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rucc_pp/
directive.rs

1//! The directive engine: translation phase 4 over one file's preprocessing tokens.
2//!
3//! Design: `spec/05-preprocessor.md` section 5.4.
4//!
5//! A directive is a line whose first token is `#`. That is the whole of the recognition rule,
6//! and the two halves of it are both load bearing: `#` has to be first on the line, and the
7//! line is what the lexer says it is after splices and comments have been resolved, which is
8//! why `x /*\n*/ #define F 1` really does define `F`.
9//!
10//! The part that is easy to get wrong is skipped regions. Inside `#if 0` a line beginning with
11//! `#` still has to be recognised well enough to keep the conditional nesting balanced, and it
12//! must not be diagnosed for anything else. Real code puts prose, unbalanced quotes and future
13//! syntax inside `#if 0`, and a preprocessor that reports errors from there is unusable. So
14//! skipping looks at the directive name and nothing else, and only the seven conditional
15//! directives mean anything while it is going on.
16
17use std::collections::{HashMap, HashSet};
18use std::path::{Path, PathBuf};
19
20use rucc_base::{Interner, Symbol};
21use rucc_diag::{Diagnostic, FileId, SourceMapFull, Span};
22use rucc_gnu::Kind;
23use rucc_lex::{Options, PpToken, PpTokenKind, Punct, TokenFlags, tokenize};
24use rucc_session::{Found, IncludeForm, Preinclude};
25use rucc_target::TargetInfo;
26
27use crate::cond;
28use crate::embed;
29use crate::expand::Expander;
30use crate::include::{
31    Context, Dependency, Frame, Header, Reader, directory_of, header_from_token,
32    header_from_tokens, spelling,
33};
34use crate::macros::{Builtin, MacroTable, parse_define};
35use crate::predef::{BUILT_IN, COMMAND_LINE, Predef, built_in, command_line};
36use crate::token::Tok;
37
38/// Why a file that has already been read does not need reading again.
39#[derive(Debug, Clone, Copy, PartialEq, Eq)]
40enum Guard {
41    /// `#pragma once`, so the file is read once however many times it is named.
42    Once,
43    /// The whole file is wrapped in `#ifndef NAME`, and `NAME` is now defined, so reading it
44    /// again would produce nothing at all. This is the multiple-include optimization, and on
45    /// a real code base it is the difference between reading a header once and reading it a
46    /// few hundred times.
47    Macro(Symbol),
48}
49
50/// How far through the file the guard shape has been recognised.
51#[derive(Debug, Clone, Copy, PartialEq, Eq)]
52enum Scan {
53    /// Nothing has been seen yet, so the next line may open the guard.
54    Start,
55    /// Inside the conditional the file opened with.
56    Inside(Symbol),
57    /// The conditional closed and the file has to end here for the shape to hold.
58    Closed(Symbol),
59    /// Something else was seen, so this file has no guard.
60    No,
61}
62
63/// One `#if` and everything hanging off it.
64#[derive(Debug)]
65struct Cond {
66    /// Where the `#if` was written, so an unterminated one can point at it.
67    span: Span,
68    /// Whether tokens in the branch currently open are kept. Already accounts for whether the
69    /// enclosing region was live, so [`Preprocessor::live`] only has to look at the top.
70    live: bool,
71    /// Whether some branch of this chain has been taken. A later `#elif` is not evaluated once
72    /// this is set, which is what makes `#elif 1/0` after a taken branch legal.
73    taken: bool,
74    /// Whether the enclosing region was live.
75    enclosing_live: bool,
76    /// Whether `#else` has been seen, so a second one is an error.
77    seen_else: bool,
78}
79
80/// A `#line` directive, as read and as applied to the source map.
81#[derive(Debug, Clone, PartialEq, Eq)]
82pub struct LineDirective {
83    /// Where the directive is.
84    pub span: Span,
85    /// The line number the next line is to be called.
86    pub line: u32,
87    /// The file name the following lines are to be called, if one was given.
88    pub file: Option<Symbol>,
89    /// How many tokens had been emitted when this was read, which is where it sits in the
90    /// stream.
91    ///
92    /// A position is not enough to say that. A file included from here is added to the source
93    /// map after this file, so its bytes come after every byte of this one, and the token
94    /// after the `#include` is at a lower position than the tokens of the header. `-E` has to
95    /// write a marker for a `#line` where the directive was written rather than where its
96    /// bytes are, and this is what says where that is.
97    pub at: usize,
98}
99
100/// Translation phase 4 over one file.
101///
102/// Holds the macro table and the conditional stack, so a single instance processes a whole
103/// translation unit and the definitions a header makes are visible after it.
104#[derive(Debug, Default)]
105pub struct Preprocessor {
106    macros: MacroTable,
107    expander: Expander,
108    diagnostics: Vec<Diagnostic>,
109    conds: Vec<Cond>,
110    lines: Vec<LineDirective>,
111    /// The files currently open, innermost last. Empty between runs.
112    stack: Vec<Frame>,
113    /// The files a line marker said were entered, innermost last, by the name in force when it
114    /// said so. This is the nesting a `2` flag claims to be leaving, and it is kept apart from
115    /// `stack` because a marker set describes a nesting the real files never had.
116    markers: Vec<String>,
117    /// Files that do not need reading again, and why. Keyed by what the file system calls the
118    /// file rather than by the name an include used, so that a header reached two ways is one
119    /// entry here.
120    seen: HashMap<PathBuf, Guard>,
121    /// Every file an `#include` found, in the order they were first reached.
122    ///
123    /// This is what the `-M` family reports. It is collected here rather than read off the
124    /// source map afterwards because the map holds the built in and command line macros as
125    /// files too, and because whether a header came from a system directory is something only
126    /// the search knew and the map never learns.
127    deps: Vec<Dependency>,
128    /// What is already in `deps`, by the name the file system gives the file.
129    ///
130    /// A header reached through two spellings is one dependency, and a header included a
131    /// hundred times is one line in the rule.
132    ///
133    /// This is the one place the rule is not what GCC writes. GCC keys its list on the pair of
134    /// the directory the search started from and the name the directive wrote, which is the key
135    /// of the cache it reads the file through rather than a decision, so `"x.h"` and `"./x.h"`
136    /// are two prerequisites there and a header two other headers in the same directory reach
137    /// by different relative paths is listed twice. Naming a file once is what the flag means,
138    /// and a duplicate prerequisite means nothing to `make` either way.
139    dep_ids: HashSet<PathBuf>,
140}
141
142impl Preprocessor {
143    /// A preprocessor with an empty macro table.
144    pub fn new() -> Preprocessor {
145        Preprocessor::default()
146    }
147
148    /// The macros defined so far.
149    pub fn macros(&self) -> &MacroTable {
150        &self.macros
151    }
152
153    /// The macro table, for the driver to seed with `-D` and the predefined set.
154    pub fn macros_mut(&mut self) -> &mut MacroTable {
155        &mut self.macros
156    }
157
158    /// Everything reported so far.
159    pub fn diagnostics(&self) -> &[Diagnostic] {
160        &self.diagnostics
161    }
162
163    /// Takes the diagnostics, leaving the preprocessor able to carry on.
164    pub fn take_diagnostics(&mut self) -> Vec<Diagnostic> {
165        std::mem::take(&mut self.diagnostics)
166    }
167
168    /// Every file an `#include` found, in the order they were first reached.
169    ///
170    /// What the `-M` family writes into a make rule. The source file itself is not in here,
171    /// since nothing included it, and the caller that knows its name puts it first.
172    pub fn dependencies(&self) -> &[Dependency] {
173        &self.deps
174    }
175
176    /// The `#line` directives seen, in the order they appeared.
177    ///
178    /// Each one is also applied, to the source map, as it is read. This is the record of them
179    /// rather than the mechanism: what a caller wants it for is reporting on the directives
180    /// themselves, and asking the map is how to find out where anything is.
181    pub fn line_directives(&self) -> &[LineDirective] {
182        &self.lines
183    }
184
185    /// Defines the predefined macro set, and then `-D` and `-U` from the command line.
186    ///
187    /// Called before [`Preprocessor::run`], because a predefined macro is a macro like any
188    /// other by the time the source file is read. The set arrives as two synthetic files
189    /// rather than as a list of definitions, so a diagnostic about one of them points at
190    /// `<built-in>` or `<command-line>` the way GCC's does, and so that `-dM` has something
191    /// to print. The reasoning is in `crate::predef`.
192    ///
193    /// # Errors
194    ///
195    /// When the source map has no room left for the two synthetic files.
196    pub fn predefine(
197        &mut self,
198        target: &TargetInfo,
199        opts: &Predef,
200        cx: &mut Context<'_>,
201    ) -> Result<(), SourceMapFull> {
202        let names = Names::new(cx.interner);
203        let file = self.synthetic(BUILT_IN, built_in(target, opts), cx, &names)?;
204        // The macros that cannot be written as a `#define` line, because what they stand for
205        // depends on where they are used. They go in after the generated file and before the
206        // command line, so that `-U__FILE__` takes one away the way it takes any other away.
207        // The origin is the start of `<built-in>`, which is where a warning about redefining
208        // one points, and which is the truthful answer to where they came from.
209        let start = cx.sources.file(file).start;
210        for (spelling, builtin) in Builtin::ALL {
211            let name = cx.interner.intern(spelling);
212            self.macros.define_builtin(name, builtin, Span::new(start, start));
213        }
214        let text = command_line(opts);
215        if !text.is_empty() {
216            self.synthetic(COMMAND_LINE, text, cx, &names)?;
217        }
218        Ok(())
219    }
220
221    /// Reads a file the compiler wrote rather than one the user did.
222    fn synthetic(
223        &mut self,
224        name: &str,
225        text: String,
226        cx: &mut Context<'_>,
227        names: &Names,
228    ) -> Result<FileId, SourceMapFull> {
229        let file = cx.sources.add(name, text.into_bytes())?;
230        let mut out = Vec::new();
231        // A frame, so that the guard scan and the include depth see the same shape they see
232        // for a real file. There is no directory, because `#include "x.h"` written in a
233        // synthetic file has nowhere of its own to look.
234        let path = PathBuf::from(name);
235        let id = cx.fs.identity(&path);
236        self.stack.push(Frame { at: Span::DUMMY, path, id, dir: None, next: 0 });
237        self.process(file, &mut out, cx, names);
238        self.stack.clear();
239        debug_assert!(out.is_empty(), "{name} is directives only and produces no tokens");
240        Ok(file)
241    }
242
243    /// Reads the files `-imacros` and `-include` named, before the source file is opened.
244    ///
245    /// Called between [`Preprocessor::predefine`] and [`Preprocessor::run`], with the tokens the
246    /// `-include` files produce going in front of the ones the source file produces. That is what
247    /// the flags mean: the definitions arrive before the first line of the source, so a header
248    /// the source has no `#include` for is nevertheless in scope throughout it.
249    ///
250    /// Every `-imacros` file is read before every `-include` file, whatever order the command line
251    /// wrote them in, which is GCC's behaviour and is measured rather than read: two command lines
252    /// with the two flags the other way round produce the same output byte for byte. The text an
253    /// `-imacros` file produces is thrown away and only its definitions are kept, which is the
254    /// whole difference between the two flags.
255    ///
256    /// Each name is looked for the way a quoted include is looked for, starting from the working
257    /// directory rather than from the directory of the source file. A source in `sub/` and a
258    /// `-include` of a header sitting beside it is an error, not a file found, because the command
259    /// line is not written in `sub/`.
260    ///
261    /// # Errors
262    ///
263    /// When the source map has no room left for the record of the flags.
264    pub fn preinclude(
265        &mut self,
266        files: &[Preinclude],
267        out: &mut Vec<Tok>,
268        cx: &mut Context<'_>,
269    ) -> Result<(), SourceMapFull> {
270        if files.is_empty() {
271            return Ok(());
272        }
273        let names = Names::new(cx.interner);
274        // The flags as a file, so that a name that is not found has somewhere to point. The two
275        // spellings are the same length, which is what makes the offset of the name the length of
276        // the line so far and keeps this from needing a second pass.
277        let mut text = String::new();
278        let mut order: Vec<(usize, &Preinclude)> = Vec::new();
279        for macros_only in [true, false] {
280            for file in files.iter().filter(|f| f.macros_only == macros_only) {
281                text.push_str(if macros_only { "-imacros " } else { "-include " });
282                order.push((text.len(), file));
283                text.push_str(&file.name);
284                text.push('\n');
285            }
286        }
287        let record = cx.sources.add(COMMAND_LINE, text.into_bytes())?;
288        let start = cx.sources.file(record).start;
289        // A frame for the command line itself, so that the files below it are at the depth they
290        // would be at had the source file included them, and a `#pragma once` in one of them is
291        // not reported as a `#pragma once` in a main file.
292        let path = PathBuf::from(COMMAND_LINE);
293        let id = cx.fs.identity(&path);
294        self.stack.push(Frame { at: Span::DUMMY, path, id, dir: None, next: 0 });
295        let here = Path::new(".");
296        for (offset, file) in order {
297            let at = Span::new(start + offset as u32, start + (offset + file.name.len()) as u32);
298            let form = IncludeForm::Quoted;
299            let found = cx.search.resolve(cx.fs, &file.name, form, Some(here), 0);
300            let Some(found) = found else {
301                let tried = cx.search.tried(&file.name, form, Some(here), 0);
302                self.not_found(&file.name, at, &tried);
303                continue;
304            };
305            let mut discarded = Vec::new();
306            let sink = if file.macros_only { &mut discarded } else { &mut *out };
307            self.read(found, at, sink, cx, &names);
308        }
309        self.stack.clear();
310        Ok(())
311    }
312
313    /// Runs phase 4 over `file` and everything it includes.
314    ///
315    /// The result is the tokens that survived the conditionals, with macros expanded. Nothing
316    /// is thrown away silently: an unterminated `#if` and a stray `#endif` are both reported.
317    pub fn run(&mut self, file: FileId, cx: &mut Context<'_>) -> Vec<Tok> {
318        let names = Names::new(cx.interner);
319        let mut out = Vec::new();
320        let name = cx.sources.file(file).name.clone();
321        let dir = directory_of(&name);
322        // The file named on the command line was not found through the search path, so an
323        // `#include_next` written in it starts at the top rather than partway down.
324        let path = PathBuf::from(name);
325        let id = cx.fs.identity(&path);
326        self.stack.push(Frame { at: Span::DUMMY, path, id, dir, next: 0 });
327        self.process(file, &mut out, cx, &names);
328        self.stack.clear();
329        out
330    }
331
332    /// Reads one file, appending what survives to `out`.
333    fn process(&mut self, file: FileId, out: &mut Vec<Tok>, cx: &mut Context<'_>, names: &Names) {
334        // The bytes are taken out of the map by sharing rather than by borrowing, because the
335        // rest of this function needs the map back to add an included file to it.
336        let bytes = cx.sources.file(file).shared_bytes();
337        let start = cx.sources.file(file).start;
338        let mut reader = Reader::new(bytes.as_slice(), start, cx.lex);
339        let depth_on_entry = self.conds.len();
340        // Consecutive text lines are expanded as one run rather than line by line, because a
341        // function-like macro invocation may span lines. It may not span a directive, which is
342        // undefined behaviour, so a directive is where the run ends.
343        let mut text: Vec<Tok> = Vec::new();
344        let mut body: Vec<PpToken> = Vec::new();
345        let mut scan = Scan::Start;
346
347        loop {
348            let was_live = self.live();
349            let first = reader.next(cx.interner);
350            if first.is_eof() {
351                break;
352            }
353            if is_directive(first) {
354                self.flush(&mut text, out, cx, names);
355                body.clear();
356                let name_tok = reader.next(cx.interner);
357                // The null directive. A line of just `#` is legal and does nothing, and there
358                // is a surprising amount of it in real headers as a visual separator.
359                if name_tok.is_eof() || name_tok.flags.has(TokenFlags::START_OF_LINE) {
360                    reader.put_back(name_tok);
361                    continue;
362                }
363                body.push(name_tok);
364                // The header name has to be scanned here or not at all: `<stdio.h>` and a run
365                // of comparisons are the same bytes, and once the line has been scanned the
366                // other way the difference is gone. Not in a skipped region, because scanning
367                // one there can report an unterminated name that nobody asked about.
368                if was_live && is_include(ident_of(&name_tok), names) {
369                    if let Some(header) = reader.header_name(cx.interner) {
370                        body.push(header);
371                    }
372                }
373                reader.line(cx.interner, &mut body);
374                let opens =
375                    matches!(scan, Scan::Start).then(|| guard_opener(&body, names)).flatten();
376                self.directive(&body, first.span, out, cx, names);
377                scan = match scan {
378                    // The guard has to be the first line of the file and it has to open a
379                    // conditional, which is why the depth is checked after the dispatch
380                    // rather than the directive name being trusted on its own.
381                    Scan::Start => match opens {
382                        Some(name) if self.conds.len() == depth_on_entry + 1 => Scan::Inside(name),
383                        _ => Scan::No,
384                    },
385                    Scan::Inside(name) if self.conds.len() == depth_on_entry => Scan::Closed(name),
386                    Scan::Inside(name) => Scan::Inside(name),
387                    Scan::Closed(_) | Scan::No => Scan::No,
388                };
389            } else {
390                body.clear();
391                reader.line(cx.interner, &mut body);
392                if self.live() {
393                    // A run of text lines is expanded in one go, and a `_Pragma` is a directive
394                    // wearing an operator's clothes: `pop_macro` changes what the names after it
395                    // mean. So a line that spells one is expanded on its own, or the line after a
396                    // pop would go through the expander in the same batch as the line before it
397                    // and would still see the definition the pop was there to undo.
398                    let operator = ident_of(&first) == Some(names.pragma_op)
399                        || body.iter().any(|t| ident_of(t) == Some(names.pragma_op));
400                    if operator {
401                        self.flush(&mut text, out, cx, names);
402                    }
403                    text.push(Tok::new(first));
404                    text.extend(body.iter().copied().map(Tok::new));
405                    if operator {
406                        self.flush(&mut text, out, cx, names);
407                    }
408                }
409                // A token outside the guard is a token that would be produced twice.
410                if !matches!(scan, Scan::Inside(_)) {
411                    scan = Scan::No;
412                }
413            }
414            // What the lexer complained about while reading that line. A skipped region keeps
415            // its complaints to itself, for the same reason it keeps its directives to itself.
416            let complaints = reader.take_diagnostics();
417            if was_live || self.live() {
418                self.diagnostics.extend(complaints);
419            }
420        }
421        self.flush(&mut text, out, cx, names);
422        self.diagnostics.extend(reader.take_diagnostics());
423
424        // The guard only counts if the macro really did get defined. A file that opens with
425        // `#ifndef X` and never defines `X` is a file that has to be read again.
426        if let Scan::Closed(name) = scan {
427            if self.macros.is_defined(name) {
428                if let Some(frame) = self.stack.last() {
429                    self.seen.entry(frame.id.clone()).or_insert(Guard::Macro(name));
430                }
431            }
432        }
433
434        // A file may not close a conditional it did not open. GCC reports this at the `#if`,
435        // which is the line the user has to go and look at.
436        for cond in self.conds.drain(depth_on_entry..) {
437            self.diagnostics
438                .push(Diagnostic::error("unterminated `#if`", cond.span).with_code("E0330"));
439        }
440    }
441
442    /// Whether tokens are currently being kept.
443    fn live(&self) -> bool {
444        self.conds.last().is_none_or(|c| c.live)
445    }
446
447    /// Expands a run of text lines and appends it to the output.
448    fn flush(
449        &mut self,
450        text: &mut Vec<Tok>,
451        out: &mut Vec<Tok>,
452        cx: &mut Context<'_>,
453        names: &Names,
454    ) {
455        if text.is_empty() {
456            return;
457        }
458        let taken = std::mem::take(text);
459        let expanded = self.expander.expand_toks(taken, &self.macros, cx.interner, cx.sources);
460        self.diagnostics.append(&mut self.expander.take_diagnostics());
461        // To GCC and clang the `__has_*` family are builtin macros rather than something the
462        // conditional parser knows about, so they answer in ordinary text too. After expansion
463        // and not before it, because a macro is allowed to expand to a call of one and because
464        // the operand is expanded first, which is what happens on a `#if` line as well.
465        let expanded = self.resolve_has(expanded, cx, names, Pass::Text);
466        self.pragma_operator(expanded, out, cx.interner, names);
467    }
468
469    /// Dispatches one directive. `body` is the line after the `#`.
470    fn directive(
471        &mut self,
472        body: &[PpToken],
473        hash: Span,
474        out: &mut Vec<Tok>,
475        cx: &mut Context<'_>,
476        names: &Names,
477    ) {
478        let Some(first) = body.first().copied() else {
479            return;
480        };
481        let name = ident_of(&first);
482        let rest = &body[1..];
483
484        // Conditionals are handled whether or not the region is live, because the nesting has
485        // to stay balanced through a skipped block.
486        if name == Some(names.r#if) {
487            let value = self.live() && self.eval(rest, hash, cx, names);
488            self.open(hash, value);
489            return;
490        }
491        if name == Some(names.ifdef) || name == Some(names.ifndef) {
492            let want = name == Some(names.ifdef);
493            let value = self.live() && self.defined_check(rest, hash, want, names);
494            self.open(hash, value);
495            return;
496        }
497        if name == Some(names.elif) || name == Some(names.elifdef) || name == Some(names.elifndef) {
498            self.elif(name, rest, hash, cx, names);
499            return;
500        }
501        if name == Some(names.r#else) {
502            self.branch_else(rest, hash);
503            return;
504        }
505        if name == Some(names.endif) {
506            self.endif(rest, hash);
507            return;
508        }
509        if !self.live() {
510            // Everything else inside a skipped region is text, not a directive. `#error` in
511            // the branch that was not taken must not fire, and `# 42 "f.c"` from another
512            // preprocessor must not be diagnosed.
513            return;
514        }
515
516        // A `#` and a number is a GNU line marker rather than a directive whose name happens to
517        // be missing, and it is what `-E` output is full of, so it is answered before anything
518        // asks what the directive is called.
519        if name.is_none() && decimal(&first, cx.interner).is_some() {
520            self.line_marker(body, hash, out.len(), cx);
521            return;
522        }
523
524        let interner = &mut *cx.interner;
525        if name == Some(names.define) {
526            let (def, diagnostics) = parse_define(rest, interner);
527            self.diagnostics.extend(diagnostics);
528            if let Some(def) = def {
529                if let Some(problem) = self.macros.define(def, interner) {
530                    self.diagnostics.push(problem);
531                }
532            }
533        } else if name == Some(names.undef) {
534            self.undef(rest, hash, interner);
535        } else if name == Some(names.error) || name == Some(names.warning) {
536            self.message(rest, hash, name == Some(names.error), interner);
537        } else if name == Some(names.line) {
538            self.line(rest, hash, out.len(), cx);
539        } else if name == Some(names.pragma) {
540            // `#pragma once` is answered here and does not reach the output, because it is a
541            // question about the file rather than something a later phase can act on.
542            // Everything else is passed through unchanged, which is what `-E` has to print
543            // and what a later phase looking for `#pragma pack` will read. Inventing an
544            // internal representation now, with no consumer, would only be a thing to
545            // migrate later.
546            if rest.len() == 1 && ident_of(&rest[0]) == Some(names.once) {
547                self.pragma_once(rest[0].span);
548            } else if !self.macro_stack_pragma(rest, hash, interner, names) {
549                self.pass_through(body, hash, out);
550            }
551        } else if name == Some(names.include) || name == Some(names.include_next) {
552            self.include(rest, hash, name == Some(names.include_next), out, cx, names);
553        } else if name == Some(names.embed) {
554            self.embed(rest, hash, out, cx);
555        } else {
556            self.diagnostics.push(
557                Diagnostic::error("invalid preprocessing directive", first.span).with_code("E0332"),
558            );
559        }
560    }
561
562    /// Answers `#pragma push_macro("X")` and `#pragma pop_macro("X")`, or says it is not one.
563    ///
564    /// These are the two pragmas that act on the macro table, so this phase is the only one that
565    /// can answer them, and like `#pragma once` they do not reach the output: gcc consumes them
566    /// and a later phase given one could not do anything with it. That is what clang's
567    /// `__clang_cuda_complex_builtins.h` needs, which pushes `__DEVICE__`, redefines it for the
568    /// file and pops it at the end.
569    ///
570    /// The `GCC` namespaced spelling is deliberately not accepted, because gcc does not accept
571    /// it either: `#pragma GCC push_macro("X")` is passed through and does nothing, and matching
572    /// that matters more than the spelling looking symmetric with the pragmas that do take it.
573    fn macro_stack_pragma(
574        &mut self,
575        rest: &[PpToken],
576        at: Span,
577        interner: &mut Interner,
578        names: &Names,
579    ) -> bool {
580        let which = match rest.first().and_then(ident_of) {
581            Some(name) if name == names.push_macro => names.push_macro,
582            Some(name) if name == names.pop_macro => names.pop_macro,
583            _ => return false,
584        };
585        let word = if which == names.push_macro { "push_macro" } else { "pop_macro" };
586        // Once the word is recognised the line is one of these whatever follows it, so a line
587        // that is not the shape is an error rather than something to pass through. gcc says the
588        // same thing, and warns about anything after the closing parenthesis the way it warns
589        // about anything after any other directive.
590        let [_, open, text, close, extra @ ..] = rest else {
591            self.invalid_pragma(word, at);
592            return true;
593        };
594        if open.punct() != Some(Punct::LParen)
595            || text.kind != PpTokenKind::StringLit
596            || close.punct() != Some(Punct::RParen)
597        {
598            self.invalid_pragma(word, at);
599            return true;
600        }
601        self.extra_tokens(extra, "#pragma");
602        // A string that does not spell one identifier names no macro, and gcc neither complains
603        // about it nor does anything with it. `push_macro("a b")` is quietly nothing, which is
604        // worth matching rather than improving on: a header that has one is a header that has
605        // been building against gcc for years.
606        let Some(name) = identifier_in(*text, interner) else {
607            return true;
608        };
609        if which == names.push_macro {
610            self.macros.push_macro(name);
611        } else {
612            self.macros.pop_macro(name);
613        }
614        true
615    }
616
617    fn invalid_pragma(&mut self, word: &str, at: Span) {
618        self.diagnostics.push(
619            Diagnostic::error(format!("invalid `#pragma {word}` directive"), at).with_code("E0672"),
620        );
621    }
622
623    /// Records that the file currently being read asked to be read only once.
624    fn pragma_once(&mut self, at: Span) {
625        // In the main file this is worth saying something about, since the file the user named
626        // is not one anything includes and the line usually means the user thought it was a
627        // header. It is still applied, because a file that includes itself is exactly where the
628        // line does work in a main file, and GCC both warns and applies it.
629        if self.stack.len() <= 1 {
630            self.diagnostics.push(
631                Diagnostic::warning("`#pragma once` in the main file", at).with_code("W0332"),
632            );
633        }
634        if let Some(frame) = self.stack.last() {
635            self.seen.insert(frame.id.clone(), Guard::Once);
636        }
637    }
638
639    /// Whether a file has already given everything it has to give.
640    fn skip(&self, id: &Path) -> bool {
641        match self.seen.get(id) {
642            Some(Guard::Once) => true,
643            Some(Guard::Macro(name)) => self.macros.is_defined(*name),
644            None => false,
645        }
646    }
647
648    /// Copies a directive line into the output, `#` included.
649    fn pass_through(&mut self, body: &[PpToken], hash: Span, out: &mut Vec<Tok>) {
650        let _ = self;
651        out.push(Tok::synthetic(
652            PpTokenKind::Punct(Punct::Hash),
653            None,
654            TokenFlags::START_OF_LINE,
655            hash,
656        ));
657        // The space between the hash and the word comes off, so that a directive written
658        // `#  pragma` inside a nest of conditionals, which is how glibc indents them, prints
659        // back as `#pragma`. gcc does the same, and the rest of the line keeps the spacing it
660        // was written with.
661        for (at, token) in body.iter().copied().enumerate() {
662            let mut token = Tok::new(token);
663            if at == 0 {
664                token.flags = token.flags.without(TokenFlags::LEADING_SPACE);
665            }
666            out.push(token);
667        }
668    }
669
670    /// Resolves an `#include` or `#include_next` and reads what it names.
671    fn include(
672        &mut self,
673        rest: &[PpToken],
674        hash: Span,
675        is_next: bool,
676        out: &mut Vec<Tok>,
677        cx: &mut Context<'_>,
678        names: &Names,
679    ) {
680        let Some(header) = self.header_of(rest, hash, cx) else {
681            return;
682        };
683        let (form, relative_to, from) = self.where_to_look(&header, is_next, cx);
684        let found = cx.search.resolve(cx.fs, &header.name, form, relative_to.as_deref(), from);
685        let Some(found) = found else {
686            let tried = cx.search.tried(&header.name, form, relative_to.as_deref(), from);
687            self.not_found(&header.name, hash, &tried);
688            return;
689        };
690        self.read(found, hash, out, cx, names);
691    }
692
693    /// Reports an include of a file that is not anywhere the search looked.
694    fn not_found(&mut self, name: &str, at: Span, tried: &[PathBuf]) {
695        // Two ways to have looked nowhere. An absolute name is opened and not searched for,
696        // and a search path with nothing on it has nowhere to look. Saying the first when it
697        // was the second sends the reader after a path that is not there.
698        let where_looked = if tried.is_empty() && Path::new(name).is_absolute() {
699            "the name is an absolute path, so the search path was not used".to_owned()
700        } else if tried.is_empty() {
701            "the include search path is empty".to_owned()
702        } else {
703            let list: Vec<String> =
704                tried.iter().map(|d| d.to_string_lossy().into_owned()).collect();
705            format!("searched: {}", list.join(", "))
706        };
707        self.diagnostics.push(
708            Diagnostic::error(format!("`{name}` file not found"), at)
709                .with_code("E0341")
710                .note(where_looked, at),
711        );
712    }
713
714    /// Reads the file a finished search named, appending what it produces to `out`.
715    ///
716    /// The half of an include that is about the file rather than about the directive, so that the
717    /// files `-include` and `-imacros` name go through it as well. They are includes with no
718    /// directive to parse, and everything from here down is what makes one an include: the
719    /// dependency record, the guard optimization, the depth limit and the frame.
720    fn read(
721        &mut self,
722        found: Found,
723        at: Span,
724        out: &mut Vec<Tok>,
725        cx: &mut Context<'_>,
726        names: &Names,
727    ) {
728        let id = cx.fs.identity(&found.path);
729        // Recorded before anything below can turn the include away, because every one of those
730        // refusals is about reading the file again rather than about whether the file is one
731        // this translation unit was built from. A header the guard optimization skips is still
732        // a header that, if it changed, would change the output.
733        if self.dep_ids.insert(id.clone()) {
734            // The `.` components come out, which is what GCC writes and is measured: `-I./d`
735            // gives a prerequisite of `d/f.h` there while the line marker and `__FILE__` for the
736            // same header both say `./d/f.h`. The two answers are to two different questions. A
737            // marker names the file the way the search reached it, which is what a debugger and
738            // a `#line` are about, and a prerequisite names a file `make` has to compare a
739            // timestamp against, which the leading `./` says nothing about.
740            let path = rucc_session::path_key(&found.path);
741            self.deps.push(Dependency { path, is_system: found.is_system });
742        }
743        // The multiple-include optimization. A file wrapped in an include guard whose macro
744        // is now defined, or one that asked for `#pragma once`, would produce nothing, so it
745        // is not opened at all. On a real code base this is the difference between reading a
746        // header once and reading it a few hundred times.
747        if self.skip(&id) {
748            return;
749        }
750        if self.stack.len() >= cx.max_include_depth as usize {
751            let mut diagnostic = Diagnostic::error("`#include` nested too deeply", at)
752                .with_code("E0342")
753                .note("a header that includes itself with no include guard is the usual cause", at);
754            if let Some(outer) = self.stack.first().filter(|f| !f.at.is_dummy()) {
755                diagnostic = diagnostic.note("the outermost include is here", outer.at);
756            }
757            self.diagnostics.push(diagnostic);
758            return;
759        }
760        let added = cx.sources.add_shared(found.name.clone(), found.bytes.clone(), Some(at));
761        let file = match added {
762            Ok(file) => file,
763            Err(full) => {
764                self.diagnostics.push(Diagnostic::error(full.to_string(), at).with_code("E0344"));
765                return;
766            }
767        };
768        self.stack.push(Frame {
769            at,
770            dir: found.path.parent().map(Path::to_path_buf),
771            id,
772            path: found.path,
773            next: found.next,
774        });
775        self.process(file, out, cx, names);
776        self.stack.pop();
777    }
778
779    /// Reads an `#embed` and puts the bytes of what it names into the output.
780    fn embed(&mut self, rest: &[PpToken], hash: Span, out: &mut Vec<Tok>, cx: &mut Context<'_>) {
781        let Some((header, params)) = self.embed_line(rest, hash, cx) else {
782            return;
783        };
784        let Some(found) = self.find(&header, false, cx) else {
785            self.diagnostics.push(
786                Diagnostic::error(format!("`{}` resource not found", header.name), hash)
787                    .with_code("E0341")
788                    .note("an `#embed` resource is looked for on the include path", hash),
789            );
790            return;
791        };
792        // The bytes are not added to the source map. Nothing will ever point a diagnostic
793        // into the middle of a PNG, and adding a few megabytes of binary to the map so that
794        // it can be sliced for a caret line nobody will print is the kind of cost that only
795        // shows up on the projects this directive exists for.
796        embed::tokens(found.bytes.as_slice(), &params, hash, cx.interner, out);
797    }
798
799    /// Splits an `#embed` line into the resource it names and the parameters after it.
800    fn embed_line(
801        &mut self,
802        rest: &[PpToken],
803        hash: Span,
804        cx: &mut Context<'_>,
805    ) -> Option<(Header, embed::Params)> {
806        if rest.is_empty() {
807            self.bad_header(hash);
808            return None;
809        }
810        let line: Vec<Tok> = rest.iter().copied().map(Tok::new).collect();
811        // A name the lexer already made a header name of is not expanded, exactly as with
812        // `#include`. A computed one has the whole line expanded, parameters included, which
813        // is a compromise: the end of the name cannot be found without expanding, and the
814        // parameter names would have to be found before expanding to protect them. A macro
815        // called `limit` in scope at an `#embed` is not a thing worth splitting the pass for.
816        let line = if line[0].kind == PpTokenKind::HeaderName {
817            line
818        } else {
819            let expanded = self.expander.expand_toks(line, &self.macros, cx.interner, cx.sources);
820            self.diagnostics.append(&mut self.expander.take_diagnostics());
821            expanded
822        };
823        let Some(used) = embed::header_length(&line) else {
824            self.bad_header(line.first().map_or(hash, |t| t.report_span()));
825            return None;
826        };
827        let header = if line[0].kind == PpTokenKind::HeaderName {
828            header_from_token(spelling(line[0], cx.interner))
829        } else {
830            let spellings: Vec<&str> =
831                line[..used].iter().map(|t| spelling(*t, cx.interner)).collect();
832            header_from_tokens(&spellings)
833        };
834        let Some(header) = header else {
835            self.bad_header(line[0].report_span());
836            return None;
837        };
838        let params = self.embed_params(&line[used..], hash, cx)?;
839        Some((header, params))
840    }
841
842    /// The parameter list of an `#embed`, or of the `__has_embed` that asks the same question.
843    fn embed_params(
844        &mut self,
845        line: &[Tok],
846        at: Span,
847        cx: &mut Context<'_>,
848    ) -> Option<embed::Params> {
849        let Preprocessor { expander, macros, diagnostics, .. } = self;
850        let sources = &mut *cx.sources;
851        let mut expand = |toks: Vec<Tok>, interner: &mut Interner| {
852            expander.expand_toks(toks, macros, interner, sources)
853        };
854        let params = embed::parse(line, at, cx.interner, diagnostics, &mut expand);
855        self.diagnostics.append(&mut self.expander.take_diagnostics());
856        params
857    }
858
859    /// Where a header written in the file being read is looked for.
860    ///
861    /// `#include_next` continues from the directory after the one the current file came from,
862    /// which is what glibc and the kernel use to wrap a system header with one of the same
863    /// name. It never looks next to the current file, because that directory is not on the
864    /// path and there would be nothing to continue past.
865    ///
866    /// `__has_include` has to ask the same question the directive would, so both go through
867    /// here. A header that answers yes and then fails to be found is the one outcome that
868    /// would make the operator useless.
869    fn where_to_look(
870        &self,
871        header: &Header,
872        is_next: bool,
873        cx: &Context<'_>,
874    ) -> (IncludeForm, Option<PathBuf>, usize) {
875        let form = if header.angled { IncludeForm::Angled } else { IncludeForm::Quoted };
876        let frame = self.stack.last();
877        let from = if is_next {
878            frame.map_or(0, |f| f.next).max(cx.search.start(form))
879        } else {
880            cx.search.start(form)
881        };
882        let relative_to = if is_next { None } else { frame.and_then(|f| f.dir.clone()) };
883        (form, relative_to, from)
884    }
885
886    /// Whether a header is there, which is all `__has_include` asks.
887    fn find(&self, header: &Header, is_next: bool, cx: &Context<'_>) -> Option<Found> {
888        let (form, relative_to, from) = self.where_to_look(header, is_next, cx);
889        cx.search.resolve(cx.fs, &header.name, form, relative_to.as_deref(), from)
890    }
891
892    /// The header name an include directive names, however it spelled it.
893    fn header_of(&mut self, rest: &[PpToken], hash: Span, cx: &mut Context<'_>) -> Option<Header> {
894        if let Some(first) = rest.first().copied() {
895            if first.kind == PpTokenKind::HeaderName {
896                let text = first.value.map_or("", |v| cx.interner.resolve(v));
897                let header = header_from_token(text);
898                if header.is_none() {
899                    self.bad_header(first.span);
900                }
901                self.extra_tokens(&rest[1..], "#include");
902                return header;
903            }
904        }
905        // The computed include, `#include MACRO`. The line is macro expanded and then has to
906        // look like a header name, which is the one place in the language where the spelling
907        // of a token matters after expansion.
908        if rest.is_empty() {
909            self.bad_header(hash);
910            return None;
911        }
912        let line: Vec<Tok> = rest.iter().copied().map(Tok::new).collect();
913        let expanded = self.expander.expand_toks(line, &self.macros, cx.interner, cx.sources);
914        self.diagnostics.append(&mut self.expander.take_diagnostics());
915        let spellings: Vec<&str> = expanded.iter().map(|t| spelling(*t, cx.interner)).collect();
916        let header = header_from_tokens(&spellings);
917        if header.is_none() {
918            let at = expanded.first().map_or(hash, |t| t.report_span());
919            self.bad_header(at);
920        }
921        header
922    }
923
924    /// The diagnostic for a `__has_*` operator whose operand is not an identifier.
925    fn bad_operand(&mut self, tok: Tok, at: Span, interner: &Interner) {
926        self.diagnostics.push(
927            Diagnostic::error(
928                format!("expected an identifier as the operand of `{}`", spelling(tok, interner)),
929                at,
930            )
931            .with_code("E0345"),
932        );
933    }
934
935    fn bad_header(&mut self, at: Span) {
936        self.diagnostics.push(
937            Diagnostic::error("expected a file name in `<>` or `\"\"`", at).with_code("E0343"),
938        );
939    }
940
941    /// Pushes a conditional whose first branch is or is not taken.
942    fn open(&mut self, span: Span, value: bool) {
943        let enclosing_live = self.live();
944        self.conds.push(Cond {
945            span,
946            live: enclosing_live && value,
947            taken: value,
948            enclosing_live,
949            seen_else: false,
950        });
951    }
952
953    fn elif(
954        &mut self,
955        name: Option<Symbol>,
956        rest: &[PpToken],
957        hash: Span,
958        cx: &mut Context<'_>,
959        names: &Names,
960    ) {
961        let Some(top) = self.conds.last() else {
962            self.stray("elif", hash);
963            return;
964        };
965        if top.seen_else {
966            self.diagnostics
967                .push(Diagnostic::error("`#elif` after `#else`", hash).with_code("E0333"));
968            return;
969        }
970        // Read what is needed before evaluating, because evaluation borrows the whole
971        // preprocessor to report into.
972        let (enclosing_live, already_taken) = (top.enclosing_live, top.taken);
973        let consider = enclosing_live && !already_taken;
974        let value = if !consider {
975            false
976        } else if name == Some(names.elif) {
977            self.eval(rest, hash, cx, names)
978        } else {
979            self.defined_check(rest, hash, name == Some(names.elifdef), names)
980        };
981        let top = self.conds.last_mut().expect("checked above and nothing popped");
982        top.live = consider && value;
983        top.taken = already_taken || value;
984    }
985
986    fn branch_else(&mut self, rest: &[PpToken], hash: Span) {
987        let Some(top) = self.conds.last_mut() else {
988            self.stray("else", hash);
989            return;
990        };
991        if top.seen_else {
992            self.diagnostics.push(Diagnostic::error("a second `#else`", hash).with_code("E0333"));
993            return;
994        }
995        top.live = top.enclosing_live && !top.taken;
996        top.taken = true;
997        top.seen_else = true;
998        let enclosing_live = top.enclosing_live;
999        if enclosing_live {
1000            self.extra_tokens(rest, "#else");
1001        }
1002    }
1003
1004    fn endif(&mut self, rest: &[PpToken], hash: Span) {
1005        if self.conds.pop().is_none() {
1006            self.stray("endif", hash);
1007            return;
1008        }
1009        if self.live() {
1010            self.extra_tokens(rest, "#endif");
1011        }
1012    }
1013
1014    fn stray(&mut self, what: &str, hash: Span) {
1015        self.diagnostics
1016            .push(Diagnostic::error(format!("`#{what}` without `#if`"), hash).with_code("E0334"));
1017    }
1018
1019    /// Warns about tokens after a directive that takes none.
1020    ///
1021    /// A warning rather than an error, because `#endif FOO` as a hand written comment is
1022    /// everywhere in code written before `//` was portable.
1023    fn extra_tokens(&mut self, rest: &[PpToken], what: &str) {
1024        if let Some(first) = rest.first() {
1025            self.diagnostics.push(
1026                Diagnostic::warning(format!("extra tokens after `{what}`"), first.span)
1027                    .with_code("W0330"),
1028            );
1029        }
1030    }
1031
1032    /// Evaluates a `#if` or `#elif` expression.
1033    fn eval(&mut self, rest: &[PpToken], hash: Span, cx: &mut Context<'_>, names: &Names) -> bool {
1034        let line: Vec<Tok> = rest.iter().copied().map(Tok::new).collect();
1035        // `defined X` is resolved before expansion, so that `#if defined FOO` does not depend
1036        // on what `FOO` expands to. It is resolved again afterwards because a macro that
1037        // expands to `defined(X)` is undefined behaviour that GCC supports and headers use.
1038        // It goes first of all because `defined(__has_include)` is a question about the
1039        // operator rather than a use of it.
1040        let line = self.resolve_defined(line, cx.interner, names);
1041        // `__has_include` is resolved before expansion too, and for a stronger reason: its
1042        // operand is a header name, so expanding `<linux/version.h>` would turn `linux` into
1043        // `1` on a target where that macro is predefined. The rest of the family take an
1044        // identifier that GCC does expand, so they wait until afterwards.
1045        let line = self.resolve_has(line, cx, names, Pass::Headers);
1046        let line = self.expander.expand_toks(line, &self.macros, cx.interner, cx.sources);
1047        self.diagnostics.append(&mut self.expander.take_diagnostics());
1048        let line = self.resolve_defined(line, cx.interner, names);
1049        let line = self.resolve_has(line, cx, names, Pass::Rest);
1050        cond::evaluate(&line, cx.interner, &mut self.diagnostics, hash)
1051    }
1052
1053    /// Replaces `__has_include(<x.h>)` and the rest of the family with what they answer.
1054    ///
1055    /// `pass` says which of the three positions is asking, and each of them answers a
1056    /// different part of the family. See [`Pass`].
1057    fn resolve_has(
1058        &mut self,
1059        line: Vec<Tok>,
1060        cx: &mut Context<'_>,
1061        names: &Names,
1062        pass: Pass,
1063    ) -> Vec<Tok> {
1064        if !line.iter().any(|t| t.ident().is_some_and(|n| names.has.op(n).is_some())) {
1065            return line;
1066        }
1067        let mut out = Vec::with_capacity(line.len());
1068        let mut at = 0;
1069        while at < line.len() {
1070            let tok = line[at];
1071            let op = tok.ident().and_then(|n| names.has.op(n));
1072            let Some(op) = op.filter(|op| pass.answers(*op)) else {
1073                if pass == Pass::Text && op.is_some_and(Op::is_header) {
1074                    self.outside_a_directive(tok, cx);
1075                }
1076                out.push(tok);
1077                at += 1;
1078                continue;
1079            };
1080            let Some((operand, after)) = arguments(&line, at + 1) else {
1081                // Reported in the pass after expansion and not in the one before it, because
1082                // the operator is still there for that pass to find and one mistake is one
1083                // diagnostic.
1084                if pass != Pass::Headers {
1085                    self.diagnostics.push(
1086                        Diagnostic::error(
1087                            format!("expected `(` after `{}`", spelling(tok, cx.interner)),
1088                            tok.report_span(),
1089                        )
1090                        .with_code("E0345"),
1091                    );
1092                }
1093                out.push(tok);
1094                at += 1;
1095                continue;
1096            };
1097            at = after;
1098            // A number rather than a flag, because `__has_c_attribute` answers with the value
1099            // the standard gives the attribute and a header compares that against a date.
1100            let value = self.ask(op, operand, tok, cx);
1101            let sym = cx.interner.intern(&value.to_string());
1102            out.push(Tok::synthetic(PpTokenKind::Number, Some(sym), tok.flags, tok.report_span()));
1103        }
1104        out
1105    }
1106
1107    /// Refuses one of the header operators used in ordinary text.
1108    ///
1109    /// Their operand is a header name, and outside a directive the line was scanned as
1110    /// ordinary tokens, so `<stdio.h>` arrived as a chain of comparisons that no longer says
1111    /// which of the two it was meant to be. GCC and clang both refuse it for that reason, and
1112    /// a program that wants the answer in text can put the operator in a `#if` and define a
1113    /// macro from it, which is what every header that needs one does anyway.
1114    fn outside_a_directive(&mut self, tok: Tok, cx: &Context<'_>) {
1115        self.diagnostics.push(
1116            Diagnostic::error(
1117                format!(
1118                    "`{}` used outside of a preprocessing directive",
1119                    spelling(tok, cx.interner)
1120                ),
1121                tok.report_span(),
1122            )
1123            .with_code("E0350"),
1124        );
1125    }
1126
1127    /// What one `__has_*` operator answers for one operand.
1128    fn ask(&mut self, op: Op, operand: &[Tok], tok: Tok, cx: &mut Context<'_>) -> u32 {
1129        let at = operand.first().map_or(tok.report_span(), |t| t.report_span());
1130        match op {
1131            Op::Include | Op::IncludeNext => {
1132                let spellings: Vec<&str> =
1133                    operand.iter().map(|t| spelling(*t, cx.interner)).collect();
1134                let Some(header) = header_from_tokens(&spellings) else {
1135                    self.bad_header(at);
1136                    return 0;
1137                };
1138                u32::from(self.find(&header, op == Op::IncludeNext, cx).is_some())
1139            }
1140            Op::Embed => {
1141                // Three answers, and the third one is the reason the operator exists. A
1142                // resource that is present but empty cannot be told from one that is missing
1143                // by a yes or no, and the two need different code: the empty one still needs
1144                // its `if_empty` written, the missing one needs a fallback.
1145                let Some(used) = embed::header_length(operand) else {
1146                    self.bad_header(at);
1147                    return 0;
1148                };
1149                let header = if operand[0].kind == PpTokenKind::HeaderName {
1150                    header_from_token(spelling(operand[0], cx.interner))
1151                } else {
1152                    let spellings: Vec<&str> =
1153                        operand[..used].iter().map(|t| spelling(*t, cx.interner)).collect();
1154                    header_from_tokens(&spellings)
1155                };
1156                let Some(header) = header else {
1157                    self.bad_header(at);
1158                    return 0;
1159                };
1160                // The parameters are read even though only `limit` and `gnu::offset` can
1161                // change the answer, because a misspelled parameter is the same mistake here
1162                // as it is on the directive and finding it only on the directive would mean
1163                // the guard passes and the embed it guards fails.
1164                let Some(params) = self.embed_params(&operand[used..], at, cx) else {
1165                    return 0;
1166                };
1167                match self.find(&header, false, cx) {
1168                    None => 0,
1169                    Some(found) => {
1170                        let taken = params.taken(found.bytes.as_slice().len() as u64);
1171                        if taken == 0 { 2 } else { 1 }
1172                    }
1173                }
1174            }
1175            Op::BuildingModule => {
1176                if attribute_name(operand, cx.interner).is_none() {
1177                    self.bad_operand(tok, at, cx.interner);
1178                }
1179                // Clang answers this with one only while it is compiling the module named
1180                // here, and we do not have modules, so the answer is always no. It is
1181                // recognised rather than left alone because clang's own `stddef.h` asks it
1182                // inside an `#if`, and an unknown identifier there leaves the parenthesised
1183                // operand behind as extra tokens, which fails the whole line rather than the
1184                // one operator.
1185                0
1186            }
1187            Op::Table(kind) => {
1188                let Some(name) = attribute_name(operand, cx.interner) else {
1189                    self.bad_operand(tok, at, cx.interner);
1190                    return 0;
1191                };
1192                match kind {
1193                    Kind::Attribute => rucc_gnu::has_attribute(name),
1194                    Kind::CAttribute => rucc_gnu::has_c_attribute(name),
1195                    Kind::Builtin => rucc_gnu::has_builtin(name),
1196                    Kind::Feature => rucc_gnu::has_feature(name),
1197                    Kind::Extension => rucc_gnu::has_extension(name),
1198                }
1199            }
1200        }
1201    }
1202
1203    /// Replaces `defined X` and `defined(X)` with `1` or `0`.
1204    fn resolve_defined(
1205        &mut self,
1206        line: Vec<Tok>,
1207        interner: &mut Interner,
1208        names: &Names,
1209    ) -> Vec<Tok> {
1210        if !line.iter().any(|t| t.ident() == Some(names.defined)) {
1211            return line;
1212        }
1213        let mut out = Vec::with_capacity(line.len());
1214        let mut at = 0;
1215        while at < line.len() {
1216            let tok = line[at];
1217            if tok.ident() != Some(names.defined) {
1218                out.push(tok);
1219                at += 1;
1220                continue;
1221            }
1222            let parenthesised = line.get(at + 1).is_some_and(|t| t.is(Punct::LParen));
1223            let name_at = if parenthesised { at + 2 } else { at + 1 };
1224            let name = line.get(name_at).and_then(|t| t.ident());
1225            let Some(name) = name else {
1226                self.diagnostics.push(
1227                    Diagnostic::error("`defined` without a macro name", tok.report_span())
1228                        .with_code("E0335"),
1229                );
1230                out.push(tok);
1231                at += 1;
1232                continue;
1233            };
1234            at = name_at + 1;
1235            if parenthesised {
1236                if line.get(at).is_some_and(|t| t.is(Punct::RParen)) {
1237                    at += 1;
1238                } else {
1239                    self.diagnostics.push(
1240                        Diagnostic::error("expected `)` after `defined`", tok.report_span())
1241                            .with_code("E0335"),
1242                    );
1243                }
1244            }
1245            // A header asks `#ifdef __has_include` before using it, because the operator is
1246            // newer than some of the compilers it has to build under. It is not a macro, but
1247            // the question being asked is whether the name means something, and it does.
1248            let value = self.macros.is_defined(name) || names.has.op(name).is_some();
1249            out.push(number(value, tok.flags, tok.report_span(), interner));
1250        }
1251        out
1252    }
1253
1254    /// The body of `#ifdef`, `#ifndef`, `#elifdef` and `#elifndef`.
1255    fn defined_check(
1256        &mut self,
1257        rest: &[PpToken],
1258        hash: Span,
1259        want_defined: bool,
1260        names: &Names,
1261    ) -> bool {
1262        let Some(name) = rest.first().and_then(ident_of) else {
1263            self.diagnostics.push(
1264                Diagnostic::error("expected a macro name", rest.first().map_or(hash, |t| t.span))
1265                    .with_code("E0336"),
1266            );
1267            return false;
1268        };
1269        self.extra_tokens(&rest[1..], if want_defined { "#ifdef" } else { "#ifndef" });
1270        let defined = self.macros.is_defined(name) || names.has.op(name).is_some();
1271        defined == want_defined
1272    }
1273
1274    fn undef(&mut self, rest: &[PpToken], hash: Span, interner: &Interner) {
1275        let Some(name) = rest.first().and_then(ident_of) else {
1276            self.diagnostics.push(
1277                Diagnostic::error("expected a macro name", rest.first().map_or(hash, |t| t.span))
1278                    .with_code("E0336"),
1279            );
1280            return;
1281        };
1282        // The standard reserves these and GCC refuses to let them go, because code that
1283        // undefines `__FILE__` and then uses it is broken in a way that is very hard to see.
1284        let text = interner.resolve(name);
1285        if text == "defined" || text.starts_with("__STDC_") {
1286            self.diagnostics.push(
1287                Diagnostic::error(format!("`{text}` cannot be undefined"), rest[0].span)
1288                    .with_code("E0337"),
1289            );
1290            return;
1291        }
1292        self.macros.undef(name);
1293        self.extra_tokens(&rest[1..], "#undef");
1294    }
1295
1296    /// `#error` and `#warning`. The message is the rest of the line, spelled back.
1297    fn message(&mut self, rest: &[PpToken], hash: Span, fatal: bool, interner: &Interner) {
1298        let text = spell_line(rest, interner);
1299        let span = rest.first().map_or(hash, |t| t.span.to(last_span(rest)));
1300        let diag = if fatal {
1301            Diagnostic::error(text, span).with_code("E0338")
1302        } else {
1303            Diagnostic::warning(text, span).with_code("W0331")
1304        };
1305        self.diagnostics.push(diag);
1306    }
1307
1308    /// `#line 42` and `#line 42 "file.c"`.
1309    ///
1310    /// The argument is macro expanded first, which is the one place a directive other than
1311    /// `#if` does that, and which exists because `#line __LINE__ + 1` is real code.
1312    fn line(&mut self, rest: &[PpToken], hash: Span, at: usize, cx: &mut Context<'_>) {
1313        let line: Vec<Tok> = rest.iter().copied().map(Tok::new).collect();
1314        let line = self.expander.expand_toks(line, &self.macros, cx.interner, cx.sources);
1315        self.diagnostics.append(&mut self.expander.take_diagnostics());
1316        let interner = &mut *cx.interner;
1317
1318        let number_text = line
1319            .first()
1320            .filter(|t| t.kind == PpTokenKind::Number)
1321            .and_then(|t| t.value)
1322            .map(|v| interner.resolve(v));
1323        let Some(parsed) = number_text.and_then(|t| t.parse::<u64>().ok()) else {
1324            self.diagnostics.push(
1325                Diagnostic::error(
1326                    "`#line` needs a decimal line number",
1327                    line.first().map_or(hash, |t| t.report_span()),
1328                )
1329                .with_code("E0339"),
1330            );
1331            return;
1332        };
1333        // 2147483647 is the largest line number the standard requires support for, and it is
1334        // also where every other compiler stops, so matching that keeps diagnostics comparable.
1335        if parsed == 0 || parsed > 2_147_483_647 {
1336            self.diagnostics.push(
1337                Diagnostic::error("`#line` number is out of range", line[0].report_span())
1338                    .with_code("E0339"),
1339            );
1340            return;
1341        }
1342
1343        let mut file = None;
1344        if let Some(second) = line.get(1) {
1345            if second.kind == PpTokenKind::StringLit {
1346                file = second.value;
1347            } else {
1348                self.diagnostics.push(
1349                    Diagnostic::error(
1350                        "`#line` file name must be a string literal",
1351                        second.report_span(),
1352                    )
1353                    .with_code("E0339"),
1354                );
1355                return;
1356            }
1357        }
1358        if let Some(extra) = line.get(2) {
1359            self.diagnostics.push(
1360                Diagnostic::warning("extra tokens after `#line`", extra.report_span())
1361                    .with_code("W0330"),
1362            );
1363        }
1364        #[expect(
1365            clippy::cast_possible_truncation,
1366            reason = "the range check above keeps this inside i32, let alone u32"
1367        )]
1368        let number = parsed as u32;
1369        self.lines.push(LineDirective { span: hash, line: number, file, at });
1370        let name = file.map(|v| destringize(cx.interner.resolve(v)));
1371        cx.sources.set_presumed(hash.lo, number, name);
1372    }
1373
1374    /// A GNU line marker: `# 42`, `# 42 "file.c"`, and either of those with flags after it.
1375    ///
1376    /// This is the form `-E` writes, so a preprocessed file handed back to the compiler is full
1377    /// of them, and a compiler that cannot read its own output is not much of a compiler. The
1378    /// directive is a `#` and a number rather than a `#` and a name, which is why it arrives
1379    /// here having failed to be anything else.
1380    ///
1381    /// It is `#line` with three differences. Nothing is macro expanded, because the tokens came
1382    /// from a preprocessor rather than from a person. Zero is a line number, since a generator
1383    /// counting from zero is allowed to say so and `#line 0` is an error only because somebody
1384    /// wrote it. And there may be flags: `1` for entering a file, `2` for returning from one,
1385    /// `3` for a system header and `4` for one whose contents are `extern "C"`. The last two
1386    /// say nothing this phase acts on. The first two are the nesting, and a `2` that does not
1387    /// name the file it claims to be returning to is ignored with a warning rather than
1388    /// applied, which is what gcc does and is the only honest answer to a marker set that does
1389    /// not describe a nesting anything was ever in.
1390    fn line_marker(&mut self, body: &[PpToken], hash: Span, at: usize, cx: &mut Context<'_>) {
1391        let Some(number) = decimal(&body[0], cx.interner) else { return };
1392        let mut rest = &body[1..];
1393        let mut file = None;
1394        if let Some(first) = rest.first().filter(|t| t.kind == PpTokenKind::StringLit) {
1395            file = first.value;
1396            rest = &rest[1..];
1397        }
1398
1399        let (mut entering, mut leaving) = (false, false);
1400        for flag in rest {
1401            match decimal(flag, cx.interner) {
1402                Some(1) => entering = true,
1403                Some(2) => leaving = true,
1404                Some(3 | 4) => {}
1405                _ => {
1406                    let text = spell_line(std::slice::from_ref(flag), cx.interner);
1407                    self.diagnostics.push(
1408                        Diagnostic::error(
1409                            format!("invalid flag `{text}` in line directive"),
1410                            flag.span,
1411                        )
1412                        .with_code("E0339"),
1413                    );
1414                    return;
1415                }
1416            }
1417        }
1418
1419        let name = file.map(|v| destringize(cx.interner.resolve(v)));
1420        if leaving {
1421            if let Some(name) = &name {
1422                if !self.leave_marker(name) {
1423                    self.diagnostics.push(
1424                        Diagnostic::warning(
1425                            format!("file `{name}` linemarker ignored due to incorrect nesting"),
1426                            last_span(body),
1427                        )
1428                        .with_code("W0330"),
1429                    );
1430                    return;
1431                }
1432            } else {
1433                self.markers.pop();
1434            }
1435        }
1436        if entering {
1437            let here = cx.sources.presumed(hash.lo).map(|loc| loc.name.to_owned());
1438            self.markers.push(here.unwrap_or_default());
1439        }
1440
1441        self.lines.push(LineDirective { span: hash, line: number, file, at });
1442        cx.sources.set_presumed(hash.lo, number, name);
1443    }
1444
1445    /// Unwinds the marker nesting to `name`, saying whether it was in it at all.
1446    ///
1447    /// GCC asks whether the file being returned to is the one directly outside, and this asks
1448    /// whether it is anywhere outside, because a marker set is generated and a generator that
1449    /// leaves out a return marker is common. Every `-E` that writes markers where its tokens
1450    /// are rather than where its files change writes such a set, this compiler's own included,
1451    /// since a header that contributes no tokens between two `#include` lines never gets a
1452    /// marker of its own. Answering that with a warning on every file would make the warning
1453    /// noise, and the nesting it describes is still enough to say what a `2` means.
1454    ///
1455    /// A name in neither the markers nor the real include stack is the one that is refused.
1456    /// That is the marker set that describes a nesting nothing was ever in, and gcc refuses it
1457    /// too, so `# 200 "xyz" 2` written at the top of a file is a warning in both compilers.
1458    fn leave_marker(&mut self, name: &str) -> bool {
1459        if let Some(at) = self.markers.iter().rposition(|outer| outer == name) {
1460            self.markers.truncate(at);
1461            return true;
1462        }
1463        // A marker set may begin partway down a real nesting it did not open, which is what a
1464        // header full of them looks like when it is included rather than compiled on its own.
1465        let found = self.stack.iter().rev().skip(1).any(|f| f.path.as_os_str() == name);
1466        if found {
1467            self.markers.clear();
1468        }
1469        found
1470    }
1471
1472    /// Applies the `_Pragma` operator to an expanded run and appends the result.
1473    ///
1474    /// `_Pragma("x")` is a pragma written as an expression, which is what makes a pragma
1475    /// usable from inside a macro. It is handled after expansion because the string it takes
1476    /// is very often produced by one.
1477    fn pragma_operator(
1478        &mut self,
1479        expanded: Vec<Tok>,
1480        out: &mut Vec<Tok>,
1481        interner: &mut Interner,
1482        names: &Names,
1483    ) {
1484        if !expanded.iter().any(|t| t.ident() == Some(names.pragma_op)) {
1485            out.extend(expanded);
1486            return;
1487        }
1488        let mut at = 0;
1489        // A pragma is a line, so whatever comes after one has to start a line, even when the
1490        // source wrote `_Pragma("x") int y;` all on one. Without this the `int` would read as
1491        // part of the pragma to anything that takes the line as the unit, which is what the
1492        // phase that turns these into tokens does.
1493        let mut ends_a_line = false;
1494        while at < expanded.len() {
1495            let mut tok = expanded[at];
1496            if tok.ident() != Some(names.pragma_op) {
1497                if ends_a_line {
1498                    tok.flags = tok.flags.with(TokenFlags::START_OF_LINE);
1499                    ends_a_line = false;
1500                }
1501                out.push(tok);
1502                at += 1;
1503                continue;
1504            }
1505            let open = expanded.get(at + 1).is_some_and(|t| t.is(Punct::LParen));
1506            let text = expanded.get(at + 2).filter(|t| t.kind == PpTokenKind::StringLit);
1507            let close = expanded.get(at + 3).is_some_and(|t| t.is(Punct::RParen));
1508            let (Some(text), true, true) = (text, open, close) else {
1509                self.diagnostics.push(
1510                    Diagnostic::error("`_Pragma` takes a single string literal", tok.report_span())
1511                        .with_code("E0340"),
1512                );
1513                out.push(tok);
1514                at += 1;
1515                continue;
1516            };
1517            let literal = text.value.map(|v| interner.resolve(v)).unwrap_or_default();
1518            let body = destringize(literal);
1519            self.emit_pragma(&body, tok, out, interner, names);
1520            ends_a_line = true;
1521            at += 4;
1522        }
1523    }
1524
1525    /// Turns destringized `_Pragma` text into the `# pragma ...` tokens a later phase reads.
1526    fn emit_pragma(
1527        &mut self,
1528        body: &str,
1529        at: Tok,
1530        out: &mut Vec<Tok>,
1531        interner: &mut Interner,
1532        names: &Names,
1533    ) {
1534        let span = at.report_span();
1535        let (tokens, diagnostics) = tokenize(body.as_bytes(), 0, Options::new(), interner);
1536        // The text came out of a string literal, so a span into it would point at bytes the
1537        // user cannot see. Every token reports at the `_Pragma` instead.
1538        self.diagnostics.extend(
1539            diagnostics
1540                .into_iter()
1541                .map(|d| Diagnostic::new(d.severity, d.message, span).with_code("E0340")),
1542        );
1543        let tokens: Vec<PpToken> = tokens.into_iter().filter(|t| !t.is_eof()).collect();
1544        // `_Pragma("push_macro(\"X\")")` is the same pragma written the other way, and the two
1545        // spellings have to mean the same thing because a macro that wants to save a name has no
1546        // other way to say it: a `#pragma` line cannot come out of a macro body.
1547        if self.macro_stack_pragma(&tokens, span, interner, names) {
1548            return;
1549        }
1550        out.push(Tok::synthetic(
1551            PpTokenKind::Punct(Punct::Hash),
1552            None,
1553            TokenFlags::START_OF_LINE,
1554            span,
1555        ));
1556        out.push(Tok::synthetic(PpTokenKind::Ident, Some(names.pragma), TokenFlags::EMPTY, span));
1557        // The tokens keep the spacing they were written with inside the string, so
1558        // `_Pragma("pack(push)")` prints back as `pack(push)` rather than `pack ( push )`.
1559        // Only the first one is forced apart, from the `pragma` before it.
1560        for (at, t) in tokens.into_iter().enumerate() {
1561            // Start of line has to come off: the line is the `#pragma` we just emitted, not
1562            // the inside of the string these came from.
1563            let spaced = at == 0 || t.flags.has(TokenFlags::LEADING_SPACE);
1564            let flags = if spaced {
1565                TokenFlags::EMPTY.with(TokenFlags::LEADING_SPACE)
1566            } else {
1567                TokenFlags::EMPTY
1568            };
1569            out.push(Tok::synthetic(t.kind, t.value, flags, span));
1570        }
1571    }
1572}
1573
1574/// The macro a file's opening line guards the whole file with, if the line has that shape.
1575///
1576/// `#ifndef NAME` and both spellings of `#if !defined NAME`, which between them are what
1577/// every header in glibc, musl and the kernel is wrapped in.
1578fn guard_opener(body: &[PpToken], names: &Names) -> Option<Symbol> {
1579    let name = ident_of(body.first()?)?;
1580    let rest = &body[1..];
1581    if name == names.ifndef {
1582        let [only] = rest else {
1583            return None;
1584        };
1585        return ident_of(only);
1586    }
1587    if name != names.r#if {
1588        return None;
1589    }
1590    let [bang, defined, tail @ ..] = rest else {
1591        return None;
1592    };
1593    if bang.punct() != Some(Punct::Bang) || ident_of(defined) != Some(names.defined) {
1594        return None;
1595    }
1596    match tail {
1597        [only] => ident_of(only),
1598        [open, only, close]
1599            if open.punct() == Some(Punct::LParen) && close.punct() == Some(Punct::RParen) =>
1600        {
1601            ident_of(only)
1602        }
1603        _ => None,
1604    }
1605}
1606
1607/// Whether a directive name is one that may be followed by a header name.
1608fn is_include(name: Option<Symbol>, names: &Names) -> bool {
1609    name == Some(names.include) || name == Some(names.include_next) || name == Some(names.embed)
1610}
1611
1612/// Whether this token opens a directive line.
1613fn is_directive(tok: PpToken) -> bool {
1614    tok.flags.has(TokenFlags::START_OF_LINE) && tok.punct() == Some(Punct::Hash)
1615}
1616
1617fn ident_of(tok: &PpToken) -> Option<Symbol> {
1618    match tok.kind {
1619        PpTokenKind::Ident => tok.value,
1620        _ => None,
1621    }
1622}
1623
1624fn last_span(tokens: &[PpToken]) -> Span {
1625    tokens.last().map_or(Span::DUMMY, |t| t.span)
1626}
1627
1628/// The value of `tok` when it is a plain decimal number a line can be called.
1629///
1630/// A preprocessing number is a wider thing than a number: `1.5`, `0x10` and `1f` are all one,
1631/// and none of them is a line. Nothing but digits is accepted, so `# 1.5` stays what it was
1632/// before this existed, which is a directive nobody recognises.
1633fn decimal(tok: &PpToken, interner: &Interner) -> Option<u32> {
1634    if tok.kind != PpTokenKind::Number {
1635        return None;
1636    }
1637    let text = interner.resolve(tok.value?);
1638    if text.is_empty() || !text.bytes().all(|b| b.is_ascii_digit()) {
1639        return None;
1640    }
1641    // 2147483647 is the largest line number the standard requires support for, and it is also
1642    // where every other compiler stops, so matching that keeps diagnostics comparable.
1643    text.parse::<u32>().ok().filter(|n| *n <= 2_147_483_647)
1644}
1645
1646/// A synthetic `1` or `0`.
1647fn number(value: bool, flags: TokenFlags, span: Span, interner: &mut Interner) -> Tok {
1648    let sym = interner.intern(if value { "1" } else { "0" });
1649    Tok::synthetic(PpTokenKind::Number, Some(sym), flags, span)
1650}
1651
1652/// Spells a directive's tokens back for an `#error` message.
1653fn spell_line(tokens: &[PpToken], interner: &Interner) -> String {
1654    let mut out = String::new();
1655    for (index, tok) in tokens.iter().enumerate() {
1656        if index > 0 && tok.flags.has(TokenFlags::LEADING_SPACE) {
1657            out.push(' ');
1658        }
1659        match tok.value {
1660            Some(sym) => out.push_str(interner.resolve(sym)),
1661            None => {
1662                if let Some(p) = tok.punct() {
1663                    out.push_str(p.as_str());
1664                }
1665            }
1666        }
1667    }
1668    out
1669}
1670
1671/// The single identifier a string literal spells, if that is all it spells.
1672///
1673/// The name a `push_macro` saves lives inside a string, so it is destringized and lexed rather
1674/// than read off a token. Anything that is not exactly one identifier names no macro.
1675fn identifier_in(text: PpToken, interner: &mut Interner) -> Option<Symbol> {
1676    let literal = interner.resolve(text.value?).to_string();
1677    let (tokens, _) = tokenize(destringize(&literal).as_bytes(), 0, Options::new(), interner);
1678    let mut real = tokens.into_iter().filter(|t| !t.is_eof());
1679    let first = real.next()?;
1680    if first.kind != PpTokenKind::Ident || real.next().is_some() {
1681        return None;
1682    }
1683    first.value
1684}
1685
1686/// Undoes what `#` would have done, per C23 6.10.10.
1687///
1688/// The `L` or `u8` prefix and the quotes come off, then `\"` becomes `"` and `\\` becomes `\`.
1689/// No other escape is touched, because no other escape was introduced.
1690fn destringize(literal: &str) -> String {
1691    let body = literal
1692        .trim_start_matches(['L', 'u', 'U', '8'])
1693        .strip_prefix('"')
1694        .and_then(|s| s.strip_suffix('"'))
1695        .unwrap_or(literal);
1696    let mut out = String::with_capacity(body.len());
1697    let mut chars = body.chars();
1698    while let Some(c) = chars.next() {
1699        if c != '\\' {
1700            out.push(c);
1701            continue;
1702        }
1703        match chars.next() {
1704            Some('"') => out.push('"'),
1705            Some('\\') => out.push('\\'),
1706            Some(other) => {
1707                out.push('\\');
1708                out.push(other);
1709            }
1710            None => out.push('\\'),
1711        }
1712    }
1713    out
1714}
1715
1716/// The parenthesised operand of a `__has_*` operator, and where the line carries on.
1717///
1718/// `None` when the next token is not `(`, which is the only shape the operators take. Nesting
1719/// is counted rather than stopping at the first `)`, so that `__has_include(HEADER(x))` after
1720/// expansion still finds the end of its own operand.
1721fn arguments(line: &[Tok], at: usize) -> Option<(&[Tok], usize)> {
1722    if !line.get(at)?.is(Punct::LParen) {
1723        return None;
1724    }
1725    let mut depth = 1u32;
1726    let mut end = at + 1;
1727    while end < line.len() {
1728        if line[end].is(Punct::LParen) {
1729            depth += 1;
1730        } else if line[end].is(Punct::RParen) {
1731            depth -= 1;
1732            if depth == 0 {
1733                return Some((&line[at + 1..end], end + 1));
1734            }
1735        }
1736        end += 1;
1737    }
1738    None
1739}
1740
1741/// The name `__has_attribute` and its relatives are asked about.
1742///
1743/// A bare identifier, or the scoped form `gnu::always_inline` that C23 gives the attributes
1744/// that came from GCC. The scope is dropped: `__has_c_attribute(gnu::x)` and
1745/// `__has_attribute(x)` are the same question, and the matrix has one row for it.
1746fn attribute_name<'i>(operand: &[Tok], interner: &'i Interner) -> Option<&'i str> {
1747    let name = match operand {
1748        [one] => one,
1749        [_, scope, name] if scope.is(Punct::ColonColon) => name,
1750        _ => return None,
1751    };
1752    name.ident().map(|sym| interner.resolve(sym))
1753}
1754
1755/// Which of the three sweeps over a line is resolving the `__has_*` operators.
1756///
1757/// A `#if` line is swept twice, once either side of macro expansion, because the two halves of
1758/// the family disagree about whether their operand may be expanded. A text line is swept once,
1759/// after expansion, and the half whose operand is a header name is refused there rather than
1760/// answered.
1761#[derive(Debug, Clone, Copy, PartialEq, Eq)]
1762enum Pass {
1763    /// Before expansion on a directive line, where only the header operators are answered.
1764    Headers,
1765    /// After expansion on a directive line, where everything left over is answered. That
1766    /// includes a header operator, which reaches here when a macro expanded to one.
1767    Rest,
1768    /// After expansion on a text line, where everything but the header operators is answered.
1769    Text,
1770}
1771
1772impl Pass {
1773    /// Whether this sweep is the one that answers `op`.
1774    fn answers(self, op: Op) -> bool {
1775        match self {
1776            Pass::Headers => op.is_header(),
1777            Pass::Rest => true,
1778            Pass::Text => !op.is_header(),
1779        }
1780    }
1781}
1782
1783/// Which `__has_*` operator a name is, and what answers it.
1784#[derive(Debug, Clone, Copy, PartialEq, Eq)]
1785enum Op {
1786    /// `__has_include`, answered by looking for the header.
1787    Include,
1788    /// `__has_include_next`, the same question from further down the search path.
1789    IncludeNext,
1790    /// `__has_embed`, which answers with three values rather than two because a resource that
1791    /// exists and is empty is a case the program has to be able to tell apart.
1792    Embed,
1793    /// `__building_module`, which is always no because there are no modules.
1794    BuildingModule,
1795    /// The rest of the family, answered out of the matrix in `rucc-gnu`.
1796    Table(Kind),
1797}
1798
1799impl Op {
1800    /// Whether the operand is a header name, which must not be macro expanded.
1801    fn is_header(self) -> bool {
1802        matches!(self, Op::Include | Op::IncludeNext | Op::Embed)
1803    }
1804}
1805
1806/// The `__has_*` operators, interned once per file.
1807///
1808/// A short array rather than a map: there are nine of them, the comparison is on interned
1809/// symbols, and it is only reached for a line that mentions one.
1810struct HasOps {
1811    ops: [(Symbol, Op); 9],
1812    /// The lowest and the highest symbol in `ops`.
1813    ///
1814    /// Now that text lines are swept too, every identifier in the translation unit is offered
1815    /// to [`HasOps::op`], so the answer it almost always gives has to be cheap. These nine are
1816    /// interned before any file is read, so a name out of the source sorts above the range and
1817    /// one comparison turns it away.
1818    range: (Symbol, Symbol),
1819}
1820
1821impl HasOps {
1822    fn new(interner: &mut Interner) -> HasOps {
1823        let ops = [
1824            (interner.intern("__has_include"), Op::Include),
1825            (interner.intern("__has_include_next"), Op::IncludeNext),
1826            (interner.intern("__has_embed"), Op::Embed),
1827            (interner.intern("__has_attribute"), Op::Table(Kind::Attribute)),
1828            (interner.intern("__has_c_attribute"), Op::Table(Kind::CAttribute)),
1829            (interner.intern("__has_builtin"), Op::Table(Kind::Builtin)),
1830            (interner.intern("__has_feature"), Op::Table(Kind::Feature)),
1831            (interner.intern("__has_extension"), Op::Table(Kind::Extension)),
1832            (interner.intern("__building_module"), Op::BuildingModule),
1833        ];
1834        let mut range = (ops[0].0, ops[0].0);
1835        for &(sym, _) in &ops {
1836            range = (range.0.min(sym), range.1.max(sym));
1837        }
1838        HasOps { ops, range }
1839    }
1840
1841    /// The operator a name is, if it is one.
1842    #[inline]
1843    fn op(&self, name: Symbol) -> Option<Op> {
1844        if name < self.range.0 || name > self.range.1 {
1845            return None;
1846        }
1847        self.ops.iter().find(|(sym, _)| *sym == name).map(|(_, op)| *op)
1848    }
1849}
1850
1851/// The directive names and the two operators, interned once per file.
1852///
1853/// Comparing symbols rather than strings is the point: a directive line is recognised with
1854/// integer comparisons, and the identifiers were interned during the scan, so there is no
1855/// string work in the hot path.
1856struct Names {
1857    define: Symbol,
1858    undef: Symbol,
1859    r#if: Symbol,
1860    ifdef: Symbol,
1861    ifndef: Symbol,
1862    elif: Symbol,
1863    elifdef: Symbol,
1864    elifndef: Symbol,
1865    r#else: Symbol,
1866    endif: Symbol,
1867    line: Symbol,
1868    error: Symbol,
1869    warning: Symbol,
1870    pragma: Symbol,
1871    include: Symbol,
1872    include_next: Symbol,
1873    embed: Symbol,
1874    defined: Symbol,
1875    once: Symbol,
1876    push_macro: Symbol,
1877    pop_macro: Symbol,
1878    pragma_op: Symbol,
1879    has: HasOps,
1880}
1881
1882impl Names {
1883    fn new(interner: &mut Interner) -> Names {
1884        Names {
1885            define: interner.intern("define"),
1886            undef: interner.intern("undef"),
1887            r#if: interner.intern("if"),
1888            ifdef: interner.intern("ifdef"),
1889            ifndef: interner.intern("ifndef"),
1890            elif: interner.intern("elif"),
1891            elifdef: interner.intern("elifdef"),
1892            elifndef: interner.intern("elifndef"),
1893            r#else: interner.intern("else"),
1894            endif: interner.intern("endif"),
1895            line: interner.intern("line"),
1896            error: interner.intern("error"),
1897            warning: interner.intern("warning"),
1898            pragma: interner.intern("pragma"),
1899            include: interner.intern("include"),
1900            include_next: interner.intern("include_next"),
1901            embed: interner.intern("embed"),
1902            defined: interner.intern("defined"),
1903            once: interner.intern("once"),
1904            push_macro: interner.intern("push_macro"),
1905            pop_macro: interner.intern("pop_macro"),
1906            pragma_op: interner.intern("_Pragma"),
1907            has: HasOps::new(interner),
1908        }
1909    }
1910}
1911
1912#[cfg(test)]
1913mod tests {
1914    use rucc_diag::{Severity, SourceMap};
1915    use rucc_session::{MemoryFileSystem, SearchPath};
1916
1917    use super::*;
1918    use rucc_session::Std;
1919
1920    use crate::predef::Timestamp;
1921
1922    /// A whole file through phase 4, which is what almost every test here wants.
1923    ///
1924    /// The main file is always `/main.c`, so a quoted include with no search path set up
1925    /// finds a header the test put at `/name.h`.
1926    struct Run {
1927        interner: Interner,
1928        sources: SourceMap,
1929        fs: MemoryFileSystem,
1930        search: SearchPath,
1931        pp: Preprocessor,
1932    }
1933
1934    impl Run {
1935        fn new() -> Run {
1936            Run {
1937                interner: Interner::new(),
1938                sources: SourceMap::new(),
1939                fs: MemoryFileSystem::new(),
1940                search: SearchPath::new(),
1941                pp: Preprocessor::new(),
1942            }
1943        }
1944
1945        /// Puts a header where an include can find it.
1946        fn file(&mut self, path: &str, contents: &str) {
1947            self.fs.insert(path, contents.as_bytes().to_vec());
1948        }
1949
1950        /// Puts a resource where an `#embed` can find it. Bytes rather than text, because the
1951        /// whole point of the directive is the files that are not text.
1952        fn bytes(&mut self, path: &str, contents: &[u8]) {
1953            self.fs.insert(path, contents.to_vec());
1954        }
1955
1956        /// Adds a directory to the `-I` part of the search path.
1957        fn dir(&mut self, path: &str) {
1958            self.search.push_bracket(path);
1959        }
1960
1961        /// Defines the predefined set for a target, as the driver does before reading input.
1962        fn predefine(&mut self, triple: &str, opts: &Predef) {
1963            let target = TargetInfo::new(triple.parse().expect("a supported triple"));
1964            let mut cx =
1965                Context::new(&mut self.interner, &mut self.sources, &self.fs, &self.search);
1966            self.pp.predefine(&target, opts, &mut cx).expect("the map has room");
1967        }
1968
1969        /// The surviving tokens, spelled with one space wherever they were separated.
1970        fn go(&mut self, src: &str) -> String {
1971            self.go_named("/main.c", src)
1972        }
1973
1974        /// The surviving tokens themselves, for a test about a flag rather than a spelling.
1975        fn raw(&mut self, src: &str) -> Vec<Tok> {
1976            let file = self.sources.add("/main.c", src.as_bytes().to_vec()).expect("room");
1977            let mut cx =
1978                Context::new(&mut self.interner, &mut self.sources, &self.fs, &self.search);
1979            self.pp.run(file, &mut cx)
1980        }
1981
1982        /// Reads what `-imacros` and `-include` named, as the driver does before the source file.
1983        fn preinclude(&mut self, files: &[Preinclude]) -> String {
1984            let mut out = Vec::new();
1985            {
1986                let mut cx =
1987                    Context::new(&mut self.interner, &mut self.sources, &self.fs, &self.search);
1988                self.pp.preinclude(files, &mut out, &mut cx).expect("the map has room");
1989            }
1990            self.spell(&out)
1991        }
1992
1993        /// The same, for a test that cares what the main file is called.
1994        fn go_named(&mut self, path: &str, src: &str) -> String {
1995            let file = self.sources.add(path, src.as_bytes().to_vec()).expect("the map has room");
1996            let out = {
1997                let mut cx =
1998                    Context::new(&mut self.interner, &mut self.sources, &self.fs, &self.search);
1999                self.pp.run(file, &mut cx)
2000            };
2001            self.spell(&out)
2002        }
2003
2004        /// A run of tokens as text, with one space wherever they were separated.
2005        fn spell(&self, out: &[Tok]) -> String {
2006            let mut text = String::new();
2007            for (at, tok) in out.iter().enumerate() {
2008                let spaced = tok.flags.has(TokenFlags::LEADING_SPACE)
2009                    || tok.flags.has(TokenFlags::START_OF_LINE);
2010                if at > 0 && spaced {
2011                    text.push(' ');
2012                }
2013                match tok.kind {
2014                    PpTokenKind::Punct(p) => text.push_str(p.as_str()),
2015                    _ => text.push_str(
2016                        self.interner.resolve(tok.value.expect("every non-punctuator interns")),
2017                    ),
2018                }
2019            }
2020            text
2021        }
2022
2023        /// How many files were opened, main file included. A header that the guard
2024        /// optimization skipped never reaches the source map, so this is what says whether
2025        /// it was really skipped rather than read and thrown away.
2026        fn files(&self) -> usize {
2027            self.sources.files().len()
2028        }
2029
2030        fn messages(&mut self) -> Vec<String> {
2031            self.pp.take_diagnostics().into_iter().map(|d| d.message).collect()
2032        }
2033
2034        fn severities(&mut self) -> Vec<Severity> {
2035            self.pp.diagnostics().iter().map(|d| d.severity).collect()
2036        }
2037    }
2038
2039    fn clean(src: &str) -> String {
2040        let mut run = Run::new();
2041        let text = run.go(src);
2042        assert!(run.messages().is_empty(), "expected no diagnostics from {src:?}");
2043        text
2044    }
2045
2046    #[test]
2047    fn a_taken_branch_is_kept_and_the_other_is_not() {
2048        assert_eq!(clean("#if 1\nyes\n#else\nno\n#endif\n"), "yes");
2049        assert_eq!(clean("#if 0\nyes\n#else\nno\n#endif\n"), "no");
2050    }
2051
2052    #[test]
2053    fn ifdef_and_ifndef_ask_the_macro_table() {
2054        assert_eq!(clean("#define F 1\n#ifdef F\nyes\n#endif\n"), "yes");
2055        assert_eq!(clean("#ifdef F\nyes\n#endif\n"), "");
2056        assert_eq!(clean("#ifndef F\nyes\n#endif\n"), "yes");
2057        // C23 spells the two of them as `#elifdef` and `#elifndef` as well.
2058        assert_eq!(clean("#define F 1\n#if 0\na\n#elifdef F\nb\n#endif\n"), "b");
2059        assert_eq!(clean("#if 0\na\n#elifndef F\nb\n#endif\n"), "b");
2060    }
2061
2062    #[test]
2063    fn only_the_first_true_branch_of_a_chain_is_taken() {
2064        assert_eq!(clean("#if 0\na\n#elif 1\nb\n#elif 1\nc\n#else\nd\n#endif\n"), "b");
2065        assert_eq!(clean("#if 0\na\n#elif 0\nb\n#else\nc\n#endif\n"), "c");
2066    }
2067
2068    #[test]
2069    fn a_branch_after_one_that_was_taken_is_not_evaluated() {
2070        // `1/0` in a branch that cannot be reached is legal, and headers rely on it: the
2071        // guard that made the branch dead is often the thing that made the expression safe.
2072        assert_eq!(clean("#if 1\na\n#elif 1/0\nb\n#endif\n"), "a");
2073    }
2074
2075    #[test]
2076    fn a_skipped_region_is_not_read_for_anything_but_nesting() {
2077        // Prose, an unknown directive and a broken `#define` all have to pass silently.
2078        let src = "#if 0\nthis is not C at all\n#frobnicate\n#define\n#if 1\ninner\n#endif\n#endif\nafter\n";
2079        assert_eq!(clean(src), "after");
2080    }
2081
2082    #[test]
2083    fn nesting_inside_a_dead_branch_stays_balanced() {
2084        let src = "#if 0\n#ifdef X\na\n#else\nb\n#endif\n#else\nc\n#endif\n";
2085        assert_eq!(clean(src), "c");
2086    }
2087
2088    #[test]
2089    fn defined_works_in_both_spellings_and_before_expansion() {
2090        assert_eq!(clean("#define F 0\n#if defined F\nyes\n#endif\n"), "yes");
2091        assert_eq!(clean("#define F 0\n#if defined(F)\nyes\n#endif\n"), "yes");
2092        assert_eq!(clean("#if defined(F)\nyes\n#endif\n"), "");
2093        // `F` expands to 0, but `defined F` is answered before that happens, which is the
2094        // whole reason `defined` is resolved in a pass of its own.
2095        assert_eq!(clean("#define F 0\n#if defined F && !F\nyes\n#endif\n"), "yes");
2096    }
2097
2098    #[test]
2099    fn an_identifier_that_survived_expansion_is_zero() {
2100        assert_eq!(clean("#if NOT_DEFINED_ANYWHERE\nyes\n#else\nno\n#endif\n"), "no");
2101        assert_eq!(clean("#if !NOT_DEFINED_ANYWHERE\nyes\n#endif\n"), "yes");
2102    }
2103
2104    #[test]
2105    fn short_circuiting_keeps_a_guarded_expression_safe() {
2106        // The reason `&&` has to short circuit rather than merely produce the right answer:
2107        // the right hand side divides by zero when the guard is false.
2108        assert_eq!(clean("#if defined(F) && 1/F\nyes\n#else\nno\n#endif\n"), "no");
2109        assert_eq!(clean("#if 1 ? 2 : 1/0\nyes\n#endif\n"), "yes");
2110    }
2111
2112    #[test]
2113    fn the_operators_have_the_precedence_they_do_in_c() {
2114        assert_eq!(clean("#if 1 + 2 * 3 == 7\nyes\n#endif\n"), "yes");
2115        assert_eq!(clean("#if (1 + 2) * 3 == 9\nyes\n#endif\n"), "yes");
2116        assert_eq!(clean("#if 1 << 4 == 16\nyes\n#endif\n"), "yes");
2117        assert_eq!(clean("#if -8 / 3 == -2\nyes\n#endif\n"), "yes");
2118        assert_eq!(clean("#if (0xff & 0x0f) == 15\nyes\n#endif\n"), "yes");
2119    }
2120
2121    #[test]
2122    fn an_unsigned_operand_makes_the_whole_comparison_unsigned() {
2123        // The rule that catches everyone out in C catches them out here too, and a
2124        // preprocessor that quietly disagreed with the compiler would be worse than one that
2125        // is merely surprising.
2126        assert_eq!(clean("#if -1 < 0u\nyes\n#else\nno\n#endif\n"), "no");
2127        assert_eq!(clean("#if -1 < 0\nyes\n#else\nno\n#endif\n"), "yes");
2128    }
2129
2130    #[test]
2131    fn character_constants_evaluate() {
2132        assert_eq!(clean("#if 'A' == 65\nyes\n#endif\n"), "yes");
2133        assert_eq!(clean("#if '\\n' == 10\nyes\n#endif\n"), "yes");
2134    }
2135
2136    #[test]
2137    fn a_macro_is_expanded_before_the_expression_is_evaluated() {
2138        assert_eq!(clean("#define V 3\n#if V > 2\nyes\n#endif\n"), "yes");
2139        assert_eq!(clean("#define M(a) ((a) * 2)\n#if M(3) == 6\nyes\n#endif\n"), "yes");
2140    }
2141
2142    #[test]
2143    fn an_invocation_may_span_lines_within_a_run_of_text() {
2144        assert_eq!(clean("#define M(a, b) a + b\nM(1,\n2)\n"), "1 + 2");
2145    }
2146
2147    #[test]
2148    fn undef_removes_a_definition() {
2149        assert_eq!(clean("#define F 1\n#undef F\n#ifdef F\nyes\n#else\nno\n#endif\n"), "no");
2150        // Undefining something that was never defined is not an error, and configure scripts
2151        // emit it constantly.
2152        assert_eq!(clean("#undef NEVER_DEFINED\nok\n"), "ok");
2153    }
2154
2155    #[test]
2156    fn some_names_cannot_be_undefined() {
2157        let mut run = Run::new();
2158        run.go("#undef defined\n");
2159        assert_eq!(run.messages(), vec!["`defined` cannot be undefined".to_owned()]);
2160    }
2161
2162    #[test]
2163    fn error_reports_the_rest_of_the_line() {
2164        let mut run = Run::new();
2165        run.go("#if 0\n#error not this one\n#else\n#error unsupported target\n#endif\n");
2166        assert_eq!(run.messages(), vec!["unsupported target".to_owned()]);
2167    }
2168
2169    #[test]
2170    fn warning_is_a_warning() {
2171        let mut run = Run::new();
2172        run.go("#warning this is fine\n");
2173        assert_eq!(run.severities(), vec![Severity::Warning]);
2174        assert_eq!(run.messages(), vec!["this is fine".to_owned()]);
2175    }
2176
2177    #[test]
2178    fn an_unterminated_conditional_is_reported() {
2179        let mut run = Run::new();
2180        assert_eq!(run.go("#if 1\nyes\n"), "yes");
2181        assert_eq!(run.messages(), vec!["unterminated `#if`".to_owned()]);
2182    }
2183
2184    #[test]
2185    fn a_conditional_without_an_if_is_reported() {
2186        let mut run = Run::new();
2187        run.go("#endif\n");
2188        assert_eq!(run.messages(), vec!["`#endif` without `#if`".to_owned()]);
2189
2190        let mut run = Run::new();
2191        run.go("#if 1\n#else\n#else\n#endif\n");
2192        assert_eq!(run.messages(), vec!["a second `#else`".to_owned()]);
2193
2194        let mut run = Run::new();
2195        run.go("#if 1\n#else\n#elif 1\n#endif\n");
2196        assert_eq!(run.messages(), vec!["`#elif` after `#else`".to_owned()]);
2197    }
2198
2199    #[test]
2200    fn tokens_after_endif_are_a_warning_rather_than_an_error() {
2201        // `#endif FOO` as a hand written comment predates `//` being portable and there is a
2202        // great deal of it about. Refusing to compile it would be correct and useless.
2203        let mut run = Run::new();
2204        assert_eq!(run.go("#if 1\nyes\n#endif FOO\n"), "yes");
2205        assert_eq!(run.severities(), vec![Severity::Warning]);
2206        assert_eq!(run.messages(), vec!["extra tokens after `#endif`".to_owned()]);
2207    }
2208
2209    #[test]
2210    fn the_null_directive_does_nothing() {
2211        assert_eq!(clean("#\na\n#\nb\n"), "a b");
2212    }
2213
2214    #[test]
2215    fn an_unknown_directive_is_an_error_when_the_region_is_live() {
2216        let mut run = Run::new();
2217        run.go("#frobnicate\n");
2218        assert_eq!(run.messages(), vec!["invalid preprocessing directive".to_owned()]);
2219    }
2220
2221    #[test]
2222    fn line_is_recorded_for_the_source_map() {
2223        let mut run = Run::new();
2224        run.go("#line 42 \"other.c\"\n");
2225        assert!(run.messages().is_empty());
2226        let recorded = run.pp.line_directives();
2227        assert_eq!(recorded.len(), 1);
2228        assert_eq!(recorded[0].line, 42);
2229        let file = recorded[0].file.expect("a file name was given");
2230        assert_eq!(run.interner.resolve(file), "\"other.c\"");
2231    }
2232
2233    #[test]
2234    fn line_moves_what_line_and_file_the_lines_after_it_are_on() {
2235        let mut run = Run::new();
2236        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
2237        assert_eq!(run.go("#line 1000\n__LINE__ __FILE__\n__LINE__\n"), "1000 \"/main.c\" 1001");
2238    }
2239
2240    #[test]
2241    fn a_line_marker_moves_the_lines_after_it_the_way_line_does() {
2242        let mut run = Run::new();
2243        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
2244        assert_eq!(run.go("# 200 \"xyz\"\n__FILE__ __LINE__\n"), "\"xyz\" 200");
2245    }
2246
2247    #[test]
2248    fn a_line_marker_with_no_name_leaves_the_name_alone() {
2249        let mut run = Run::new();
2250        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
2251        assert_eq!(run.go("# 20\n__FILE__ __LINE__\n"), "\"/main.c\" 20");
2252    }
2253
2254    #[test]
2255    fn a_line_marker_may_say_line_zero() {
2256        // `#line 0` is an error and this is not, because a marker is written by a program and a
2257        // program counting from zero is allowed to say so.
2258        let mut run = Run::new();
2259        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
2260        assert_eq!(run.go("# 0 \"xyz\"\n__LINE__\n"), "0");
2261    }
2262
2263    #[test]
2264    fn entering_and_returning_are_a_nesting_the_marker_flags_keep() {
2265        let mut run = Run::new();
2266        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
2267        let text =
2268            run.go("# 200 \"xyz\" 1\n__FILE__\n# 5 \"/main.c\" 2\n__FILE__ __LINE__\n# 9 3 4\n");
2269        assert_eq!(text, "\"xyz\" \"/main.c\" 5");
2270        assert!(run.messages().is_empty());
2271    }
2272
2273    #[test]
2274    fn returning_to_a_file_nothing_was_ever_in_is_ignored() {
2275        let mut run = Run::new();
2276        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
2277        assert_eq!(run.go("# 200 \"xyz\" 2 3\n__FILE__ __LINE__\n"), "\"/main.c\" 2");
2278        assert_eq!(
2279            run.messages(),
2280            vec!["file `xyz` linemarker ignored due to incorrect nesting".to_owned()]
2281        );
2282    }
2283
2284    #[test]
2285    fn a_flag_that_is_not_one_of_the_four_is_an_error() {
2286        let mut run = Run::new();
2287        run.go("# 20 \"a\" 7\n");
2288        assert_eq!(run.messages(), vec!["invalid flag `7` in line directive".to_owned()]);
2289    }
2290
2291    #[test]
2292    fn a_hash_and_something_that_is_not_a_line_number_is_still_an_unknown_directive() {
2293        // A preprocessing number is a wider thing than a number, and `1.5` is one of them.
2294        let mut run = Run::new();
2295        run.go("# 1.5 \"a\"\n");
2296        assert_eq!(run.messages(), vec!["invalid preprocessing directive".to_owned()]);
2297    }
2298
2299    #[test]
2300    fn a_name_on_the_directive_is_the_name_from_there_on() {
2301        let mut run = Run::new();
2302        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
2303        assert_eq!(run.go("#line 7 \"gen.y\"\n__FILE__ __LINE__\n"), "\"gen.y\" 7");
2304    }
2305
2306    #[test]
2307    fn a_directive_with_no_name_keeps_the_one_already_in_force() {
2308        let mut run = Run::new();
2309        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
2310        assert_eq!(run.go("#line 7 \"gen.y\"\n#line 20\n__FILE__ __LINE__\n"), "\"gen.y\" 20");
2311    }
2312
2313    #[test]
2314    fn the_number_is_expanded_first_because_line_plus_one_is_real_code() {
2315        let mut run = Run::new();
2316        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
2317        assert_eq!(run.go("#define WHERE 300\n#line WHERE\n__LINE__\n"), "300");
2318    }
2319
2320    #[test]
2321    fn a_directive_in_a_header_does_not_move_the_file_that_included_it() {
2322        let mut run = Run::new();
2323        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
2324        run.file("/h.h", "#line 500\n__LINE__\n");
2325        run.dir("/");
2326        assert_eq!(run.go("#include <h.h>\n__LINE__\n"), "500 2");
2327    }
2328
2329    #[test]
2330    fn extra_tokens_after_the_file_name_are_a_warning_and_not_an_error() {
2331        let mut run = Run::new();
2332        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
2333        assert_eq!(run.go("#line 7 \"gen.y\" and more\n__LINE__\n"), "7");
2334        assert_eq!(run.messages(), vec!["extra tokens after `#line`".to_owned()]);
2335    }
2336
2337    #[test]
2338    fn a_line_number_out_of_range_is_refused() {
2339        let mut run = Run::new();
2340        run.go("#line 0\n");
2341        assert_eq!(run.messages(), vec!["`#line` number is out of range".to_owned()]);
2342
2343        let mut run = Run::new();
2344        run.go("#line notanumber\n");
2345        assert_eq!(run.messages(), vec!["`#line` needs a decimal line number".to_owned()]);
2346    }
2347
2348    #[test]
2349    fn a_pragma_passes_through_unchanged() {
2350        assert_eq!(clean("#pragma pack(1)\nint x;\n"), "#pragma pack(1) int x;");
2351    }
2352
2353    /// glibc indents a directive inside a nest of conditionals, one space per level, so
2354    /// `regex.h` writes `# pragma GCC diagnostic push`. gcc prints it back with the space
2355    /// gone, and a header preprocessed two ways that differ only there is a difference
2356    /// somebody has to read before deciding it does not matter.
2357    #[test]
2358    fn the_space_between_the_hash_and_the_word_comes_off_a_pragma_that_is_indented() {
2359        assert_eq!(clean("#if 1\n# pragma pack(1)\n#endif\n"), "#pragma pack(1)");
2360        assert_eq!(clean("#  pragma  pack( 1 )\n"), "#pragma pack( 1 )", "the rest is kept");
2361    }
2362
2363    #[test]
2364    fn the_pragma_operator_becomes_a_pragma() {
2365        assert_eq!(
2366            clean("_Pragma(\"GCC visibility push(default)\")\nint x;\n"),
2367            "#pragma GCC visibility push(default) int x;"
2368        );
2369    }
2370
2371    #[test]
2372    fn the_pragma_operator_works_from_inside_a_macro() {
2373        // This is the entire reason `_Pragma` exists: a `#pragma` cannot be written in a macro
2374        // body, so a header that wants to wrap one has no other option.
2375        let src = "#define PUSH _Pragma(\"pack(push)\")\nPUSH\nint x;\n";
2376        assert_eq!(clean(src), "#pragma pack(push) int x;");
2377    }
2378
2379    /// A pragma is a line even when it was written as an expression, so whatever follows one
2380    /// has to start a line. The phase that turns these back into a record takes the line as
2381    /// its unit, and without this the `int` would be read as part of the pragma.
2382    #[test]
2383    fn what_follows_a_pragma_operator_starts_a_line() {
2384        let mut run = Run::new();
2385        let out = run.raw("int x; _Pragma(\"pack(1)\") int y;\n");
2386        let starts: Vec<_> =
2387            out.iter().map(|tok| tok.flags.has(TokenFlags::START_OF_LINE)).collect();
2388        // `int x ;` then the six the pragma became, then `int y ;`. Only the first `int` was
2389        // at the start of a line in the source, and the second one is now.
2390        assert_eq!(
2391            starts,
2392            vec![true, false, false, true, false, false, false, false, false, true, false, false]
2393        );
2394    }
2395
2396    #[test]
2397    fn a_pragma_operator_that_is_not_given_a_string_is_reported() {
2398        let mut run = Run::new();
2399        run.go("_Pragma(x)\n");
2400        assert_eq!(run.messages(), vec!["`_Pragma` takes a single string literal".to_owned()]);
2401    }
2402
2403    #[test]
2404    fn an_include_reads_the_file_it_names() {
2405        let mut run = Run::new();
2406        run.file("/dir/one.h", "int from_the_header;\n");
2407        run.dir("/dir");
2408        assert_eq!(run.go("#include <one.h>\nint after;\n"), "int from_the_header; int after;");
2409        assert!(run.messages().is_empty());
2410    }
2411
2412    #[test]
2413    fn a_quoted_include_looks_next_to_the_including_file_first() {
2414        let mut run = Run::new();
2415        run.file("/local.h", "beside\n");
2416        run.file("/dir/local.h", "on the path\n");
2417        run.dir("/dir");
2418        assert_eq!(run.go("#include \"local.h\"\n"), "beside");
2419        assert!(run.messages().is_empty());
2420    }
2421
2422    #[test]
2423    fn an_angled_include_does_not_look_next_to_the_including_file() {
2424        let mut run = Run::new();
2425        run.file("/local.h", "beside\n");
2426        run.file("/dir/local.h", "on the path\n");
2427        run.dir("/dir");
2428        assert_eq!(run.go("#include <local.h>\n"), "on the path");
2429    }
2430
2431    #[test]
2432    fn a_macro_defined_in_a_header_is_visible_after_the_include() {
2433        let mut run = Run::new();
2434        run.file("/dir/defs.h", "#define N 42\n");
2435        run.dir("/dir");
2436        assert_eq!(run.go("#include <defs.h>\nint a = N;\n"), "int a = 42;");
2437        assert!(run.messages().is_empty());
2438    }
2439
2440    #[test]
2441    fn an_include_guard_keeps_the_second_read_empty() {
2442        let mut run = Run::new();
2443        run.file("/dir/g.h", "#ifndef G\n#define G\nonce\n#endif\n");
2444        run.dir("/dir");
2445        assert_eq!(run.go("#include <g.h>\n#include <g.h>\n"), "once");
2446        assert!(run.messages().is_empty());
2447        assert_eq!(run.files(), 2, "the second include is not opened at all");
2448    }
2449
2450    fn named(name: &str, macros_only: bool) -> Preinclude {
2451        Preinclude { name: name.to_owned(), macros_only }
2452    }
2453
2454    #[test]
2455    fn a_command_line_include_contributes_its_text_and_an_imacros_contributes_none() {
2456        let mut run = Run::new();
2457        run.file("i.h", "from_include\n#define I 1\n");
2458        run.file("m.h", "from_macros\n#define M 1\n");
2459        assert_eq!(run.preinclude(&[named("i.h", false), named("m.h", true)]), "from_include");
2460        // Both sets of definitions are in scope for the source file, whichever flag named them.
2461        assert_eq!(run.go("I M\n"), "1 1");
2462    }
2463
2464    #[test]
2465    fn every_imacros_runs_before_every_include_whatever_order_the_command_line_was_in() {
2466        // Measured against GCC: the two flags the other way round give the same output byte for
2467        // byte, so the order between the families is fixed and the order within one is not.
2468        for files in
2469            [[named("i.h", false), named("m.h", true)], [named("m.h", true), named("i.h", false)]]
2470        {
2471            let mut run = Run::new();
2472            run.file("i.h", "#ifdef M\nsaw_it\n#else\nmissed_it\n#endif\n");
2473            run.file("m.h", "#define M 1\n");
2474            assert_eq!(run.preinclude(&files), "saw_it");
2475        }
2476    }
2477
2478    #[test]
2479    fn a_header_read_for_its_macros_is_not_read_again_by_an_include_that_its_guard_covers() {
2480        // What makes `-imacros` usable on a header the source includes anyway: the definitions
2481        // arrive early and the declarations do not arrive twice.
2482        let mut run = Run::new();
2483        run.file("/dir/g.h", "#ifndef G\n#define G\ndeclarations\n#endif\n");
2484        run.dir("/dir");
2485        assert_eq!(run.preinclude(&[named("/dir/g.h", true)]), "");
2486        assert_eq!(run.go("#include <g.h>\n"), "");
2487        assert!(run.messages().is_empty());
2488    }
2489
2490    #[test]
2491    fn a_command_line_include_is_a_dependency_and_is_named_before_the_headers_it_reads() {
2492        let mut run = Run::new();
2493        run.file("i.h", "#include \"deep.h\"\n");
2494        run.file("deep.h", "\n");
2495        run.file("m.h", "\n");
2496        run.preinclude(&[named("i.h", false), named("m.h", true)]);
2497        let names: Vec<String> =
2498            run.pp.dependencies().iter().map(|d| d.path.to_string_lossy().into_owned()).collect();
2499        let names: Vec<String> = names.iter().map(|n| n.replace('\\', "/")).collect();
2500        assert_eq!(names, ["m.h", "i.h", "deep.h"]);
2501    }
2502
2503    #[test]
2504    fn a_prerequisite_is_spelled_without_the_dot_the_search_path_was_written_with() {
2505        // What GCC writes, and it disagrees with what the same header's line marker says. A
2506        // marker names the file the way the search reached it and a prerequisite names a file
2507        // `make` compares a timestamp against, and the leading `./` says nothing about that.
2508        let mut run = Run::new();
2509        run.file("d/f.h", "\n");
2510        run.dir("./d");
2511        run.go("#include <f.h>\n");
2512        let names: Vec<String> =
2513            run.pp.dependencies().iter().map(|d| d.path.to_string_lossy().into_owned()).collect();
2514        assert_eq!(names.iter().map(|n| n.replace('\\', "/")).collect::<Vec<_>>(), ["d/f.h"]);
2515    }
2516
2517    #[test]
2518    fn a_command_line_include_that_is_nowhere_is_reported_against_the_flag_that_named_it() {
2519        let mut run = Run::new();
2520        assert_eq!(run.preinclude(&[named("nope.h", false)]), "");
2521        assert_eq!(run.messages(), ["`nope.h` file not found"]);
2522    }
2523
2524    #[test]
2525    fn the_other_spelling_of_a_guard_is_recognised_too() {
2526        for guard in ["#if !defined(G)", "#if !defined G"] {
2527            let mut run = Run::new();
2528            run.file("/dir/g.h", &format!("{guard}\n#define G\nonce\n#endif\n"));
2529            run.dir("/dir");
2530            assert_eq!(run.go("#include <g.h>\n#include <g.h>\n"), "once");
2531            assert_eq!(run.files(), 2, "{guard} should be a guard");
2532        }
2533    }
2534
2535    #[test]
2536    fn a_conditional_that_is_not_a_guard_does_not_skip_anything() {
2537        // Nothing defines the macro, so the second read is not the same as the first and the
2538        // file has to be opened again.
2539        let mut run = Run::new();
2540        run.file("/dir/g.h", "#ifndef G\ntwice\n#endif\n");
2541        run.dir("/dir");
2542        assert_eq!(run.go("#include <g.h>\n#include <g.h>\n"), "twice twice");
2543        assert_eq!(run.files(), 3);
2544    }
2545
2546    #[test]
2547    fn a_token_outside_the_guard_stops_it_being_a_guard() {
2548        let mut run = Run::new();
2549        run.file("/dir/g.h", "#ifndef G\n#define G\n#endif\nalways\n");
2550        run.dir("/dir");
2551        assert_eq!(run.go("#include <g.h>\n#include <g.h>\n"), "always always");
2552        assert_eq!(run.files(), 3);
2553    }
2554
2555    #[test]
2556    fn pragma_once_skips_the_second_read_and_does_not_reach_the_output() {
2557        let mut run = Run::new();
2558        run.file("/dir/o.h", "#pragma once\nonce\n");
2559        run.dir("/dir");
2560        assert_eq!(run.go("#include <o.h>\n#include <o.h>\n"), "once");
2561        assert!(run.messages().is_empty());
2562        assert_eq!(run.files(), 2);
2563    }
2564
2565    #[test]
2566    fn pragma_once_in_the_main_file_is_a_warning_and_is_still_applied() {
2567        // The warning is about the usual case, a main file that meant to be a header. The
2568        // line is applied anyway, because the file that includes itself is the case where it
2569        // does work in a main file, and without it this is an infinite include.
2570        let mut run = Run::new();
2571        let src = "#pragma once\n#include <s.c>\nbody\n";
2572        run.file("/dir/s.c", src);
2573        run.dir("/dir");
2574        assert_eq!(run.go_named("/dir/s.c", src), "body");
2575        assert_eq!(run.severities(), vec![Severity::Warning]);
2576        assert_eq!(run.messages(), vec!["`#pragma once` in the main file".to_owned()]);
2577        assert_eq!(run.files(), 1);
2578    }
2579
2580    #[test]
2581    fn pragma_once_holds_across_two_spellings_of_the_one_path() {
2582        // `-I .` puts a `./` in front of everything it finds, and the file that asked to be
2583        // read once was named without one. Comparing the text as written would read it twice.
2584        let mut run = Run::new();
2585        run.file("dir/s.c", "#pragma once\nbody\n");
2586        run.dir(".");
2587        assert_eq!(run.go("#include <dir/s.c>\n#include <dir/s.c>\n"), "body");
2588        assert!(run.messages().is_empty());
2589        assert_eq!(run.files(), 2);
2590    }
2591
2592    #[test]
2593    fn any_other_pragma_still_passes_through() {
2594        assert_eq!(clean("#pragma once_upon_a_time\n"), "#pragma once_upon_a_time");
2595    }
2596
2597    /// clang's own `__clang_cuda_complex_builtins.h` opens with this, and a header that pushes a
2598    /// name, defines it for its own use and pops it at the end is the whole idiom.
2599    #[test]
2600    fn push_macro_and_pop_macro_put_a_definition_aside_and_bring_it_back() {
2601        let src = "#define X 1\n#pragma push_macro(\"X\")\n#undef X\n#define X 2\n                   a X\n#pragma pop_macro(\"X\")\nb X\n";
2602        assert_eq!(clean(src), "a 2 b 1");
2603    }
2604
2605    #[test]
2606    fn a_name_with_no_definition_pushes_and_pops_the_absence() {
2607        // The pragma is about the state, and "not defined" is a state. A header that pushes a
2608        // name it does not know about has to get an undefined name back, not the one it made.
2609        let src = "#pragma push_macro(\"X\")\n#define X 1\na X\n#pragma pop_macro(\"X\")\nb X\n";
2610        assert_eq!(clean(src), "a 1 b X");
2611    }
2612
2613    #[test]
2614    fn the_pushes_nest() {
2615        let src = "#define X 1\n#pragma push_macro(\"X\")\n#undef X\n#define X 2\n                   #pragma push_macro(\"X\")\n#undef X\n#define X 3\n                   a X\n#pragma pop_macro(\"X\")\nb X\n#pragma pop_macro(\"X\")\nc X\n";
2616        assert_eq!(clean(src), "a 3 b 2 c 1");
2617    }
2618
2619    #[test]
2620    fn a_pop_with_nothing_pushed_says_nothing() {
2621        // The two are written in pairs across headers that do not know about each other, so a
2622        // diagnostic here would fire on code that is not wrong. gcc is silent as well.
2623        assert_eq!(clean("#define X 1\n#pragma pop_macro(\"X\")\nX\n"), "1");
2624        assert_eq!(clean("#pragma pop_macro(\"Never\")\nx\n"), "x");
2625    }
2626
2627    #[test]
2628    fn the_pragma_operator_spelling_works_and_takes_effect_where_it_is_written() {
2629        // A `#pragma` cannot come out of a macro body, so a macro that wants to save a name has
2630        // only this spelling. The lines around it are one run of text to the expander, and the
2631        // pop has to be answered before the line after it is expanded or that line still sees
2632        // the definition the pop was there to undo.
2633        let src = "#define X 1\n_Pragma(\"push_macro(\\\"X\\\")\")\n#undef X\n#define X 2\n                   a X\n_Pragma(\"pop_macro(\\\"X\\\")\")\nb X\n";
2634        assert_eq!(clean(src), "a 2 b 1");
2635    }
2636
2637    #[test]
2638    fn the_gcc_spelling_is_not_one_of_these_and_passes_through() {
2639        // `#pragma GCC push_macro("X")` does nothing in gcc and is printed back, unlike the
2640        // namespaced spellings of the pragmas the compiler proper reads. Answering it here
2641        // would be a difference from gcc dressed up as a courtesy.
2642        let src = "#define X 1\n#pragma GCC push_macro(\"X\")\n#undef X\n#define X 2\nX\n";
2643        assert_eq!(clean(src), "#pragma GCC push_macro(\"X\") 2");
2644    }
2645
2646    #[test]
2647    fn a_push_macro_that_is_not_the_shape_is_an_error() {
2648        for src in ["#pragma push_macro\n", "#pragma push_macro(X)\n", "#pragma pop_macro()\n"] {
2649            let mut run = Run::new();
2650            run.go(src);
2651            let word = if src.contains("push") { "push" } else { "pop" };
2652            assert_eq!(
2653                run.messages(),
2654                vec![format!("invalid `#pragma {word}_macro` directive")],
2655                "from {src:?}"
2656            );
2657        }
2658    }
2659
2660    #[test]
2661    fn a_string_that_does_not_spell_one_identifier_names_no_macro() {
2662        // gcc neither complains about these nor does anything with them, and matching that is
2663        // worth more than improving on it: a header that has one has been building for years.
2664        assert_eq!(clean("#pragma push_macro(\"a b\")\nx\n"), "x");
2665        assert_eq!(clean("#pragma push_macro(\"2\")\nx\n"), "x");
2666    }
2667
2668    #[test]
2669    fn what_follows_the_closing_parenthesis_is_the_usual_warning() {
2670        let mut run = Run::new();
2671        assert_eq!(run.go("#define X 1\n#pragma push_macro(\"X\") junk\nX\n"), "1");
2672        assert_eq!(run.severities(), vec![Severity::Warning]);
2673        assert_eq!(run.messages(), vec!["extra tokens after `#pragma`".to_owned()]);
2674    }
2675
2676    #[test]
2677    fn has_include_answers_from_the_search_path() {
2678        let mut run = Run::new();
2679        run.file("/dir/there.h", "");
2680        run.dir("/dir");
2681        let src = "#if __has_include(<there.h>)\nyes\n#endif\n\
2682                   #if __has_include(<gone.h>)\nno\n#endif\n";
2683        assert_eq!(run.go(src), "yes");
2684        assert!(run.messages().is_empty(), "a header that is not there is an answer, not an error");
2685    }
2686
2687    #[test]
2688    fn has_include_asks_the_question_the_include_on_the_same_line_would() {
2689        // The quoted form looks next to the file that wrote it, so the two spellings answer
2690        // differently about the same header. A `__has_include` that did not agree with the
2691        // `#include` it guards would be worse than not having one.
2692        let mut run = Run::new();
2693        run.file("/beside.h", "");
2694        let src = "#if __has_include(\"beside.h\")\nquoted\n#endif\n\
2695                   #if __has_include(<beside.h>)\nangled\n#endif\n";
2696        assert_eq!(run.go(src), "quoted");
2697    }
2698
2699    #[test]
2700    fn has_include_next_starts_where_include_next_would() {
2701        let mut run = Run::new();
2702        run.file("/a/both.h", "#if __has_include_next(<both.h>)\nmore\n#endif\n");
2703        run.file("/b/both.h", "last\n");
2704        run.file("/a/only.h", "#if __has_include_next(<only.h>)\nmore\n#endif\n");
2705        run.dir("/a");
2706        run.dir("/b");
2707        assert_eq!(run.go("#include <both.h>\n"), "more");
2708        assert_eq!(run.go("#include <only.h>\n"), "", "there is nothing after /a to find it in");
2709    }
2710
2711    #[test]
2712    fn the_operand_of_has_include_is_not_macro_expanded() {
2713        // `linux` is a predefined macro on a Linux target, and `<linux/version.h>` is a real
2714        // header. Expanding the operand would ask about `<1/version.h>`.
2715        let mut run = Run::new();
2716        run.file("/dir/linux/version.h", "");
2717        run.dir("/dir");
2718        let src = "#define linux 1\n#if __has_include(<linux/version.h>)\nyes\n#endif\n";
2719        assert_eq!(run.go(src), "yes");
2720    }
2721
2722    #[test]
2723    fn a_macro_may_expand_to_a_has_include() {
2724        // Which is why the operators are resolved after expansion as well as before it.
2725        let mut run = Run::new();
2726        run.file("/dir/there.h", "");
2727        run.dir("/dir");
2728        let src = "#define HAVE __has_include(<there.h>)\n#if HAVE\nyes\n#endif\n";
2729        assert_eq!(run.go(src), "yes");
2730    }
2731
2732    #[test]
2733    fn defined_says_the_has_operators_are_there() {
2734        // The shape every header that uses them is written in, because they are newer than
2735        // some of the compilers it has to build under.
2736        let src = "#if defined(__has_include) && defined __has_builtin\nyes\n#endif\n";
2737        assert_eq!(clean(src), "yes");
2738        assert_eq!(clean("#ifdef __has_attribute\nyes\n#endif\n"), "yes");
2739    }
2740
2741    #[test]
2742    fn has_attribute_answers_out_of_the_matrix() {
2743        // Both answers matter. A yes for an attribute this compiler ignores sends a header down
2744        // a path that then fails to compile, and a no for one it honours sends it down a worse
2745        // path than it had to take.
2746        assert_eq!(clean("#if __has_attribute(packed)\nyes\n#endif\n"), "yes");
2747        assert_eq!(clean("#if __has_attribute(cold)\nyes\n#endif\n"), "");
2748        assert_eq!(clean("#if __has_attribute(no_such_attribute)\nyes\n#endif\n"), "");
2749        assert_eq!(clean("#if !__has_attribute(cold)\nno\n#endif\n"), "no");
2750    }
2751
2752    #[test]
2753    fn the_scoped_spelling_of_an_attribute_is_the_same_question() {
2754        // `[[gnu::packed]]` and `__attribute__((packed))` are one attribute, and
2755        // `__has_c_attribute` answers with the value the standard gives it rather than with
2756        // one. The scoped one answers zero even though the attribute is implemented, because
2757        // the scope is dropped and what is left is asked of the C attribute rows, which are the
2758        // seven the standard has. GCC answers one there, which is issue #315.
2759        assert_eq!(clean("#if __has_c_attribute(gnu::packed)\nyes\n#endif\n"), "");
2760        assert_eq!(clean("#if __has_c_attribute(deprecated)\nyes\n#endif\n"), "");
2761    }
2762
2763    #[test]
2764    fn has_builtin_answers_no_until_the_builtin_is_real() {
2765        assert_eq!(clean("#if __has_builtin(__builtin_expect)\nyes\n#endif\n"), "yes");
2766        assert_eq!(clean("#if __has_builtin(__builtin_clz)\nyes\n#endif\n"), "yes");
2767        assert_eq!(clean("#if __has_builtin(__builtin_alloca)\nyes\n#endif\n"), "");
2768        assert_eq!(clean("#if __has_builtin(__builtin_nonesuch)\nyes\n#endif\n"), "");
2769    }
2770
2771    #[test]
2772    fn has_feature_and_has_extension_read_the_same_table() {
2773        // The preprocessor features are the ones that are real today, so they are the ones
2774        // that answer yes, and `__has_extension` answers yes wherever `__has_feature` does.
2775        assert_eq!(clean("#if __has_feature(pragma_once)\nyes\n#endif\n"), "yes");
2776        assert_eq!(clean("#if __has_extension(pragma_once)\nyes\n#endif\n"), "yes");
2777        assert_eq!(clean("#if __has_extension(include_next)\nyes\n#endif\n"), "yes");
2778        assert_eq!(clean("#if __has_feature(include_next)\nyes\n#endif\n"), "");
2779        assert_eq!(clean("#if __has_feature(statement_expressions)\nyes\n#endif\n"), "");
2780    }
2781
2782    #[test]
2783    fn building_module_is_always_no_and_is_recognised_so_that_the_line_parses() {
2784        // Clang's own stddef.h writes this, and the whole point of knowing the name is that
2785        // the operand disappears with it. An unknown identifier would leave `(m)` behind and
2786        // the `#if` would fail to parse rather than answering no.
2787        assert_eq!(clean("#if __building_module(m)\nyes\n#endif\n"), "");
2788        assert_eq!(clean("#if !__building_module(m)\nyes\n#endif\n"), "yes");
2789        assert_eq!(
2790            clean(
2791                "#if !defined(offsetof) || (__has_feature(modules) && !__building_module(x))\nyes\n#endif\n"
2792            ),
2793            "yes"
2794        );
2795        // Defined, the same as the rest of the family: a header asks before it uses one.
2796        assert_eq!(clean("#ifdef __building_module\nyes\n#endif\n"), "yes");
2797        assert_eq!(clean("#if defined(__building_module)\nyes\n#endif\n"), "yes");
2798    }
2799
2800    #[test]
2801    fn a_has_operator_without_an_operand_is_reported() {
2802        let mut run = Run::new();
2803        run.go("#if __has_include\nyes\n#endif\n");
2804        assert_eq!(run.messages(), ["expected `(` after `__has_include`"]);
2805        let mut run = Run::new();
2806        run.go("#if __has_include(1)\nyes\n#endif\n");
2807        assert_eq!(run.messages(), ["expected a file name in `<>` or `\"\"`"]);
2808        let mut run = Run::new();
2809        run.go("#if __has_attribute(\"packed\")\nyes\n#endif\n");
2810        assert_eq!(run.messages(), ["expected an identifier as the operand of `__has_attribute`"]);
2811    }
2812
2813    #[test]
2814    fn the_has_operators_answer_in_ordinary_text_too() {
2815        // GCC and clang both make these builtin macros rather than something only the
2816        // conditional parser knows, so a program may write one in a declaration. Real headers
2817        // do: an attribute macro is often written as the answer rather than as a `#if`.
2818        assert_eq!(clean("f __has_feature(pragma_once)\n"), "f 1");
2819        assert_eq!(clean("b __has_builtin(__builtin_expect)\n"), "b 1");
2820        assert_eq!(clean("a __has_attribute(packed)\n"), "a 1");
2821        assert_eq!(clean("c __has_c_attribute(deprecated)\n"), "c 0");
2822        assert_eq!(clean("m __building_module(foo)\n"), "m 0");
2823    }
2824
2825    #[test]
2826    fn a_macro_that_expands_to_a_has_operator_is_answered_where_it_is_used() {
2827        // The awkward half of the same feature. The answer is deferred to wherever the macro
2828        // lands, so the sweep has to run after expansion and not only before it.
2829        assert_eq!(clean("#define HAVE __has_feature(pragma_once)\nx HAVE\n"), "x 1");
2830        assert_eq!(clean("#define HAVE(x) __has_attribute(x)\ny HAVE(packed)\n"), "y 1");
2831    }
2832
2833    #[test]
2834    fn a_has_operator_in_text_still_needs_its_operand() {
2835        let mut run = Run::new();
2836        run.go("tail __has_attribute;\n");
2837        assert_eq!(run.messages(), ["expected `(` after `__has_attribute`"]);
2838    }
2839
2840    #[test]
2841    fn the_header_operators_are_refused_in_ordinary_text() {
2842        // `<stdio.h>` in a text line was scanned as a run of comparisons, so there is no
2843        // header name left to ask about. GCC and clang both say the same thing here.
2844        let mut run = Run::new();
2845        run.file("/dir/there.h", "");
2846        run.dir("/dir");
2847        run.go("a __has_include(<there.h>)\n");
2848        assert_eq!(run.messages(), ["`__has_include` used outside of a preprocessing directive"]);
2849        let mut run = Run::new();
2850        run.go("b __has_include_next(\"x.h\")\n");
2851        assert_eq!(
2852            run.messages(),
2853            ["`__has_include_next` used outside of a preprocessing directive"]
2854        );
2855    }
2856
2857    #[test]
2858    fn the_predefined_set_is_visible_to_the_source_file() {
2859        let mut run = Run::new();
2860        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
2861        let src = "#if defined(__x86_64__) && defined(__linux__) && __SIZEOF_LONG__ == 8\n\
2862                   yes\n#endif\n";
2863        assert_eq!(run.go(src), "yes");
2864        assert!(run.messages().is_empty());
2865    }
2866
2867    #[test]
2868    fn the_predefined_set_follows_the_target_and_not_the_host() {
2869        let mut run = Run::new();
2870        run.predefine("aarch64-unknown-linux-gnu", &Predef::new());
2871        assert_eq!(
2872            run.go("#ifdef __x86_64__\nno\n#endif\n#ifdef __aarch64__\nyes\n#endif\n"),
2873            "yes"
2874        );
2875    }
2876
2877    #[test]
2878    fn a_predefined_macro_expands_where_it_is_used() {
2879        let mut run = Run::new();
2880        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
2881        assert_eq!(run.go("__SIZE_TYPE__ n;\n"), "long unsigned int n;");
2882    }
2883
2884    #[test]
2885    fn a_command_line_define_is_a_definition_like_any_other() {
2886        let mut opts = Predef::new();
2887        opts.defines = vec!["FOO".to_owned(), "BAR=3".to_owned()];
2888        opts.undefines = vec!["__linux__".to_owned()];
2889        let mut run = Run::new();
2890        run.predefine("x86_64-unknown-linux-gnu", &opts);
2891        let src = "#if FOO && BAR == 3 && !defined(__linux__)\nyes\n#endif\n";
2892        assert_eq!(run.go(src), "yes");
2893        assert!(run.messages().is_empty());
2894    }
2895
2896    #[test]
2897    fn the_predefined_set_produces_no_tokens_of_its_own() {
2898        // It is a file of directives, so the output of the compilation is the source file
2899        // and nothing else. A stray token here would appear at the top of every `-E` run.
2900        let mut run = Run::new();
2901        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
2902        assert_eq!(run.go("alone\n"), "alone");
2903    }
2904
2905    #[test]
2906    fn the_predefined_files_are_named_the_way_gcc_names_them() {
2907        let mut run = Run::new();
2908        let mut opts = Predef::new();
2909        opts.defines = vec!["FOO=1".to_owned()];
2910        run.predefine("x86_64-unknown-linux-gnu", &opts);
2911        let names: Vec<&str> = run.sources.files().iter().map(|f| f.name.as_str()).collect();
2912        assert_eq!(names, ["<built-in>", "<command-line>"]);
2913    }
2914
2915    #[test]
2916    fn a_dialect_without_the_gnu_extensions_says_so() {
2917        let mut opts = Predef::new();
2918        opts.gnu_extensions = false;
2919        opts.std = Std::C99;
2920        let mut run = Run::new();
2921        run.predefine("x86_64-unknown-linux-gnu", &opts);
2922        let src = "#if defined(__STRICT_ANSI__) && __STDC_VERSION__ == 199901L && !defined(linux)\n\
2923                   yes\n#endif\n";
2924        assert_eq!(run.go(src), "yes");
2925    }
2926
2927    #[test]
2928    fn the_date_and_time_are_the_same_for_the_whole_translation_unit() {
2929        let mut opts = Predef::new();
2930        opts.timestamp = Timestamp::from_unix(0);
2931        let mut run = Run::new();
2932        run.predefine("x86_64-unknown-linux-gnu", &opts);
2933        assert_eq!(run.go("__DATE__ __TIME__\n"), "\"Jan  1 1970\" \"00:00:00\"");
2934    }
2935
2936    #[test]
2937    fn a_has_operator_in_a_dead_branch_is_not_asked_about() {
2938        // The line is not evaluated at all, so a malformed one inside `#if 0` is text.
2939        assert_eq!(clean("#if 0\n#if __has_include\n#endif\n#endif\nafter\n"), "after");
2940    }
2941
2942    #[test]
2943    fn a_conditional_may_not_span_an_include() {
2944        // GCC and Clang both refuse this, and the reason is that a header which opens a
2945        // conditional it does not close leaves the file that included it in a state nothing
2946        // downstream can reason about.
2947        let mut run = Run::new();
2948        run.file("/dir/open.h", "#if 1\n");
2949        run.dir("/dir");
2950        run.go("#include <open.h>\nkept\n#endif\n");
2951        let messages = run.messages();
2952        assert_eq!(messages.len(), 2);
2953        assert!(messages[0].contains("unterminated"));
2954        assert!(messages[1].contains("without"));
2955    }
2956
2957    #[test]
2958    fn include_next_continues_after_the_directory_the_file_came_from() {
2959        // The wrapper header trick: `/a` has a `limits.h` that pulls in the real one from
2960        // `/b`, and the two have the same name on purpose.
2961        let mut run = Run::new();
2962        run.file("/a/limits.h", "wrapper\n#include_next <limits.h>\n");
2963        run.file("/b/limits.h", "real\n");
2964        run.dir("/a");
2965        run.dir("/b");
2966        assert_eq!(run.go("#include <limits.h>\n"), "wrapper real");
2967        assert!(run.messages().is_empty());
2968    }
2969
2970    #[test]
2971    fn a_computed_include_is_expanded_first() {
2972        let mut run = Run::new();
2973        run.file("/dir/sub/thing.h", "computed\n");
2974        run.dir("/dir");
2975        let src = "#define HEADER <sub/thing.h>\n#include HEADER\n";
2976        assert_eq!(run.go(src), "computed");
2977        assert!(run.messages().is_empty());
2978        // The string literal form goes through the same path and keeps its delimiters.
2979        let mut run = Run::new();
2980        run.file("/dir/sub/thing.h", "computed\n");
2981        run.dir("/dir");
2982        assert_eq!(run.go("#define H \"sub/thing.h\"\n#include H\n"), "computed");
2983    }
2984
2985    #[test]
2986    fn a_header_that_is_not_there_says_where_it_looked() {
2987        let mut run = Run::new();
2988        run.dir("/dir");
2989        run.go("#include <nope.h>\n");
2990        let diagnostics = run.pp.take_diagnostics();
2991        assert_eq!(diagnostics.len(), 1);
2992        assert_eq!(diagnostics[0].code, Some("E0341"));
2993        assert_eq!(diagnostics[0].message, "`nope.h` file not found");
2994        assert!(diagnostics[0].children[0].message.contains("/dir"));
2995    }
2996
2997    #[test]
2998    fn an_include_that_is_not_a_header_name_is_reported() {
2999        let mut run = Run::new();
3000        run.go("#include 3\n");
3001        let diagnostics = run.pp.take_diagnostics();
3002        assert_eq!(diagnostics[0].code, Some("E0343"));
3003    }
3004
3005    #[test]
3006    fn a_header_that_includes_itself_stops() {
3007        let mut run = Run::new();
3008        run.file("/dir/loop.h", "#include <loop.h>\n");
3009        run.dir("/dir");
3010        run.go("#include <loop.h>\n");
3011        let diagnostics = run.pp.take_diagnostics();
3012        assert_eq!(diagnostics.len(), 1, "one complaint, not one per level");
3013        assert_eq!(diagnostics[0].code, Some("E0342"));
3014    }
3015
3016    #[test]
3017    fn an_include_in_a_dead_branch_is_not_read() {
3018        let mut run = Run::new();
3019        assert_eq!(run.go("#if 0\n#include <nothing.h>\n#endif\nafter\n"), "after");
3020        assert!(run.messages().is_empty(), "a skipped include is not resolved");
3021    }
3022
3023    #[test]
3024    fn embed_writes_the_bytes_of_the_resource() {
3025        let mut run = Run::new();
3026        run.bytes("/logo.bin", &[0, 1, 127, 128, 255]);
3027        assert_eq!(run.go("#embed \"logo.bin\"\n"), "0, 1, 127, 128, 255");
3028        assert!(run.messages().is_empty());
3029    }
3030
3031    #[test]
3032    fn an_embed_is_a_valid_initializer_on_both_sides_of_empty() {
3033        // The reason `prefix` and `suffix` exist. An empty resource is `if_empty` alone, with
3034        // neither of them, so the same three lines are a well formed array whether the file
3035        // has bytes in it or not. Emitting `prefix` and `suffix` around nothing would leave a
3036        // trailing comma inside the braces and turn an empty file into a syntax error.
3037        let mut run = Run::new();
3038        run.bytes("/some.bin", &[7, 8]);
3039        run.bytes("/none.bin", &[]);
3040        let line = |name: &str| {
3041            format!("{{\n#embed \"{name}\" prefix(0xEF,) suffix(,0xFE) if_empty(0)\n}}\n")
3042        };
3043        assert_eq!(run.go(&line("some.bin")), "{ 0xEF,7, 8 ,0xFE }");
3044        assert_eq!(run.go_named("/other.c", &line("none.bin")), "{ 0 }");
3045        assert!(run.messages().is_empty());
3046    }
3047
3048    #[test]
3049    fn the_limit_and_the_offset_choose_a_window_of_the_resource() {
3050        let mut run = Run::new();
3051        run.bytes("/eight.bin", &[1, 2, 3, 4, 5, 6, 7, 8]);
3052        assert_eq!(run.go("#embed \"eight.bin\" limit(3)\n"), "1, 2, 3");
3053        assert_eq!(
3054            run.go_named("/b.c", "#embed \"eight.bin\" gnu::offset(4) limit(3)\n"),
3055            "5, 6, 7"
3056        );
3057        // A limit of zero is an empty embed, not an unlimited one, and an offset past the end
3058        // is empty rather than an error.
3059        assert_eq!(run.go_named("/c.c", "#embed \"eight.bin\" limit(0) if_empty(9)\n"), "9");
3060        assert_eq!(run.go_named("/d.c", "#embed \"eight.bin\" gnu::offset(99)\n"), "");
3061        assert!(run.messages().is_empty());
3062    }
3063
3064    #[test]
3065    fn the_limit_is_a_constant_expression_and_not_just_a_number() {
3066        // It is the `#if` language, so a macro and arithmetic both work. A header that writes
3067        // `limit(CHUNK * 2)` is doing the ordinary thing.
3068        let mut run = Run::new();
3069        run.bytes("/eight.bin", &[1, 2, 3, 4, 5, 6, 7, 8]);
3070        assert_eq!(
3071            run.go("#define CHUNK 2\n#embed \"eight.bin\" limit(CHUNK * 2)\n"),
3072            "1, 2, 3, 4"
3073        );
3074        assert!(run.messages().is_empty());
3075    }
3076
3077    #[test]
3078    fn a_misspelled_embed_parameter_is_refused_rather_than_ignored() {
3079        // Carrying on without it would produce an array with the wrong contents and no
3080        // message, which is the worst outcome available.
3081        let mut run = Run::new();
3082        run.bytes("/eight.bin", &[1, 2]);
3083        assert_eq!(run.go("#embed \"eight.bin\" limits(1)\n"), "");
3084        assert_eq!(run.messages(), vec!["unknown `#embed` parameter `limits`".to_owned()]);
3085        let mut vendor = Run::new();
3086        vendor.bytes("/eight.bin", &[1, 2]);
3087        assert_eq!(vendor.go("#embed \"eight.bin\" clang::offset(1)\n"), "");
3088        assert_eq!(
3089            vendor.messages(),
3090            vec!["unknown `#embed` parameter `clang::offset`".to_owned()]
3091        );
3092    }
3093
3094    #[test]
3095    fn a_missing_embed_resource_is_reported_as_a_resource() {
3096        let mut run = Run::new();
3097        run.go("#embed <nothing.bin>\n");
3098        assert_eq!(run.messages(), vec!["`nothing.bin` resource not found".to_owned()]);
3099    }
3100
3101    #[test]
3102    fn has_embed_tells_missing_from_present_from_empty() {
3103        // Three answers, which is the reason the operator is not `__has_include` with a
3104        // different name. A present but empty resource needs its `if_empty` written and a
3105        // missing one needs a fallback, and a yes or no cannot tell the two apart.
3106        let mut run = Run::new();
3107        run.bytes("/some.bin", &[1]);
3108        run.bytes("/none.bin", &[]);
3109        let src = "#if __has_embed(\"none.bin\") == __STDC_EMBED_EMPTY__\nempty\n#endif\n\
3110                   #if __has_embed(\"some.bin\") == __STDC_EMBED_FOUND__\nfound\n#endif\n\
3111                   #if __has_embed(\"gone.bin\") == __STDC_EMBED_NOT_FOUND__\ngone\n#endif\n";
3112        run.predefine("x86_64-unknown-linux-gnu", &Predef::default());
3113        assert_eq!(run.go(src), "empty found gone");
3114        assert!(run.messages().is_empty());
3115    }
3116
3117    #[test]
3118    fn has_embed_takes_the_limit_into_account() {
3119        // The guard has to answer the question the directive it guards will ask. A resource
3120        // that exists but has nothing left after `limit(0)` is empty to both of them.
3121        let mut run = Run::new();
3122        run.bytes("/some.bin", &[1, 2, 3]);
3123        run.predefine("x86_64-unknown-linux-gnu", &Predef::default());
3124        let src = "#if __has_embed(\"some.bin\" limit(0)) == __STDC_EMBED_EMPTY__\nempty\n#endif\n";
3125        assert_eq!(run.go(src), "empty");
3126        assert!(run.messages().is_empty());
3127    }
3128
3129    #[test]
3130    fn a_directive_may_have_space_before_the_hash_and_after_it() {
3131        assert_eq!(clean("  #  define F 1\n#ifdef F\nyes\n#endif\n"), "yes");
3132    }
3133
3134    #[test]
3135    fn a_definition_survives_across_a_conditional() {
3136        assert_eq!(clean("#if 1\n#define F 7\n#endif\nF\n"), "7");
3137    }
3138
3139    #[test]
3140    fn an_empty_if_expression_is_reported() {
3141        let mut run = Run::new();
3142        run.go("#if\n#endif\n");
3143        assert_eq!(run.messages(), vec!["`#if` with no expression".to_owned()]);
3144    }
3145
3146    #[test]
3147    fn the_file_and_the_line_say_where_the_use_is() {
3148        let mut run = Run::new();
3149        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
3150        assert_eq!(run.go("__FILE__ __LINE__\n__LINE__\n"), "\"/main.c\" 1 2");
3151        assert!(run.messages().is_empty());
3152    }
3153
3154    #[test]
3155    fn a_macro_that_mentions_the_line_answers_with_the_call() {
3156        let mut run = Run::new();
3157        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
3158        run.file("/where.h", "#define WHERE __FILE__ __LINE__\n");
3159        // The point of the whole arrangement. `assert` is this macro, and a version that
3160        // answered with the header the macro was written in would name a file the user has
3161        // never opened and a line that means nothing.
3162        assert_eq!(run.go("#include \"where.h\"\n\n\nWHERE\n"), "\"/main.c\" 4");
3163        assert!(run.messages().is_empty());
3164    }
3165
3166    #[test]
3167    fn the_file_name_is_the_file_without_the_directories() {
3168        let mut run = Run::new();
3169        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
3170        assert_eq!(run.go_named("/deep/down/main.c", "__FILE_NAME__\n"), "\"main.c\"");
3171    }
3172
3173    #[test]
3174    fn a_backslash_in_the_name_is_escaped() {
3175        let mut run = Run::new();
3176        run.predefine("x86_64-pc-windows-msvc", &Predef::new());
3177        // The literal has to mean the path, so the separators are escaped. Getting this wrong
3178        // turns `\src` into an unknown escape and `\a` into a bell character.
3179        let text = run.go_named("C:\\src\\main.c", "__FILE__ __FILE_NAME__\n");
3180        assert_eq!(text, "\"C:\\\\src\\\\main.c\" \"main.c\"");
3181    }
3182
3183    #[test]
3184    fn the_base_file_is_the_one_named_on_the_command_line() {
3185        let mut run = Run::new();
3186        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
3187        run.file("/deep.h", "__FILE__ __BASE_FILE__\n");
3188        assert_eq!(run.go("#include \"deep.h\"\n"), "\"/deep.h\" \"/main.c\"");
3189        assert!(run.messages().is_empty());
3190    }
3191
3192    #[test]
3193    fn the_include_level_counts_the_headers_above_it() {
3194        let mut run = Run::new();
3195        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
3196        run.file("/one.h", "__INCLUDE_LEVEL__\n#include \"two.h\"\n");
3197        run.file("/two.h", "__INCLUDE_LEVEL__\n");
3198        assert_eq!(run.go("__INCLUDE_LEVEL__\n#include \"one.h\"\n"), "0 1 2");
3199        assert!(run.messages().is_empty());
3200    }
3201
3202    #[test]
3203    fn the_counter_is_a_different_number_every_time() {
3204        let mut run = Run::new();
3205        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
3206        assert_eq!(run.go("__COUNTER__ __COUNTER__ __COUNTER__\n"), "0 1 2");
3207    }
3208
3209    #[test]
3210    fn the_counter_advances_once_per_argument_rather_than_once_per_use() {
3211        let mut run = Run::new();
3212        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
3213        // An argument is expanded once however many times the body names it, so `TWICE`
3214        // produces the same number twice. That is what GCC does, and the reason for it is
3215        // that expanding an argument twice would report anything wrong inside it twice.
3216        assert_eq!(run.go("#define TWICE(x) x x\nTWICE(__COUNTER__) __COUNTER__\n"), "0 0 1");
3217    }
3218
3219    #[test]
3220    fn the_line_is_a_number_an_if_can_use() {
3221        let mut run = Run::new();
3222        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
3223        assert_eq!(run.go("#if __LINE__ == 1 && __INCLUDE_LEVEL__ == 0\nyes\n#endif\n"), "yes");
3224        assert!(run.messages().is_empty());
3225    }
3226
3227    #[test]
3228    fn the_dynamic_macros_are_defined_like_any_others() {
3229        let mut run = Run::new();
3230        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
3231        let src = "#ifdef __FILE__\nyes\n#endif\n#undef __LINE__\n#ifndef __LINE__\ngone\n#endif\n";
3232        assert_eq!(run.go(src), "yes gone");
3233        assert!(run.messages().is_empty(), "`#undef` of a builtin is allowed, as it is in GCC");
3234    }
3235
3236    #[test]
3237    fn redefining_a_dynamic_macro_warns_and_points_at_the_built_in_file() {
3238        let mut run = Run::new();
3239        run.predefine("x86_64-unknown-linux-gnu", &Predef::new());
3240        assert_eq!(run.go("#define __FILE__ \"mine.c\"\n__FILE__\n"), "\"mine.c\"");
3241        let complaints = run.pp.take_diagnostics();
3242        assert_eq!(complaints.len(), 1);
3243        assert_eq!(complaints[0].code, Some("W0301"));
3244        let previous = complaints[0].children.first().expect("a note saying where it was");
3245        assert_eq!(run.sources.lookup(previous.span.lo).map(|loc| loc.file), {
3246            let built_in = run.sources.files().iter().find(|f| f.name == BUILT_IN);
3247            built_in.map(|f| f.id)
3248        });
3249    }
3250
3251    #[test]
3252    fn destringizing_undoes_what_stringizing_did() {
3253        assert_eq!(destringize(r#""a \"b\" c""#), r#"a "b" c"#);
3254        assert_eq!(destringize(r#""a \\ b""#), r"a \ b");
3255        assert_eq!(destringize(r#"L"wide""#), "wide");
3256    }
3257}