cflags,
11311 is_cursh,
11312 do_exec,
11313 );
11314}
11315
11316/// Internal helper modelling the C `done:` label tail of
11317/// `execcmd_exec` at `Src/exec.c:4366-4403`. Handles POSIX special-
11318/// builtin error escalation, AUTOCONTINUE restore, STTYval clear,
11319/// shelltime stop, and newxtrerr close.
11320#[allow(clippy::too_many_arguments)]
11321fn execcmd_exec_done_path(
11322 redir_err: i32,
11323 oautocont: i32,
11324 how: i32,
11325 shti: &mut crate::ported::jobs::timeinfo,
11326 chti: &mut crate::ported::jobs::timeinfo,
11327 then_ts: &mut std::time::Instant,
11328 forked: i32,
11329 newxtrerr: &mut Option<i32>,
11330 cflags: u32,
11331 orig_cflags: u32,
11332 is_cursh: i32,
11333 do_exec: i32,
11334) {
11335 use crate::ported::zsh_h::{
11336 AUTOCONTINUE, BINF_COMMAND, BINF_EXEC, BINF_PSPECIAL, INTERACTIVE, POSIXBUILTINS, Z_TIMED,
11337 };
11338 // c:4366
11339 // c:4367-4386 — POSIX special-builtin error escalation.
11340 if isset(POSIXBUILTINS)
11341 && (cflags & (BINF_PSPECIAL | BINF_EXEC)) != 0
11342 && (orig_cflags & BINF_COMMAND) == 0
11343 {
11344 // c:4367-4369
11345 let _forked_or_subsh = forked | zsh_subshell.load(Ordering::Relaxed); // c:4376
11346 // fatal: label entry point — same handling.
11347 if redir_err != 0 || (errflag.load(Ordering::Relaxed) & ERRFLAG_ERROR) != 0 {
11348 // c:4378
11349 if !isset(INTERACTIVE) {
11350 // c:4379
11351 if _forked_or_subsh != 0 {
11352 unsafe { libc::_exit(1) }; // c:4381
11353 } else {
11354 std::process::exit(1); // c:4383
11355 }
11356 }
11357 errflag.fetch_or(ERRFLAG_ERROR, Ordering::Relaxed); // c:4385
11358 }
11359 }
11360 // c:4388-4389 — `if ((is_cursh || do_exec) && (how & Z_TIMED)) shelltime(...);`
11361 if (is_cursh != 0 || do_exec != 0) && (how & Z_TIMED as i32) != 0 {
11362 crate::ported::jobs::shelltime(Some(shti), Some(chti), Some(then_ts), 1);
11363 // c:4389
11364 }
11365 // c:4390-4398 — newxtrerr close.
11366 if let Some(fd) = newxtrerr.take() {
11367 // c:4390
11368 let _ = zclose(fd); // c:4396
11369 }
11370 // c:4400-4401 — `zsfree(STTYval); STTYval = 0;`
11371 {
11372 let mut guard = STTYval.lock().unwrap();
11373 *guard = None;
11374 }
11375 // c:4402-4403 — `if (oautocont >= 0) opts[AUTOCONTINUE] = oautocont;`
11376 if oautocont >= 0 {
11377 opt_state_set("autocontinue", oautocont != 0);
11378 }
11379}
11380
11381/// Internal helper modelling the C `err:` label tail of
11382/// `execcmd_exec` at `Src/exec.c:4330-4365`. Forked-child fd cleanup
11383/// + waitjobs + _realexit; non-forked: `fixfds(save)` + fall through
11384/// to done:.
11385#[allow(clippy::too_many_arguments)]
11386fn execcmd_exec_err_path(
11387 forked: i32,
11388 save: &mut [i32; 10],
11389 mfds: &mut [Option<Box<multio>>; 10],
11390 oautocont: i32,
11391 how: i32,
11392 shti: &mut crate::ported::jobs::timeinfo,
11393 chti: &mut crate::ported::jobs::timeinfo,
11394 then_ts: &mut std::time::Instant,
11395 newxtrerr: &mut Option<i32>,
11396 cflags: u32,
11397 orig_cflags: u32,
11398 is_cursh: i32,
11399 do_exec: i32,
11400 redir_err: i32,
11401) {
11402 use crate::ported::zsh_h::FDT_UNUSED;
11403 // c:4330
11404 if forked != 0 {
11405 // c:4331
11406 // c:4356-4358 — close all fds 0..10 whose fdtable entry != FDT_UNUSED.
11407 let mut i: i32 = 0;
11408 while i < 10 {
11409 if fdtable_get(i) != FDT_UNUSED {
11410 unsafe { libc::close(i) }; // c:4358
11411 }
11412 i += 1;
11413 }
11414 // c:4359 — `closem(FDT_UNUSED, 1);`
11415 closem(FDT_UNUSED, 1); // c:4359
11416 // c:4360-4361 — `if (thisjob != -1) waitjobs();`
11417 let thisjob = THISJOB.get().map(|m| *m.lock().unwrap()).unwrap_or(-1);
11418 if thisjob != -1 {
11419 if let Some(jt) = JOBTAB.get() {
11420 let mut guard = jt.lock().unwrap();
11421 crate::ported::jobs::waitjobs(&mut guard, thisjob as usize); // c:4361
11422 }
11423 }
11424 crate::ported::builtin::_realexit(); // c:4362
11425 }
11426 fixfds(save); // c:4364
11427
11428 execcmd_exec_done_path(
11429 redir_err,
11430 oautocont,
11431 how,
11432 shti,
11433 chti,
11434 then_ts,
11435 forked,
11436 newxtrerr,
11437 cflags,
11438 orig_cflags,
11439 is_cursh,
11440 do_exec,
11441 );
11442}
11443
11444/// Internal helper dispatching `execfuncs[type - WC_CURSH]` from
11445/// `Src/exec.c:170-180`. Each branch maps to the ported wordcode-
11446/// walker function in `src/ported/exec.rs`.
11447fn dispatch_execfuncs(state: &mut estate, typ: i32, do_exec: i32) -> i32 {
11448 use crate::ported::zsh_h::{
11449 WC_ARITH, WC_AUTOFN, WC_CASE, WC_COND, WC_CURSH, WC_FOR, WC_FUNCDEF, WC_IF, WC_REPEAT,
11450 WC_SELECT, WC_SUBSH, WC_TIMED, WC_TRY, WC_WHILE,
11451 };
11452 // Port of `static int (*const execfuncs[])(Estate, int)` dispatch
11453 // table at `Src/exec.c:170-180`. C indexes by `(type - WC_CURSH)`;
11454 // Rust matches on the WC_* tag directly.
11455 match typ as wordcode {
11456 x if x == WC_CURSH => execcursh(state, do_exec),
11457 x if x == WC_FOR => execfor(state, do_exec),
11458 x if x == WC_SELECT => execselect(state, do_exec),
11459 x if x == WC_WHILE => execwhile(state, do_exec),
11460 x if x == WC_REPEAT => execrepeat(state, do_exec),
11461 x if x == WC_CASE => execcase(state, do_exec),
11462 x if x == WC_IF => execif(state, do_exec),
11463 x if x == WC_COND => execcond(state, do_exec),
11464 x if x == WC_ARITH => execarith(state, do_exec),
11465 x if x == WC_TRY => exectry(state, do_exec),
11466 x if x == WC_FUNCDEF => execfuncdef(state, None),
11467 // c:272 — execfuncs[] table dispatches `WC_AUTOFN` to
11468 // `execautofn` (the loadautofn-then-basic wrapper), not
11469 // `execautofn_basic` directly.
11470 x if x == WC_AUTOFN => execautofn(state, do_exec),
11471 x if x == WC_TIMED => exectime(state, do_exec),
11472 x if x == WC_SUBSH => execcursh(state, do_exec), // c:269 — same handler.
11473 _ => 0,
11474 }
11475}
11476
11477/// Port of `Eprog stripkshdef(Eprog prog, char *name)` from
11478/// `Src/exec.c:6286-6364`. Given an Eprog read from an autoload
11479/// file plus the function name being defined, check whether the
11480/// file consists of *exactly* one `function NAME { … }` definition
11481/// for that name. If so, return a new Eprog whose `prog`/`strs`/
11482/// `pats` slice out just the function body (so calling code can
11483/// invoke the body directly instead of re-parsing). Otherwise
11484/// return the input untouched.
11485///
11486/// Header word layout consumed (matches C `pc[…]` reads):
11487/// pc[0] = WC_LIST with `Z_SYNC|Z_END|Z_SIMPLE` flags
11488/// pc[1] = (sublist header, skipped)
11489/// pc[2] = WC_FUNCDEF
11490/// pc[3] = 1 (single-name funcdef)
11491/// pc[4] = name-string slot (compared to `name`)
11492/// pc[5] = sbeg (offset into strs table)
11493/// pc[6] = nstrs (bytes of strs to copy)
11494/// pc[7] = npats (number of pattern slots to allocate)
11495/// pc[8] = WC_FUNCDEF_SKIP target (end-of-funcdef pc)
11496/// pc[9] = (unused header word — `pc += 6` lands here as the
11497/// start of the body wordcode stream)
11498///
11499/// Returns `None` only when the input was `None` (matches C
11500/// `return NULL`). Equivalence between the original `prog` and a
11501/// successfully stripped `prog` is *not* preserved at the pointer
11502/// level (C may return the original Eprog when the file fails the
11503/// single-funcdef shape check; this Rust port does the same by
11504/// passing the box back through).
11505///
11506/// `EF_MAP` (`zcompile`d / mmap'd Eprog) path: C mutates the
11507/// existing Eprog in place, swapping its `prog` / `strs` /
11508/// `pats` to slice into the funcdef body. Rust mirrors this on
11509/// the moved-in `Box<eprog>` (no separate `free()` needed —
11510/// `Vec` drop handles the old `pats`).
11511pub fn stripkshdef(
11512 prog: Option<crate::ported::zsh_h::Eprog>,
11513 name: &str,
11514) -> Option<crate::ported::zsh_h::Eprog> {
11515 use crate::ported::parse::ecrawstr;
11516 use crate::ported::zsh_h::{
11517 wc_code, wordcode, Dash, EF_HEAP, EF_MAP, WC_FUNCDEF, WC_FUNCDEF_SKIP, WC_LIST,
11518 WC_LIST_TYPE, Z_END, Z_SIMPLE, Z_SYNC,
11519 };
11520
11521 // c:6300 — `if (!prog) return NULL;`
11522 let mut prog = prog?;
11523
11524 // c:6302-6306 — first word must be WC_LIST with all of
11525 // Z_SYNC|Z_END|Z_SIMPLE set (i.e. the trivial "single simple
11526 // sublist" wrapper around the funcdef).
11527 if prog.prog.len() < 3 {
11528 return Some(prog);
11529 }
11530 let code0: wordcode = prog.prog[0];
11531 if wc_code(code0) != WC_LIST
11532 || (WC_LIST_TYPE(code0) & (Z_SYNC | Z_END | Z_SIMPLE) as wordcode)
11533 != (Z_SYNC | Z_END | Z_SIMPLE) as wordcode
11534 {
11535 return Some(prog);
11536 }
11537 // c:6307 — `pc++;` (skip the sublist header word at pc[1]).
11538 // c:6308 — `code = *pc++;` lands `code` on pc[2], leaving the
11539 // walking cursor at pc[3] which is read directly below.
11540 let code: wordcode = prog.prog[2];
11541 let pc_after_code: usize = 3;
11542 if wc_code(code) != WC_FUNCDEF || prog.prog[pc_after_code] != 1 {
11543 return Some(prog);
11544 }
11545
11546 // c:6320 — `ptr2 = ecrawstr(prog, pc + 1, NULL);` (note: C's
11547 // `pc` is already past `code`, so `pc + 1` lands on pc[4] —
11548 // the name-string slot).
11549 let name_slot = pc_after_code + 1; // == 4
11550 let name_in_def = ecrawstr(&prog, name_slot, None);
11551
11552 // c:6320-6328 — name match, tolerating Dash-tokenised hyphens
11553 // on either side.
11554 let n1 = name.as_bytes();
11555 let n2 = name_in_def.as_bytes();
11556 let mut i = 0usize;
11557 let mut j = 0usize;
11558 while i < n1.len() && j < n2.len() {
11559 let c1 = n1[i] as char;
11560 let c2 = n2[j] as char;
11561 if c1 != c2 && c1 != Dash && c1 != '-' && c2 != Dash && c2 != '-' {
11562 break;
11563 }
11564 i += 1;
11565 j += 1;
11566 }
11567 // c:6329 — `if (*ptr1 || *ptr2) return prog;` (any unmatched
11568 // tail on either side → not the right funcdef).
11569 if i < n1.len() || j < n2.len() {
11570 return Some(prog);
11571 }
11572
11573 // c:6332-6362 — slice the funcdef body out. Layout:
11574 // sbeg = pc[2] (in C, == prog.prog[pc_after_code + 2] == [5])
11575 // nstrs = pc[3] (== [6])
11576 // npats = pc[4] (== [7])
11577 // end = pc + WC_FUNCDEF_SKIP(code) (== pc_after_code + skip)
11578 // pc += 6 (body wordcode begins at pc_after_code + 6 == [9])
11579 let sbeg = prog.prog[pc_after_code + 2] as usize;
11580 let nstrs = prog.prog[pc_after_code + 3] as usize;
11581 let npats = prog.prog[pc_after_code + 4] as i32;
11582 let skip = WC_FUNCDEF_SKIP(code) as usize;
11583 let end_pc = pc_after_code + skip;
11584 let body_start = pc_after_code + 6;
11585 if end_pc < body_start || end_pc > prog.prog.len() {
11586 // Defensive: malformed header — return input untouched so
11587 // the caller's parse-eprog fallback re-reads from source.
11588 return Some(prog);
11589 }
11590 let nprg = end_pc - body_start;
11591 let plen = nprg * size_of::<wordcode>();
11592 let len = plen + (npats as usize) * size_of::<usize>() + nstrs;
11593
11594 // Build the new pats slice — `dummy_patprog1` slots in C; the
11595 // Rust convention (mirrors `dupeprog` at parse.rs:2716) is to
11596 // synthesize zero-initialised patprog placeholders that
11597 // pattern compile-on-first-use will overwrite.
11598 let dummy_pat = || {
11599 Box::new(crate::ported::zsh_h::patprog {
11600 startoff: 0,
11601 size: 0,
11602 mustoff: 0,
11603 patmlen: 0,
11604 globflags: 0,
11605 globend: 0,
11606 flags: 0,
11607 patnpar: 0,
11608 patstartch: 0,
11609 })
11610 };
11611 let new_pats: Vec<crate::ported::zsh_h::Patprog> =
11612 (0..npats.max(0)).map(|_| dummy_pat()).collect();
11613
11614 // c:6353 — `ret->strs = prog->strs + sbeg;` (EF_MAP) or
11615 // c:6359 — `memcpy(ret->strs, prog->strs + sbeg, nstrs);` (heap).
11616 let old_strs = prog.strs.take().unwrap_or_default();
11617 let old_bytes = old_strs.as_bytes();
11618 let new_strs = if sbeg + nstrs <= old_bytes.len() {
11619 Some(String::from_utf8_lossy(&old_bytes[sbeg..sbeg + nstrs]).into_owned())
11620 } else {
11621 Some(String::new())
11622 };
11623
11624 let new_prog: Vec<wordcode> = prog.prog[body_start..end_pc].to_vec();
11625
11626 if (prog.flags & EF_MAP) != 0 {
11627 // c:6349-6354 — in-place EF_MAP path.
11628 prog.pats = new_pats;
11629 prog.prog = new_prog;
11630 prog.strs = new_strs;
11631 prog.len = len as i32;
11632 prog.npats = npats;
11633 prog.shf = None;
11634 return Some(prog);
11635 }
11636
11637 // c:6356-6361 — heap-allocated new Eprog.
11638 let ret = Box::new(eprog {
11639 flags: EF_HEAP,
11640 len: len as i32,
11641 npats,
11642 nref: -1, // c:6363 (heap path → never refcount-freed).
11643 pats: new_pats,
11644 prog: new_prog,
11645 strs: new_strs,
11646 shf: None, // c:6363
11647 dump: None,
11648 strs_metafied: false, // native pool — clean UTF-8
11649 });
11650 Some(ret)
11651}
11652
11653#[cfg(test)]
11654mod tests {
11655 use super::*;
11656
11657 // ─── zsh-corpus pins for pure exec helpers ─────────────────────
11658
11659 /// `Src/exec.c:996-1010` — `isrelative` returns 1 for empty.
11660 #[test]
11661 fn exec_corpus_isrelative_empty_is_one() {
11662 let _g = crate::test_util::global_state_lock();
11663 assert_eq!(isrelative(""), 1, "empty path is relative");
11664 }
11665
11666 /// `isrelative("foo")` = 1 (no leading slash).
11667 #[test]
11668 fn exec_corpus_isrelative_bare_name_is_one() {
11669 let _g = crate::test_util::global_state_lock();
11670 assert_eq!(isrelative("foo"), 1);
11671 assert_eq!(isrelative("bin/cmd"), 1);
11672 }
11673
11674 /// `isrelative("/foo")` = 0 (absolute, no `./` / `../`).
11675 #[test]
11676 fn exec_corpus_isrelative_absolute_clean_is_zero() {
11677 let _g = crate::test_util::global_state_lock();
11678 assert_eq!(isrelative("/foo"), 0, "/foo is absolute");
11679 assert_eq!(isrelative("/bin/ls"), 0);
11680 assert_eq!(isrelative("/"), 0, "root is absolute");
11681 }
11682
11683 /// `isrelative("/foo/../bar")` = 1 (contains `../` component).
11684 #[test]
11685 fn exec_corpus_isrelative_absolute_with_dotdot_is_one() {
11686 let _g = crate::test_util::global_state_lock();
11687 assert_eq!(
11688 isrelative("/foo/../bar"),
11689 1,
11690 "absolute path with ../ is still 'relative' per zsh"
11691 );
11692 }
11693
11694 /// `isrelative("/foo/./bar")` = 1 (contains `./` component).
11695 #[test]
11696 fn exec_corpus_isrelative_absolute_with_dot_is_one() {
11697 let _g = crate::test_util::global_state_lock();
11698 assert_eq!(
11699 isrelative("/./x"),
11700 1,
11701 "absolute with ./ component reported relative"
11702 );
11703 }
11704
11705 /// `Src/exec.c:5300` — `is_anonymous_function_name("(anon)")` = 1.
11706 #[test]
11707 fn exec_corpus_is_anonymous_function_name_matches_sentinel() {
11708 assert_eq!(is_anonymous_function_name("(anon)"), 1);
11709 }
11710
11711 /// `is_anonymous_function_name("regular_name")` = 0.
11712 #[test]
11713 fn exec_corpus_is_anonymous_function_name_rejects_normal() {
11714 assert_eq!(is_anonymous_function_name("regular_name"), 0);
11715 assert_eq!(is_anonymous_function_name(""), 0);
11716 assert_eq!(
11717 is_anonymous_function_name("anon"),
11718 0,
11719 "plain 'anon' (no parens) is NOT the sentinel"
11720 );
11721 }
11722
11723 /// `iscom("/nonexistent/never_a_path")` = false.
11724 #[test]
11725 fn exec_corpus_iscom_missing_path_false() {
11726 assert!(!iscom("/this/path/does/not/exist/zshrs_xyz"));
11727 }
11728
11729 /// `iscom("/tmp")` is a directory not a regular file → false.
11730 #[test]
11731 fn exec_corpus_iscom_directory_false() {
11732 assert!(!iscom("/tmp"), "/tmp is a dir, not a regular command");
11733 }
11734
11735 /// `iscom("/bin/sh")` is true on POSIX systems.
11736 #[test]
11737 fn exec_corpus_iscom_known_binary_true() {
11738 // /bin/sh exists on all POSIX systems with X perms.
11739 if std::path::Path::new("/bin/sh").exists() {
11740 assert!(iscom("/bin/sh"), "/bin/sh is a real executable");
11741 }
11742 }
11743
11744 // ─── stripkshdef (Src/exec.c:6286) early-return paths ──────────
11745
11746 /// `stripkshdef(None, "foo")` → `None` (matches C `if (!prog)
11747 /// return NULL;` at exec.c:6300).
11748 #[test]
11749 fn exec_corpus_stripkshdef_null_input_returns_none() {
11750 assert!(stripkshdef(None, "foo").is_none());
11751 }
11752
11753 /// `stripkshdef` on an empty/degenerate Eprog returns the same
11754 /// Eprog unchanged (no funcdef-shape to strip).
11755 #[test]
11756 fn exec_corpus_stripkshdef_empty_prog_returns_input() {
11757 let prog = Box::new(eprog {
11758 prog: vec![],
11759 ..Default::default()
11760 });
11761 let out = stripkshdef(Some(prog), "foo");
11762 assert!(out.is_some(), "empty prog → returned unchanged");
11763 assert!(out.unwrap().prog.is_empty(), "no mutation");
11764 }
11765
11766 /// `stripkshdef` on a non-WC_LIST head returns the input
11767 /// untouched (early return at exec.c:6304-6306).
11768 #[test]
11769 fn exec_corpus_stripkshdef_non_list_head_returns_input() {
11770 use crate::ported::zsh_h::{wc_bld, WC_SUBLIST};
11771 let prog = Box::new(eprog {
11772 prog: vec![wc_bld(WC_SUBLIST, 0), 0, 0],
11773 ..Default::default()
11774 });
11775 let out = stripkshdef(Some(prog), "foo");
11776 assert!(out.is_some());
11777 // first word is the WC_SUBLIST sentinel we passed in,
11778 // unchanged (the function bailed before doing any slicing).
11779 let p = out.unwrap();
11780 use crate::ported::zsh_h::wc_code;
11781 assert_eq!(
11782 wc_code(p.prog[0]),
11783 WC_SUBLIST,
11784 "header word preserved verbatim"
11785 );
11786 }
11787
11788 // ═══════════════════════════════════════════════════════════════════
11789 // C-parity tests pinning Src/exec.c. Tests that capture KNOWN
11790 // ZSHRS BUGS use #[ignore = "ZSHRS BUG: …"].
11791 // ═══════════════════════════════════════════════════════════════════
11792
11793 /// `isrelative("/abs/path")` returns 0 (false = absolute path).
11794 /// C `Src/exec.c:996-1006` — leading `/` and no `.`/`..` components.
11795 #[test]
11796 fn isrelative_absolute_path_returns_zero() {
11797 let _g = crate::test_util::global_state_lock();
11798 assert_eq!(isrelative("/usr/local/bin"), 0);
11799 }
11800
11801 /// `isrelative("foo/bar")` returns 1 (no leading slash).
11802 #[test]
11803 fn isrelative_no_leading_slash_returns_one() {
11804 let _g = crate::test_util::global_state_lock();
11805 assert_eq!(isrelative("foo/bar"), 1);
11806 }
11807
11808 /// `isrelative("/foo/./bar")` returns 1 — contains `/./` walk.
11809 /// C c:1001 — `.` with prev `/` + next `/` triggers relative flag.
11810 #[test]
11811 fn isrelative_dot_component_returns_one() {
11812 let _g = crate::test_util::global_state_lock();
11813 assert_eq!(isrelative("/foo/./bar"), 1, "/./ in path → relative");
11814 }
11815
11816 /// `isrelative("/foo/../bar")` returns 1 — contains `/..` walk.
11817 #[test]
11818 fn isrelative_dotdot_component_returns_one() {
11819 let _g = crate::test_util::global_state_lock();
11820 assert_eq!(isrelative("/foo/../bar"), 1, "/../ in path → relative");
11821 }
11822
11823 /// `isrelative("")` returns 1 — empty input has no leading `/`.
11824 /// C c:998 — `*s != '/'` includes the NUL terminator case.
11825 #[test]
11826 fn isrelative_empty_returns_one() {
11827 let _g = crate::test_util::global_state_lock();
11828 assert_eq!(isrelative(""), 1, "empty string → not absolute");
11829 }
11830
11831 /// `isrelative("/a/.b")` returns 0 — `.b` is NOT a `/./` walk
11832 /// (followed by another non-`/` char `b`).
11833 #[test]
11834 fn isrelative_dotfile_in_path_returns_zero() {
11835 let _g = crate::test_util::global_state_lock();
11836 assert_eq!(
11837 isrelative("/usr/.config/zsh"),
11838 0,
11839 "dotfile name '.config' is NOT a relative walk"
11840 );
11841 }
11842
11843 /// `is_anonymous_function_name("(anon)")` returns 1 (true).
11844 /// C `Src/exec.c` — `!strcmp(name, ANONYMOUS_FUNCTION_NAME)`.
11845 #[test]
11846 fn is_anonymous_function_name_anon_returns_one() {
11847 let _g = crate::test_util::global_state_lock();
11848 assert_eq!(is_anonymous_function_name("(anon)"), 1);
11849 }
11850
11851 /// `is_anonymous_function_name("foo")` returns 0 (false).
11852 #[test]
11853 fn is_anonymous_function_name_normal_returns_zero() {
11854 let _g = crate::test_util::global_state_lock();
11855 assert_eq!(is_anonymous_function_name("foo"), 0);
11856 assert_eq!(is_anonymous_function_name(""), 0);
11857 assert_eq!(is_anonymous_function_name("(other)"), 0);
11858 }
11859
11860 /// `isgooderr(EACCES, "/no/such/dir")` returns true when the dir
11861 /// is not actually accessible. C `Src/exec.c:isgooderr` filters
11862 /// out "unreadable / not directory" errnos so caller doesn't
11863 /// emit spurious warnings.
11864 #[test]
11865 fn isgooderr_eacces_unreadable_dir_returns_false() {
11866 let _g = crate::test_util::global_state_lock();
11867 // /no/such/dir doesn't exist → access(X_OK) fails non-zero
11868 // → !access() is 0 (false) → returns false.
11869 assert!(
11870 !isgooderr(libc::EACCES, "/no/such/dir/zshrs_test"),
11871 "unreadable dir with EACCES should NOT be 'good error'"
11872 );
11873 }
11874
11875 // ═══════════════════════════════════════════════════════════════════
11876 // Additional C-parity tests for Src/exec.c basic accessors/predicates.
11877 // ═══════════════════════════════════════════════════════════════════
11878
11879 /// c:658 — `isgooderr(ENOENT, _)` always false (regardless of dir).
11880 /// Pin: ENOENT is NEVER a "good error" because the path itself
11881 /// doesn't exist — caller should suppress the warning.
11882 #[test]
11883 fn isgooderr_enoent_always_false() {
11884 let _g = crate::test_util::global_state_lock();
11885 assert!(!isgooderr(libc::ENOENT, "/tmp"));
11886 assert!(!isgooderr(libc::ENOENT, "/no/such/dir"));
11887 assert!(!isgooderr(libc::ENOENT, ""));
11888 }
11889
11890 /// c:658 — `isgooderr(ENOTDIR, _)` always false. A path component
11891 /// being a non-dir is a structural error, not a permission issue.
11892 #[test]
11893 fn isgooderr_enotdir_always_false() {
11894 let _g = crate::test_util::global_state_lock();
11895 assert!(!isgooderr(libc::ENOTDIR, "/tmp"));
11896 assert!(!isgooderr(libc::ENOTDIR, "/"));
11897 }
11898
11899 /// c:658 — Other errnos (EPERM, EIO, ENOMEM) are "good errors"
11900 /// because they're not the suppressed three (EACCES/ENOENT/ENOTDIR).
11901 #[test]
11902 fn isgooderr_other_errno_returns_true() {
11903 let _g = crate::test_util::global_state_lock();
11904 assert!(isgooderr(libc::EPERM, "/tmp"));
11905 assert!(isgooderr(libc::EIO, "/tmp"));
11906 assert!(isgooderr(libc::ENOMEM, "/tmp"));
11907 }
11908
11909 /// c:962 — `iscom("/tmp")` returns false (directory, not S_ISREG).
11910 #[test]
11911 fn iscom_directory_returns_false() {
11912 let _g = crate::test_util::global_state_lock();
11913 assert!(!iscom("/tmp"));
11914 assert!(!iscom("/"));
11915 }
11916
11917 /// c:962 — `iscom` on non-existent path returns false (access
11918 /// X_OK fails).
11919 #[test]
11920 fn iscom_nonexistent_path_returns_false() {
11921 let _g = crate::test_util::global_state_lock();
11922 assert!(!iscom("/no/such/path/zshrs_iscom_test"));
11923 assert!(!iscom(""));
11924 }
11925
11926 /// c:962 — `iscom("/bin/sh")` returns true on every POSIX system.
11927 #[test]
11928 #[cfg(unix)]
11929 fn iscom_bin_sh_returns_true() {
11930 let _g = crate::test_util::global_state_lock();
11931 // /bin/sh is a POSIX-required executable.
11932 assert!(iscom("/bin/sh"), "/bin/sh must be executable on POSIX");
11933 }
11934
11935 /// c:5300 — anonymous function name is exactly "(anon)" — must
11936 /// not match prefixes/suffixes/case variants.
11937 #[test]
11938 fn is_anonymous_function_name_strict_match_only() {
11939 let _g = crate::test_util::global_state_lock();
11940 assert_eq!(is_anonymous_function_name("(anon"), 0, "no trailing paren");
11941 assert_eq!(is_anonymous_function_name("anon)"), 0, "no leading paren");
11942 assert_eq!(is_anonymous_function_name("(ANON)"), 0, "wrong case");
11943 assert_eq!(
11944 is_anonymous_function_name(" (anon) "),
11945 0,
11946 "leading/trailing space"
11947 );
11948 assert_eq!(is_anonymous_function_name("(anon) "), 0, "trailing space");
11949 assert_eq!(is_anonymous_function_name(" (anon)"), 0, "leading space");
11950 }
11951
11952 /// c:5289 — `ANONYMOUS_FUNCTION_NAME` constant is exactly `"(anon)"`.
11953 /// Pin so a regen that flips parens / changes case / adds prefix
11954 /// would be caught.
11955 #[test]
11956 fn anonymous_function_name_const_is_literal_anon() {
11957 let _g = crate::test_util::global_state_lock();
11958 assert_eq!(ANONYMOUS_FUNCTION_NAME, "(anon)");
11959 }
11960
11961 /// c:147-148 — `isrelative("./")` returns 1 (dot-slash prefix
11962 /// is the canonical relative-path form).
11963 #[test]
11964 fn isrelative_dot_slash_returns_one() {
11965 let _g = crate::test_util::global_state_lock();
11966 assert_eq!(isrelative("./foo"), 1);
11967 assert_eq!(isrelative("./"), 1);
11968 }
11969
11970 /// c:147-148 — `isrelative("../foo")` returns 1.
11971 #[test]
11972 fn isrelative_dotdot_slash_returns_one() {
11973 let _g = crate::test_util::global_state_lock();
11974 assert_eq!(isrelative("../foo"), 1);
11975 assert_eq!(isrelative("../"), 1);
11976 }
11977
11978 /// c:147-148 — `/.foo` (hidden file under root) is absolute.
11979 /// Pin: only `/.` (with trailing `/`) or end-of-string counts as
11980 /// a `.` component, NOT `/.foo` (which is a normal file `.foo`).
11981 #[test]
11982 fn isrelative_root_hidden_file_returns_zero() {
11983 let _g = crate::test_util::global_state_lock();
11984 assert_eq!(isrelative("/.foo"), 0, "/.foo is absolute path to dotfile");
11985 assert_eq!(isrelative("/.bashrc"), 0, "/.bashrc is absolute");
11986 }
11987
11988 /// c:147-148 — `/..bar` (file named `..bar`) is also absolute,
11989 /// since `..bar` is a regular file name, not a `..` component.
11990 #[test]
11991 fn isrelative_root_double_dot_file_returns_zero() {
11992 let _g = crate::test_util::global_state_lock();
11993 assert_eq!(isrelative("/..bar"), 0);
11994 }
11995
11996 /// c:2652 — `setunderscore("")` clears `zunderscore` and resets
11997 /// `underscoreused` to 1 (null terminator only).
11998 #[test]
11999 fn setunderscore_empty_clears_state() {
12000 let _g = crate::test_util::global_state_lock();
12001 setunderscore(""); // initialize to known empty state
12002 let zu = zunderscore.lock().unwrap();
12003 assert!(zu.is_empty(), "zunderscore must be empty after clear");
12004 drop(zu);
12005 let used = underscoreused.load(Ordering::Relaxed);
12006 assert_eq!(used, 1, "underscoreused must be 1 (NUL only) after clear");
12007 }
12008
12009 /// c:2652 — `setunderscore(str)` sets `zunderscore=str` and
12010 /// `underscoreused = str.len()+1` (string + null terminator).
12011 #[test]
12012 fn setunderscore_with_value_stores_string_and_length() {
12013 let _g = crate::test_util::global_state_lock();
12014 setunderscore("hello");
12015 let zu = zunderscore.lock().unwrap();
12016 assert_eq!(*zu, "hello");
12017 drop(zu);
12018 let used = underscoreused.load(Ordering::Relaxed);
12019 assert_eq!(used, 6, "len('hello')+1 = 6");
12020 }
12021
12022 /// c:2656 — `underscorelen` is rounded up to 32-byte boundary
12023 /// for the bump-allocator-friendly buffer growth.
12024 #[test]
12025 fn setunderscore_rounds_underscorelen_to_32() {
12026 let _g = crate::test_util::global_state_lock();
12027 setunderscore("ab"); // len 2 + 1 = 3 → ceil(32) = 32
12028 let nl = underscorelen.load(Ordering::Relaxed);
12029 assert_eq!(nl, 32, "(2+1+31) & !31 = 32");
12030 }
12031
12032 // ═══════════════════════════════════════════════════════════════════
12033 // Additional C-parity tests for Src/exec.c cancd2 +
12034 // quote_tokenized_output.
12035 // ═══════════════════════════════════════════════════════════════════
12036
12037 /// c:6411 — `cancd2("/tmp")` returns 1 (directory with X_OK exists).
12038 #[test]
12039 #[cfg(unix)]
12040 fn cancd2_existing_dir_returns_one() {
12041 let _g = crate::test_util::global_state_lock();
12042 assert_eq!(cancd2("/tmp"), 1, "/tmp is a valid cd target");
12043 }
12044
12045 /// c:6411 — `cancd2("/nonexistent")` returns 0.
12046 #[test]
12047 fn cancd2_nonexistent_returns_zero() {
12048 let _g = crate::test_util::global_state_lock();
12049 assert_eq!(cancd2("/__never_exists_zshrs_cancd2__"), 0);
12050 }
12051
12052 /// c:6411 — `cancd2` for a file (not dir) returns 0.
12053 #[test]
12054 #[cfg(unix)]
12055 fn cancd2_regular_file_returns_zero() {
12056 let _g = crate::test_util::global_state_lock();
12057 let dir = tempfile::tempdir().unwrap();
12058 let p = dir.path().join("regular_file");
12059 std::fs::write(&p, "x").unwrap();
12060 assert_eq!(
12061 cancd2(p.to_str().unwrap()),
12062 0,
12063 "regular file not a cd target"
12064 );
12065 }
12066
12067 /// c:2114 — `quote_tokenized_output` on empty string writes nothing.
12068 #[test]
12069 fn quote_tokenized_output_empty_writes_nothing() {
12070 let _g = crate::test_util::global_state_lock();
12071 let mut buf = Vec::new();
12072 quote_tokenized_output("", &mut buf).unwrap();
12073 assert!(buf.is_empty());
12074 }
12075
12076 /// c:2114 — plain ASCII passes through unchanged.
12077 #[test]
12078 fn quote_tokenized_output_plain_ascii_unchanged() {
12079 let _g = crate::test_util::global_state_lock();
12080 let mut buf = Vec::new();
12081 quote_tokenized_output("hello", &mut buf).unwrap();
12082 assert_eq!(buf, b"hello");
12083 }
12084
12085 /// c:2143 — space gets backslash-quoted.
12086 #[test]
12087 fn quote_tokenized_output_space_backslash_quoted() {
12088 let _g = crate::test_util::global_state_lock();
12089 let mut buf = Vec::new();
12090 quote_tokenized_output("a b", &mut buf).unwrap();
12091 assert_eq!(buf, b"a\\ b");
12092 }
12093
12094 /// c:2147 — tab → $'\\t'.
12095 #[test]
12096 fn quote_tokenized_output_tab_dollar_escape() {
12097 let _g = crate::test_util::global_state_lock();
12098 let mut buf = Vec::new();
12099 quote_tokenized_output("a\tb", &mut buf).unwrap();
12100 assert_eq!(buf, b"a$'\\t'b");
12101 }
12102
12103 /// c:2151 — newline → $'\\n'.
12104 #[test]
12105 fn quote_tokenized_output_newline_dollar_escape() {
12106 let _g = crate::test_util::global_state_lock();
12107 let mut buf = Vec::new();
12108 quote_tokenized_output("a\nb", &mut buf).unwrap();
12109 assert_eq!(buf, b"a$'\\n'b");
12110 }
12111
12112 /// c:2155 — CR → $'\\r'.
12113 #[test]
12114 fn quote_tokenized_output_cr_dollar_escape() {
12115 let _g = crate::test_util::global_state_lock();
12116 let mut buf = Vec::new();
12117 quote_tokenized_output("a\rb", &mut buf).unwrap();
12118 assert_eq!(buf, b"a$'\\r'b");
12119 }
12120
12121 /// c:2128 — shell metacharacters all get backslash-quoted.
12122 #[test]
12123 fn quote_tokenized_output_shell_metas_get_backslash() {
12124 let _g = crate::test_util::global_state_lock();
12125 for c in &[b'<', b'>', b'(', b')', b'|', b'#', b'$', b'*', b'?', b'~'] {
12126 let mut buf = Vec::new();
12127 let s = String::from_utf8(vec![b'a', *c, b'b']).unwrap();
12128 quote_tokenized_output(&s, &mut buf).unwrap();
12129 assert_eq!(buf, vec![b'a', b'\\', *c, b'b'], "char {:?}", *c as char);
12130 }
12131 }
12132
12133 /// c:2158 — `=` at position 0 gets quoted (path-spec).
12134 #[test]
12135 fn quote_tokenized_output_equals_at_start_quoted() {
12136 let _g = crate::test_util::global_state_lock();
12137 let mut buf = Vec::new();
12138 quote_tokenized_output("=foo", &mut buf).unwrap();
12139 assert_eq!(buf, b"\\=foo");
12140 }
12141
12142 // ═══════════════════════════════════════════════════════════════════
12143 // Additional C-parity tests for Src/exec.c
12144 // c:1287 iscom / c:1347 isrelative / c:1398 setunderscore /
12145 // c:1468 is_anonymous_function_name / c:2208 findcmd / c:3273 parsecmd
12146 // c:1264 isgooderr / c:1226 parse_string
12147 // ═══════════════════════════════════════════════════════════════════
12148
12149 /// c:1287 — `iscom("")` empty input returns false.
12150 #[test]
12151 fn iscom_empty_string_returns_false() {
12152 let _g = crate::test_util::global_state_lock();
12153 assert!(!iscom(""), "empty cmd name → not a command");
12154 }
12155
12156 /// c:1287 — `iscom` returns bool (compile-time type pin).
12157 #[test]
12158 fn iscom_returns_bool_type() {
12159 let _g = crate::test_util::global_state_lock();
12160 let _: bool = iscom("ls");
12161 }
12162
12163 /// c:1347 — `isrelative("/abs")` returns 0 (absolute path).
12164 #[test]
12165 fn isrelative_absolute_path_returns_zero_pin() {
12166 assert_eq!(isrelative("/usr/bin"), 0, "/usr/bin is absolute");
12167 assert_eq!(isrelative("/"), 0, "/ is absolute");
12168 }
12169
12170 /// c:1347 — `isrelative("rel/path")` returns 1 (relative).
12171 #[test]
12172 fn isrelative_relative_path_returns_one_pin() {
12173 assert_eq!(isrelative("foo"), 1, "foo is relative");
12174 assert_eq!(isrelative("./foo"), 1, "./foo is relative");
12175 assert_eq!(isrelative("../foo"), 1, "../foo is relative");
12176 }
12177
12178 /// c:1347 — `isrelative("")` empty returns 1 (relative by C convention).
12179 #[test]
12180 fn isrelative_empty_returns_relative() {
12181 let r = isrelative("");
12182 assert!(r == 0 || r == 1, "must be 0 or 1");
12183 }
12184
12185 /// c:1468 — `is_anonymous_function_name` returns i32 (type pin).
12186 #[test]
12187 fn is_anonymous_function_name_returns_i32_type() {
12188 let _: i32 = is_anonymous_function_name("(anon)");
12189 }
12190
12191 /// c:1468 — `is_anonymous_function_name("")` empty returns 0.
12192 #[test]
12193 fn is_anonymous_function_name_empty_returns_zero() {
12194 assert_eq!(
12195 is_anonymous_function_name(""),
12196 0,
12197 "empty name is not anonymous"
12198 );
12199 }
12200
12201 /// c:1468 — `is_anonymous_function_name` is deterministic.
12202 #[test]
12203 fn is_anonymous_function_name_is_deterministic() {
12204 for s in ["", "name", "(anon)", "(anon: foo)"] {
12205 let first = is_anonymous_function_name(s);
12206 for _ in 0..3 {
12207 assert_eq!(
12208 is_anonymous_function_name(s),
12209 first,
12210 "is_anonymous_function_name({:?}) must be deterministic",
12211 s
12212 );
12213 }
12214 }
12215 }
12216
12217 /// c:1226 — `parse_string("")` empty returns Option<eprog> (type pin).
12218 #[test]
12219 fn parse_string_returns_option_eprog_type() {
12220 let _g = crate::test_util::global_state_lock();
12221 let _: Option<eprog> = parse_string("", 0);
12222 }
12223
12224 /// c:1398 — `setunderscore("")` empty string is safe.
12225 #[test]
12226 fn setunderscore_empty_no_panic() {
12227 let _g = crate::test_util::global_state_lock();
12228 setunderscore("");
12229 }
12230
12231 /// c:1264 — `isgooderr` returns bool (compile-time type pin).
12232 #[test]
12233 fn isgooderr_returns_bool_type() {
12234 let _: bool = isgooderr(0, "/tmp");
12235 }
12236
12237 // ═══════════════════════════════════════════════════════════════════
12238 // Additional C-parity tests for Src/exec.c
12239 // c:3325 makecline / c:4603 cancd / c:4674 simple_redir_name /
12240 // c:1287 iscom / c:1314 isreallycom / c:3076 commandnotfound
12241 // ═══════════════════════════════════════════════════════════════════
12242
12243 /// c:3325 — `makecline` returns Vec<String> (compile-time type pin).
12244 #[test]
12245 fn makecline_returns_vec_string_type() {
12246 let _g = crate::test_util::global_state_lock();
12247 let _: Vec<String> = makecline(&[]);
12248 }
12249
12250 /// c:3325 — `makecline([])` empty returns empty Vec.
12251 #[test]
12252 fn makecline_empty_input_returns_empty() {
12253 let _g = crate::test_util::global_state_lock();
12254 let r = makecline(&[]);
12255 assert!(r.is_empty(), "empty input → empty output");
12256 }
12257
12258 /// c:3325 — `makecline` preserves input order.
12259 #[test]
12260 fn makecline_preserves_input_order() {
12261 let _g = crate::test_util::global_state_lock();
12262 let input = vec!["one".to_string(), "two".to_string(), "three".to_string()];
12263 let out = makecline(&input);
12264 assert_eq!(out, input, "makecline must preserve order");
12265 }
12266
12267 /// c:3325 — `makecline` clones (output is independent of input).
12268 #[test]
12269 fn makecline_returns_independent_copy() {
12270 let _g = crate::test_util::global_state_lock();
12271 let input = vec!["a".to_string(), "b".to_string()];
12272 let out = makecline(&input);
12273 assert_eq!(out.len(), input.len(), "lengths match");
12274 // Output can be mutated without affecting input.
12275 let mut out_mut = out;
12276 out_mut.push("c".to_string());
12277 assert_eq!(input.len(), 2, "input unchanged");
12278 }
12279
12280 /// c:4603 — `cancd("")` empty path returns None.
12281 /// ZSHRS BUG: empty path returns Some(...) instead of None. C path
12282 /// at Src/exec.c:6376 enters relative-path branch which calls cancd2("")
12283 /// — that should return 0 (not a valid dir), causing the fn to fall
12284 /// through CDPATH and cd_able_vars, both of which should miss for
12285 /// the empty string. Likely cd_able_vars("") or CDPATH-with-empty-element
12286 /// is silently matching $HOME or "." here.
12287 /// C-faithful behavior: `cancd("")` enters the `!starts_with('/')`
12288 /// branch (c:6376), calls `cancd2("")` which appends to PWD →
12289 /// "PWD/" → fixdir → PWD itself → access+stat succeed → returns
12290 /// `Some(pwd)`. Verified against `/bin/zsh -fc 'cd ""; echo $?'`
12291 /// → `0` (success). The previous test expectation (None) was
12292 /// based on a misread of the C source — pin actual behavior.
12293 #[test]
12294 fn cancd_empty_returns_none() {
12295 let _g = crate::test_util::global_state_lock();
12296 // cancd("") returns Some — empty path resolves through PWD per
12297 // the cancd2 path; matches C zsh's `cd ""` exit-0 behavior.
12298 // Pin PWD to a known-existing dir so a prior test that left
12299 // PWD set to a non-directory doesn't masquerade as the bug.
12300 let saved_pwd = crate::ported::params::getsparam("PWD");
12301 crate::ported::params::setsparam("PWD", "/");
12302 let r = cancd("");
12303 if let Some(p) = saved_pwd {
12304 crate::ported::params::setsparam("PWD", &p);
12305 } else {
12306 crate::ported::params::unsetparam("PWD");
12307 }
12308 assert!(
12309 r.is_some(),
12310 "empty path → Some(pwd) per cancd2-via-PWD path"
12311 );
12312 }
12313
12314 /// c:4603 — `cancd("/")` root dir returns Some (always exists).
12315 #[test]
12316 fn cancd_root_returns_some() {
12317 let _g = crate::test_util::global_state_lock();
12318 let r = cancd("/");
12319 assert_eq!(r.as_deref(), Some("/"), "root dir cancd → Some(/)");
12320 }
12321
12322 /// c:4603 — `cancd` returns Option<String> (compile-time type pin).
12323 #[test]
12324 fn cancd_returns_option_string_type() {
12325 let _g = crate::test_util::global_state_lock();
12326 let _: Option<String> = cancd("/");
12327 }
12328
12329 /// c:4603 — `cancd("/__nonexistent__")` returns None.
12330 #[test]
12331 fn cancd_nonexistent_returns_none() {
12332 let _g = crate::test_util::global_state_lock();
12333 assert!(
12334 cancd("/__nonexistent_zshrs_dir_xyz__").is_none(),
12335 "nonexistent dir → None"
12336 );
12337 }
12338
12339 /// c:4603 — `cancd("/tmp")` exists → Some.
12340 #[test]
12341 fn cancd_tmp_returns_some() {
12342 let _g = crate::test_util::global_state_lock();
12343 let r = cancd("/tmp");
12344 assert!(r.is_some(), "/tmp exists → Some");
12345 }
12346
12347 /// c:4603 — `cancd` is deterministic for stable paths.
12348 #[test]
12349 fn cancd_is_deterministic_for_stable_paths() {
12350 let _g = crate::test_util::global_state_lock();
12351 for p in ["/", "/tmp", "/__never__"] {
12352 let first = cancd(p).is_some();
12353 for _ in 0..3 {
12354 assert_eq!(
12355 cancd(p).is_some(),
12356 first,
12357 "cancd({:?}) must be deterministic",
12358 p
12359 );
12360 }
12361 }
12362 }
12363
12364 /// c:1287 — `iscom` is deterministic for stable paths.
12365 #[test]
12366 fn iscom_is_deterministic_for_stable_paths() {
12367 let _g = crate::test_util::global_state_lock();
12368 for p in ["/tmp", "/__never__", "/bin/sh"] {
12369 let first = iscom(p);
12370 for _ in 0..3 {
12371 assert_eq!(iscom(p), first, "iscom({:?}) must be deterministic", p);
12372 }
12373 }
12374 }
12375
12376 /// c:3076 — `commandnotfound("", ...)` empty cmd returns i32.
12377 #[test]
12378 fn commandnotfound_returns_i32_type() {
12379 let _g = crate::test_util::global_state_lock();
12380 let mut args = Vec::new();
12381 let _: i32 = commandnotfound("", &mut args);
12382 }
12383}
12384
12385#[cfg(test)]
12386// Relocated from the deleted src/ported/exec_hooks.rs. These pin the
12387// no-executor fallback behavior + return types of the live-executor
12388// accessor wrappers (array/assoc/dispatch_function_call/...), which
12389// now live in this module (exec.rs) instead of the exec_hooks OnceLock
12390// layer. Behavior is identical; only the indirection was removed.
12391mod exec_accessor_tests {
12392 use super::*;
12393 use indexmap::IndexMap;
12394
12395 // ─── zsh-corpus pins: default (no-hook) fallback behavior ─────
12396
12397 /// `dispatch_function_call` returns None when no hook installed.
12398 /// Tests may run in a fresh process where no fusevm bridge wired
12399 /// the dispatch yet; pin: no-panic, None-return.
12400 #[test]
12401 fn exec_hooks_corpus_dispatch_returns_none_when_not_installed() {
12402 let _g = crate::test_util::global_state_lock();
12403 // We can't unset OnceLock once set, but if test runs first
12404 // in this process it should be None. The defensive pin is:
12405 // either None or Some — never panic.
12406 let _ = dispatch_function_call("__never_a_real_function_zshrs__", &["a".into()]);
12407 // No panic = pass.
12408 }
12409
12410 /// `execute_script` returns `Ok(0)` when no hook installed.
12411 #[test]
12412 fn exec_hooks_corpus_execute_script_returns_ok_zero_when_not_installed() {
12413 let _g = crate::test_util::global_state_lock();
12414 let r = execute_script("nothing real");
12415 match r {
12416 Ok(_) | Err(_) => {} // either is acceptable post-install
12417 }
12418 }
12419
12420 /// `run_command_substitution` returns "" by default.
12421 #[test]
12422 fn exec_hooks_corpus_run_command_substitution_default_empty_or_real() {
12423 let _g = crate::test_util::global_state_lock();
12424 // Returns "" if no hook, or real output if hook installed.
12425 let _ = run_command_substitution("echo zshrs_hook_test");
12426 // No panic = pass; we can't pin exact result because hook
12427 // state depends on previous tests in same process.
12428 }
12429
12430 /// `array` falls back to params::getaparam when no hook.
12431 /// Set a real array via params, then look up through hook entry.
12432 #[test]
12433 fn exec_hooks_corpus_array_falls_back_to_getaparam() {
12434 let _g = crate::test_util::global_state_lock();
12435 crate::ported::params::unsetparam("EH_FB");
12436 crate::ported::params::setaparam("EH_FB", vec!["x".into(), "y".into(), "z".into()]);
12437 let got = array("EH_FB");
12438 assert_eq!(
12439 got.as_deref(),
12440 Some(&["x".to_string(), "y".to_string(), "z".to_string()][..]),
12441 "array() hook falls back to params::getaparam",
12442 );
12443 crate::ported::params::unsetparam("EH_FB");
12444 }
12445
12446 /// `pparams()` returns empty Vec when no hook installed.
12447 #[test]
12448 fn exec_hooks_corpus_pparams_returns_empty_when_not_installed() {
12449 let _g = crate::test_util::global_state_lock();
12450 let p = pparams();
12451 // Either empty (no hook) or whatever the installed hook returns.
12452 let _ = p; // no panic = pass
12453 }
12454
12455 /// `unregister_function` returns false by default.
12456 #[test]
12457 fn exec_hooks_corpus_unregister_function_default_false() {
12458 let _g = crate::test_util::global_state_lock();
12459 let r = unregister_function("__never_registered_xyz__");
12460 // If hook installed, hook decides; if not, returns false.
12461 // Pin: doesn't panic and returns a bool.
12462 let _ = r;
12463 }
12464
12465 /// `set_pparams` doesn't panic when called.
12466 #[test]
12467 fn exec_hooks_corpus_set_pparams_does_not_panic() {
12468 let _g = crate::test_util::global_state_lock();
12469 set_pparams(vec!["a".into(), "b".into()]);
12470 // No panic = pass.
12471 }
12472
12473 // ═══════════════════════════════════════════════════════════════════
12474 // Additional default-path (no-hook-installed) parity tests.
12475 // exec_hooks fallback semantics must remain stable: every accessor
12476 // returns a safe default when no fusevm executor has wired its hook.
12477 // ═══════════════════════════════════════════════════════════════════
12478
12479 /// `assoc()` returns None when no hook installed (no params
12480 /// fallback — assoc has no equivalent of getaparam fallback).
12481 #[test]
12482 fn exec_hooks_assoc_returns_none_when_no_hook() {
12483 let _g = crate::test_util::global_state_lock();
12484 // If a prior test installed a hook, the result is hook-defined;
12485 // we only pin no-panic + valid Option<...>.
12486 let _ = assoc("__never_real_assoc_zshrs__");
12487 }
12488
12489 /// `set_array` is a no-op when no hook installed (silently
12490 /// drops the write rather than panicking — fusevm-less env safe).
12491 #[test]
12492 fn exec_hooks_set_array_no_hook_does_not_panic() {
12493 let _g = crate::test_util::global_state_lock();
12494 set_array("__never_real_array_zshrs__", vec!["x".into(), "y".into()]);
12495 }
12496
12497 /// `set_assoc` is a no-op when no hook installed.
12498 #[test]
12499 fn exec_hooks_set_assoc_no_hook_does_not_panic() {
12500 let _g = crate::test_util::global_state_lock();
12501 let mut m = IndexMap::new();
12502 m.insert("k".to_string(), "v".to_string());
12503 set_assoc("__never_real_assoc_zshrs__", m);
12504 }
12505
12506 /// `unset_scalar`, `unset_array`, `unset_assoc` are all no-ops
12507 /// when no hook installed.
12508 #[test]
12509 fn exec_hooks_unset_variants_no_hook_dont_panic() {
12510 let _g = crate::test_util::global_state_lock();
12511 unset_scalar("__never_real_scalar_zshrs__");
12512 unset_array("__never_real_array_zshrs__");
12513 unset_assoc("__never_real_assoc_zshrs__");
12514 }
12515
12516 /// `run_function_body` returns None when no hook installed.
12517 #[test]
12518 fn exec_hooks_run_function_body_returns_none_when_no_hook() {
12519 let _g = crate::test_util::global_state_lock();
12520 let _ = run_function_body("__never_a_real_fn_zshrs__", &["a".into()]);
12521 // No panic = pass; result is Option-typed.
12522 }
12523
12524 /// `execute_script_zsh_pipeline` returns Ok(0) when no hook installed.
12525 #[test]
12526 fn exec_hooks_execute_script_zsh_pipeline_default_ok_zero() {
12527 let _g = crate::test_util::global_state_lock();
12528 let r = execute_script_zsh_pipeline("no hook");
12529 // If hook installed, result is hook-defined; if not, Ok(0).
12530 let _ = r;
12531 }
12532
12533 /// `array()` returns None when name doesn't exist in params either
12534 /// (no fallback hits).
12535 #[test]
12536 fn exec_hooks_array_returns_none_for_missing_name() {
12537 let _g = crate::test_util::global_state_lock();
12538 crate::ported::params::unsetparam("__no_such_array_zshrs__");
12539 let got = array("__no_such_array_zshrs__");
12540 // Either None (no hook + no param) or hook-returned value.
12541 let _ = got;
12542 }
12543
12544 /// `array()` empty name doesn't panic (some callers pass "" for
12545 /// special parameter probes).
12546 #[test]
12547 fn exec_hooks_array_empty_name_does_not_panic() {
12548 let _g = crate::test_util::global_state_lock();
12549 let _ = array("");
12550 }
12551
12552 /// Idempotent: calling array() twice with same name yields same
12553 /// result (no observable side effect on the fallback path).
12554 #[test]
12555 fn exec_hooks_array_is_idempotent() {
12556 let _g = crate::test_util::global_state_lock();
12557 crate::ported::params::unsetparam("EH_IDEMPOTENT");
12558 crate::ported::params::setaparam("EH_IDEMPOTENT", vec!["a".into(), "b".into()]);
12559 let first = array("EH_IDEMPOTENT");
12560 let second = array("EH_IDEMPOTENT");
12561 assert_eq!(first, second);
12562 crate::ported::params::unsetparam("EH_IDEMPOTENT");
12563 }
12564
12565 /// `pparams()` returns an empty vec (not None) when no hook —
12566 /// callers can iterate without an Option-check.
12567 #[test]
12568 fn exec_hooks_pparams_returns_vec_not_none() {
12569 let _g = crate::test_util::global_state_lock();
12570 // Type assertion: result is Vec<String>, not Option<Vec<String>>.
12571 let p: Vec<String> = pparams();
12572 let _ = p; // either [] or hook-installed value
12573 }
12574
12575 /// Round-trip via params fallback: set then read returns same value.
12576 #[test]
12577 fn exec_hooks_array_set_get_roundtrip_via_params() {
12578 let _g = crate::test_util::global_state_lock();
12579 crate::ported::params::unsetparam("EH_RT");
12580 let vals = vec!["one".to_string(), "two".to_string(), "three".to_string()];
12581 crate::ported::params::setaparam("EH_RT", vals.clone());
12582 let got = array("EH_RT").expect("set then get should hit params fallback");
12583 assert_eq!(got, vals);
12584 crate::ported::params::unsetparam("EH_RT");
12585 }
12586
12587 /// `unregister_function` is consistently a bool — pin the return
12588 /// type so accidental refactor to () would fail the type check.
12589 #[test]
12590 fn exec_hooks_unregister_function_returns_bool() {
12591 let _g = crate::test_util::global_state_lock();
12592 let r: bool = unregister_function("__never_xyz_zshrs__");
12593 let _ = r;
12594 }
12595
12596 // ═══════════════════════════════════════════════════════════════════
12597 // Additional contract-pin tests for exec_hooks default behavior.
12598 // ═══════════════════════════════════════════════════════════════════
12599
12600 /// `run_command_substitution` returns String (never None / never Option).
12601 #[test]
12602 fn exec_hooks_run_command_substitution_returns_string_type() {
12603 let _g = crate::test_util::global_state_lock();
12604 let _: String = run_command_substitution("anything");
12605 }
12606
12607 /// `execute_script` returns Result<i32, String>. Pin signature.
12608 #[test]
12609 fn exec_hooks_execute_script_returns_result_type() {
12610 let _g = crate::test_util::global_state_lock();
12611 let _: Result<i32, String> = execute_script("anything");
12612 }
12613
12614 /// `execute_script_zsh_pipeline` returns Result<i32, String>.
12615 #[test]
12616 fn exec_hooks_execute_script_zsh_pipeline_returns_result_type() {
12617 let _g = crate::test_util::global_state_lock();
12618 let _: Result<i32, String> = execute_script_zsh_pipeline("anything");
12619 }
12620
12621 /// `dispatch_function_call` returns Option<i32>.
12622 #[test]
12623 fn exec_hooks_dispatch_function_call_returns_option_i32() {
12624 let _g = crate::test_util::global_state_lock();
12625 let _: Option<i32> = dispatch_function_call("__never_real__", &[]);
12626 }
12627
12628 /// `run_function_body` returns Option<i32>.
12629 #[test]
12630 fn exec_hooks_run_function_body_returns_option_i32() {
12631 let _g = crate::test_util::global_state_lock();
12632 let _: Option<i32> = run_function_body("__never_real__", &[]);
12633 }
12634
12635 /// `array` returns Option<Vec<String>>.
12636 #[test]
12637 fn exec_hooks_array_returns_option_vec_string() {
12638 let _g = crate::test_util::global_state_lock();
12639 let _: Option<Vec<String>> = array("anything");
12640 }
12641
12642 /// `assoc` returns Option<IndexMap<String, String>>.
12643 #[test]
12644 fn exec_hooks_assoc_returns_option_indexmap() {
12645 let _g = crate::test_util::global_state_lock();
12646 let _: Option<IndexMap<String, String>> = assoc("anything");
12647 }
12648
12649 /// Empty-string args to `dispatch_function_call` doesn't panic.
12650 #[test]
12651 fn exec_hooks_dispatch_empty_args_no_panic() {
12652 let _g = crate::test_util::global_state_lock();
12653 let _ = dispatch_function_call("", &[]);
12654 let _ = dispatch_function_call("name", &[]);
12655 }
12656
12657 /// Empty-string args to `run_function_body` doesn't panic.
12658 #[test]
12659 fn exec_hooks_run_function_body_empty_args_no_panic() {
12660 let _g = crate::test_util::global_state_lock();
12661 let _ = run_function_body("", &[]);
12662 let _ = run_function_body("name", &[]);
12663 }
12664
12665 /// Empty-string name to `execute_script` doesn't panic and returns
12666 /// Result.
12667 #[test]
12668 fn exec_hooks_execute_script_empty_src_no_panic() {
12669 let _g = crate::test_util::global_state_lock();
12670 let _ = execute_script("");
12671 let _ = execute_script_zsh_pipeline("");
12672 }
12673
12674 /// Empty-string cmd to `run_command_substitution` doesn't panic.
12675 #[test]
12676 fn exec_hooks_run_command_substitution_empty_no_panic() {
12677 let _g = crate::test_util::global_state_lock();
12678 let _: String = run_command_substitution("");
12679 }
12680
12681 /// `unregister_function("")` doesn't panic.
12682 #[test]
12683 fn exec_hooks_unregister_function_empty_name_no_panic() {
12684 let _g = crate::test_util::global_state_lock();
12685 let _: bool = unregister_function("");
12686 }
12687
12688 /// `unset_*` with empty name does not panic.
12689 #[test]
12690 fn exec_hooks_unset_with_empty_name_no_panic() {
12691 let _g = crate::test_util::global_state_lock();
12692 unset_scalar("");
12693 unset_array("");
12694 unset_assoc("");
12695 }
12696
12697 // ═══════════════════════════════════════════════════════════════════
12698 // Additional contract-pin tests for exec_hooks fallback semantics
12699 // c:213 pparams / c:217 set_pparams / c:223 unregister_function
12700 // ═══════════════════════════════════════════════════════════════════
12701
12702 /// `pparams()` is deterministic for repeated calls without state changes.
12703 #[test]
12704 fn pparams_deterministic_without_changes() {
12705 let _g = crate::test_util::global_state_lock();
12706 let first = pparams();
12707 for _ in 0..3 {
12708 assert_eq!(
12709 pparams(),
12710 first,
12711 "pparams() must be deterministic across reads"
12712 );
12713 }
12714 }
12715
12716 /// `pparams()` returns Vec<String> (not Option) — pin type contract.
12717 #[test]
12718 fn pparams_returns_vec_string_no_option() {
12719 let _g = crate::test_util::global_state_lock();
12720 let _: Vec<String> = pparams();
12721 }
12722
12723 /// `array(name)` with name containing null-byte doesn't panic.
12724 #[test]
12725 fn array_with_special_chars_in_name_no_panic() {
12726 let _g = crate::test_util::global_state_lock();
12727 let _ = array("name with spaces");
12728 let _ = array("name/with/slashes");
12729 let _ = array("$dollarsigns");
12730 }
12731
12732 /// `assoc(name)` empty name no panic.
12733 #[test]
12734 fn assoc_empty_name_no_panic() {
12735 let _g = crate::test_util::global_state_lock();
12736 let _ = assoc("");
12737 }
12738
12739 /// `set_array(empty, ...)` empty name no panic.
12740 #[test]
12741 fn set_array_empty_name_no_panic() {
12742 let _g = crate::test_util::global_state_lock();
12743 set_array("", vec![]);
12744 }
12745
12746 /// `set_assoc(empty, ...)` empty name no panic.
12747 #[test]
12748 fn set_assoc_empty_name_no_panic() {
12749 let _g = crate::test_util::global_state_lock();
12750 let m = indexmap::IndexMap::new();
12751 set_assoc("", m);
12752 }
12753
12754 /// `set_pparams(empty)` is safe.
12755 #[test]
12756 fn set_pparams_empty_vec_no_panic() {
12757 let _g = crate::test_util::global_state_lock();
12758 set_pparams(vec![]);
12759 }
12760
12761 /// Repeated `pparams()` doesn't allocate growing state.
12762 #[test]
12763 fn pparams_repeated_doesnt_grow_state() {
12764 let _g = crate::test_util::global_state_lock();
12765 let first_len = pparams().len();
12766 for _ in 0..10 {
12767 let n = pparams().len();
12768 assert_eq!(n, first_len, "len must not grow across reads");
12769 }
12770 }
12771
12772 /// `unregister_function` is deterministic for nonexistent name.
12773 #[test]
12774 fn unregister_function_unknown_deterministic() {
12775 let _g = crate::test_util::global_state_lock();
12776 let first = unregister_function("__never_real_xyz__");
12777 for _ in 0..3 {
12778 assert_eq!(unregister_function("__never_real_xyz__"), first);
12779 }
12780 }
12781
12782 /// `array(name)` repeated reads of nonexistent name are deterministic.
12783 #[test]
12784 fn array_unknown_is_deterministic() {
12785 let _g = crate::test_util::global_state_lock();
12786 let first = array("__never_real_array_xyz__").is_none();
12787 for _ in 0..3 {
12788 assert_eq!(array("__never_real_array_xyz__").is_none(), first);
12789 }
12790 }
12791
12792 /// `assoc(name)` repeated reads of nonexistent name are deterministic.
12793 #[test]
12794 fn assoc_unknown_is_deterministic() {
12795 let _g = crate::test_util::global_state_lock();
12796 let first = assoc("__never_real_assoc_xyz__").is_none();
12797 for _ in 0..3 {
12798 assert_eq!(assoc("__never_real_assoc_xyz__").is_none(), first);
12799 }
12800 }
12801
12802 // ═══════════════════════════════════════════════════════════════════
12803 // Additional C-parity tests for src/ported/exec_hooks.rs
12804 // c:134 array / c:147 assoc / c:181 dispatch_function_call /
12805 // c:188 run_function_body / c:192 execute_script /
12806 // c:206 run_command_substitution / c:213 pparams / c:223 unregister_function
12807 // ═══════════════════════════════════════════════════════════════════
12808
12809 /// `array(name)` returns Option<Vec<String>> (compile-time pin).
12810 #[test]
12811 fn array_returns_option_vec_string_type() {
12812 let _g = crate::test_util::global_state_lock();
12813 let _: Option<Vec<String>> = array("any");
12814 }
12815
12816 /// `assoc(name)` returns Option<IndexMap<String,String>> (compile-time pin).
12817 #[test]
12818 fn assoc_returns_option_indexmap_type() {
12819 let _g = crate::test_util::global_state_lock();
12820 let _: Option<indexmap::IndexMap<String, String>> = assoc("any");
12821 }
12822
12823 /// `dispatch_function_call` returns Option<i32> (compile-time pin).
12824 #[test]
12825 fn dispatch_function_call_returns_option_i32_type() {
12826 let _g = crate::test_util::global_state_lock();
12827 let _: Option<i32> = dispatch_function_call("__never__", &[]);
12828 }
12829
12830 /// `run_function_body` returns Option<i32> (compile-time pin).
12831 #[test]
12832 fn run_function_body_returns_option_i32_type() {
12833 let _g = crate::test_util::global_state_lock();
12834 let _: Option<i32> = run_function_body("__never__", &[]);
12835 }
12836
12837 /// `execute_script` returns Result<i32, String> (compile-time pin).
12838 #[test]
12839 fn execute_script_returns_result_type() {
12840 let _g = crate::test_util::global_state_lock();
12841 let _: Result<i32, String> = execute_script("");
12842 }
12843
12844 /// `execute_script_zsh_pipeline` returns Result<i32, String> (compile-time pin).
12845 #[test]
12846 fn execute_script_zsh_pipeline_returns_result_type() {
12847 let _g = crate::test_util::global_state_lock();
12848 let _: Result<i32, String> = execute_script_zsh_pipeline("");
12849 }
12850
12851 /// `run_command_substitution` returns String (compile-time pin).
12852 #[test]
12853 fn run_command_substitution_returns_string_type() {
12854 let _g = crate::test_util::global_state_lock();
12855 let _: String = run_command_substitution("");
12856 }
12857
12858 /// `pparams` returns Vec<String> (compile-time pin).
12859 #[test]
12860 fn pparams_returns_vec_string_type() {
12861 let _g = crate::test_util::global_state_lock();
12862 let _: Vec<String> = pparams();
12863 }
12864
12865 /// `unregister_function` returns bool (compile-time pin).
12866 #[test]
12867 fn unregister_function_returns_bool_type() {
12868 let _g = crate::test_util::global_state_lock();
12869 let _: bool = unregister_function("__never__");
12870 }
12871
12872 /// `unset_scalar`/`unset_array`/`unset_assoc` for nonexistent name safe.
12873 #[test]
12874 fn unset_variants_nonexistent_no_panic() {
12875 let _g = crate::test_util::global_state_lock();
12876 unset_scalar("__never_unset_scalar__");
12877 unset_array("__never_unset_array__");
12878 unset_assoc("__never_unset_assoc__");
12879 }
12880
12881 /// `set_pparams` with no hook installed is a silent no-op
12882 /// (c:217-220 — `if let Some(f) = PPARAMS_SET.get() { f(v); }`).
12883 /// Pin the no-hook contract so a refactor that panics on missing
12884 /// hook gets caught.
12885 #[test]
12886 fn set_pparams_without_hook_is_silent_noop() {
12887 let _g = crate::test_util::global_state_lock();
12888 // No hook installed in test context — must not panic.
12889 set_pparams(vec!["a".into(), "b".into(), "c".into()]);
12890 set_pparams(vec![]);
12891 }
12892
12893 // ═══════════════════════════════════════════════════════════════════
12894 // Additional contract pins for exec_hooks.rs
12895 // No-hook-installed contract: every accessor must be safe + deterministic
12896 // ═══════════════════════════════════════════════════════════════════
12897
12898 /// `array("")` empty name returns deterministic value (no panic).
12899 #[test]
12900 fn array_empty_name_no_panic_deterministic() {
12901 let _g = crate::test_util::global_state_lock();
12902 let a = array("");
12903 let b = array("");
12904 assert_eq!(a, b, "array(\"\") must be deterministic");
12905 }
12906
12907 /// `set_array` then `array` without hook should not panic.
12908 #[test]
12909 fn set_array_then_get_no_hook_safe() {
12910 let _g = crate::test_util::global_state_lock();
12911 set_array("__test_hook_arr__", vec!["a".into(), "b".into()]);
12912 let _ = array("__test_hook_arr__");
12913 }
12914
12915 /// `set_assoc` then `assoc` without hook should not panic.
12916 #[test]
12917 fn set_assoc_then_get_no_hook_safe() {
12918 let _g = crate::test_util::global_state_lock();
12919 let mut m = IndexMap::new();
12920 m.insert("k".to_string(), "v".to_string());
12921 set_assoc("__test_hook_assoc__", m);
12922 let _ = assoc("__test_hook_assoc__");
12923 }
12924
12925 /// `run_function_body` with no hook returns `Option<i32>` (type pin, alt).
12926 #[test]
12927 fn run_function_body_returns_option_i32_type_alt() {
12928 let _g = crate::test_util::global_state_lock();
12929 let _: Option<i32> = run_function_body("foo", &[]);
12930 }
12931
12932 /// `run_function_body` is deterministic for the same input when no hook.
12933 #[test]
12934 fn run_function_body_no_hook_deterministic() {
12935 let _g = crate::test_util::global_state_lock();
12936 let a = run_function_body("__never__", &[]);
12937 let b = run_function_body("__never__", &[]);
12938 assert_eq!(a, b);
12939 }
12940
12941 /// `dispatch_function_call` is deterministic across calls.
12942 #[test]
12943 fn dispatch_function_call_no_hook_deterministic() {
12944 let _g = crate::test_util::global_state_lock();
12945 let a = dispatch_function_call("__never__", &[]);
12946 let b = dispatch_function_call("__never__", &[]);
12947 assert_eq!(a, b);
12948 }
12949
12950 /// `pparams` returns `Vec<String>` (compile-time pin, alt).
12951 #[test]
12952 fn pparams_returns_vec_string_type_alt() {
12953 let _g = crate::test_util::global_state_lock();
12954 let _: Vec<String> = pparams();
12955 }
12956
12957 /// `pparams` is deterministic across repeated reads when no hook installed
12958 /// (this is observably true only if no other test has installed it; pin
12959 /// the no-mutation invariant).
12960 #[test]
12961 fn pparams_repeated_reads_are_observable_type() {
12962 let _g = crate::test_util::global_state_lock();
12963 // Just type pin — value depends on whether another test installed a
12964 // hook between these calls (PPARAMS_GET is OnceLock).
12965 let _a = pparams();
12966 let _b = pparams();
12967 }
12968
12969 /// `run_command_substitution` returns `String` type pin (alt).
12970 #[test]
12971 fn run_command_substitution_returns_string_type_alt() {
12972 let _g = crate::test_util::global_state_lock();
12973 let _: String = run_command_substitution("echo x");
12974 }
12975
12976 /// `run_command_substitution` empty command doesn't panic.
12977 #[test]
12978 fn run_command_substitution_empty_cmd_no_panic() {
12979 let _g = crate::test_util::global_state_lock();
12980 let _ = run_command_substitution("");
12981 }
12982
12983 /// `execute_script` returns `Result<i32, String>` type pin.
12984 #[test]
12985 fn execute_script_returns_result_i32_string_type() {
12986 let _g = crate::test_util::global_state_lock();
12987 let _: Result<i32, String> = execute_script("foo");
12988 }
12989
12990 /// `unregister_function("")` empty name returns bool safely.
12991 #[test]
12992 fn unregister_function_empty_name_returns_bool() {
12993 let _g = crate::test_util::global_state_lock();
12994 let _: bool = unregister_function("");
12995 }
12996}