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lex_syntax/
loader.rs

1//! Multi-file loader: resolves `import "./..."`, `import "../..."`, and
2//! `import "/abs/..."` statements relative to the importer, recursively
3//! parses, and produces a single [`Program`] with all stages merged.
4//!
5//! Names that are local to an imported file are mangled with a
6//! **per-file-path** prefix, so the same module imported via multiple
7//! aliases (or from multiple parents in a diamond shape) collapses to
8//! one set of mangled names — same SigId, same nominal identity.
9//! Stdlib imports (`import "std.foo" as bar`) pass through unchanged.
10//!
11//! ## Mangling
12//!
13//! Each loaded file gets a prefix derived from its filesystem path.
14//! The entry file's prefix is empty (so `lex run main.lex process`
15//! works unchanged). Imported files use `<stem>_<hash>` where `hash`
16//! is the first 8 hex chars of SHA-256 of the file's *mangling key*.
17//! The hash disambiguates same-stem files in different directories
18//! without forcing a project manifest.
19//!
20//! The mangling key is the canonical absolute path by default, and the
21//! path **relative to a caller-supplied root** when loading through
22//! [`load_program_with_root`] or [`load_package`]. Absolute paths are
23//! only stable as long as the tree stays put, which makes them unusable
24//! for anything that loads the same logical package from a fresh
25//! directory each time: a server unpacking an uploaded package into a
26//! per-request temp dir got a different prefix — and therefore a
27//! brand-new set of function names — for every file reached through a
28//! local import on every single request, so byte-identical republishes
29//! diffed as all-new functions and grew the branch's function set
30//! without bound (#826). Pass the package root and the key becomes
31//! `src/error.lex`, identical across requests. Files outside the root
32//! keep the absolute-path key (a dependency in the shared package cache
33//! lives at a stable absolute path of its own, and "relative to this
34//! package" says nothing useful about it).
35//!
36//! [`load_package`] adds a `namespace` ahead of the relative path
37//! (`lex-schema/src/error.lex`), because a relative key is only unique
38//! *within* one package: two packages published into one branch can both
39//! have a `src/error.lex`, and without the namespace both get the same
40//! `error_<hash>.format`.
41//!
42//! ## Whole-package loading
43//!
44//! [`load_program`] and [`load_program_with_root`] each flatten one
45//! entry's entire local-import closure into that entry's program, which
46//! is what `lex run`/`lex check` want for a single file. A caller holding
47//! *every* file of a package — a publish server, say — gets each shared
48//! dependency back once per importer instead: 2,239 declarations for 693
49//! distinct names on a real 21-file package whose `error.lex` 17 files
50//! import (#828). [`load_package`] is the whole-package entry point: one
51//! shared pass, every file exactly once, and every file mangled (no
52//! unmangled entry), since bare names from different files would collide
53//! in one program.
54//!
55//! Within a file at prefix `P`:
56//!
57//! - `fn foo` declared in this file becomes `<P>.foo` (just `foo` at root).
58//! - `type T` declared in this file becomes `<P>.T`.
59//! - References to a locally-declared name get mangled, **unless** the
60//!   name is shadowed by a binder (let, fn param, lambda param, or
61//!   pattern binder) in scope.
62//! - `m.foo` where `m` is a path-import alias is rewritten to the
63//!   imported file's prefix-qualified name. Two parents importing the
64//!   same file see the same prefix → calls and types unify.
65//! - `m.foo` where `m` is a stdlib alias is unchanged.
66//!
67//! Variant constructors are **not** mangled — they live in a global
68//! namespace, and a collision between two imported types' constructors
69//! surfaces later as a type-check error. Same for record field names.
70//!
71//! ## Diamond imports
72//!
73//! `main.lex` imports `./left` and `./right`, both of which import
74//! `./shared`. `shared.lex` is parsed once per resolution, but its
75//! mangled items are merged into the output exactly once (subsequent
76//! loads from the same canonical path return an empty Program). This
77//! is what makes `s.build_report(...)` and `v.read_score(...)` agree
78//! on `Report`'s nominal identity.
79//!
80//! ## Limitations (tracked separately)
81//!
82//! The mangling key is a filesystem path (see above). Moving a file
83//! changes its SigId; renaming changes the file-stem half of the
84//! prefix, and under [`load_package`] that applies to every
85//! declaration, not only imported ones — a function moved between two
86//! files of a package is a new function there. A root-relative key
87//! narrows this to moves *within* the package, but does not remove it.
88//! The eventual fix — content-addressed identity decoupled from
89//! filesystem layout — lives with store-native imports
90//! (`import "stage:..."`); see the corresponding follow-up tracker.
91
92use std::collections::{BTreeMap, BTreeSet, HashMap, HashSet};
93use std::path::{Path, PathBuf};
94use thiserror::Error;
95
96use sha2::{Digest, Sha256};
97
98use crate::syntax::*;
99use crate::workspace::{resolve_package_import, PackageError};
100use crate::{parse_source, SyntaxError};
101
102#[derive(Debug, Error)]
103pub enum LoadError {
104    #[error("read {path}: {source}")]
105    Io {
106        path: String,
107        #[source]
108        source: std::io::Error,
109    },
110    #[error("parse {path}: {source}")]
111    Syntax {
112        path: String,
113        #[source]
114        source: SyntaxError,
115    },
116    #[error("import cycle: {chain}")]
117    Cycle { chain: String },
118    #[error("import \"{reference}\" from {importer}: file not found")]
119    NotFound { importer: String, reference: String },
120    #[error("local imports (`./`, `../`, `/`) require a base path; cannot resolve from a string source")]
121    LocalImportInStringSource,
122    #[error(
123        "alias `{alias}` is bound to both \"{first}\" and \"{second}\" within one package; \
124         loading the package as a single unit cannot keep both"
125    )]
126    ConflictingAlias {
127        alias: String,
128        first: String,
129        second: String,
130    },
131    #[error("package import error: {0}")]
132    Package(#[from] PackageError),
133}
134
135/// Load a multi-file Lex program, expanding local imports relative to
136/// the entry path. Stdlib imports (`std.*`) pass through unchanged.
137pub fn load_program(entry: &Path) -> Result<Program, LoadError> {
138    load_rooted(entry, None)
139}
140
141/// Load a multi-file Lex program like [`load_program`], but derive
142/// mangling prefixes from each file's path **relative to `root`**
143/// instead of its absolute path.
144///
145/// Use this whenever the same logical package can be loaded from a
146/// different directory each time — an unpacked upload, a CI checkout, a
147/// scratch clone — and the mangled names it produces must match across
148/// those loads (#826). Files that do not live under `root` keep the
149/// absolute-path key, as do all files if `root` cannot be canonicalized.
150pub fn load_program_with_root(entry: &Path, root: &Path) -> Result<Program, LoadError> {
151    // Canonicalize the root too: the entry path is canonicalized below,
152    // and a root reached through a symlink (macOS's `/var/folders/...`
153    // temp dirs being the common case) would never prefix-match the
154    // canonicalized file paths otherwise.
155    let root = root.canonicalize().unwrap_or_else(|_| root.to_path_buf());
156    load_rooted(entry, Some(root))
157}
158
159/// A package loaded as one unit by [`load_package`].
160#[derive(Debug)]
161pub struct LoadedPackage {
162    /// Every file's declarations, each exactly once, all prefix-mangled.
163    pub program: Program,
164    /// The stdlib modules each file imports *itself*, keyed by the file's
165    /// path relative to the package root (`src/schema.lex`). Unlike
166    /// `program`, this is per-file: the flattening entry points cannot
167    /// report it, because by the time they return, a file's imports and
168    /// those of everything it imports are one undifferentiated list.
169    pub imports_by_file: BTreeMap<String, BTreeSet<String>>,
170}
171
172/// Load a whole package as **one** program: every file gets its
173/// path-derived mangling prefix (no file is the unmangled "entry"), and
174/// each file's declarations appear exactly once however many other files
175/// import it.
176///
177/// [`load_program`] and [`load_program_with_root`] flatten each entry's
178/// whole local-import closure into that entry's program, so a caller
179/// holding N top-level files gets every shared dependency back N times —
180/// once per importer. The real 21-file `lex-schema` package, whose
181/// `error.lex` is imported by 17 of its files, yielded 2,239 `FnDecl`s
182/// for 693 distinct names that way, and a server that canonicalizes,
183/// type-checks, diffs and publishes each copy paid for all 2,239 (#828).
184/// One shared pass yields 447 — one per declaration.
185///
186/// Because no file is the entry, **no declaration keeps its bare
187/// source-level name**: `fn validate` in `src/field.lex` is
188/// `field_<hash>.validate`, not `validate`. That is what makes one
189/// program safe to type-check as a unit — two files may each declare
190/// their own local `validate`, and the checker's global scope is a map
191/// keyed by name, so bare names from different files would silently
192/// overwrite each other and check bodies against the wrong signature.
193///
194/// `namespace` is mixed into every mangling key ahead of the relative
195/// path, so the same internal layout in two different packages does not
196/// collapse onto one set of names. Callers publishing into a shared
197/// branch should pass the package name: a tenant hosting both
198/// `lex-schema` and `lex-ocpi` has two `src/error.lex` files, and a
199/// purely path-derived key gives both the same `error_<hash>.format`.
200///
201/// Stdlib imports are deduped by `(reference, alias)`. An alias bound to
202/// two *different* references inside one package is rejected with
203/// [`LoadError::ConflictingAlias`] rather than merged: the checker's
204/// alias scope is also name-keyed, so merging would silently resolve one
205/// file's calls against the other file's module.
206pub fn load_package(
207    entries: &[PathBuf],
208    root: &Path,
209    namespace: &str,
210) -> Result<LoadedPackage, LoadError> {
211    let root = root.canonicalize().unwrap_or_else(|_| root.to_path_buf());
212    let mut state = LoaderState {
213        in_progress: Vec::new(),
214        loaded: HashSet::new(),
215        prefixes: HashMap::new(),
216        prefix_root: Some(root),
217        prefix_namespace: Some(namespace.to_string()),
218        imports_by_file: BTreeMap::new(),
219    };
220    // Deliberately no empty-prefix seeding: see the doc comment above.
221    let mut items: Vec<Item> = Vec::new();
222    let mut aliases: HashMap<String, String> = HashMap::new();
223    for entry in entries {
224        let canonical = entry.canonicalize().map_err(|source| LoadError::Io {
225            path: entry.display().to_string(),
226            source,
227        })?;
228        for item in state.load(&canonical)?.items {
229            if let Item::Import(imp) = &item {
230                match aliases.get(&imp.alias) {
231                    // Same module under the same alias: one import is enough.
232                    Some(existing) if existing == &imp.reference => continue,
233                    Some(existing) => {
234                        return Err(LoadError::ConflictingAlias {
235                            alias: imp.alias.clone(),
236                            first: existing.clone(),
237                            second: imp.reference.clone(),
238                        })
239                    }
240                    None => {
241                        aliases.insert(imp.alias.clone(), imp.reference.clone());
242                    }
243                }
244            }
245            items.push(item);
246        }
247    }
248    Ok(LoadedPackage {
249        program: Program {
250            items,
251            leading_comments: Vec::new(),
252            trailing_comments: Vec::new(),
253        },
254        imports_by_file: state.imports_by_file,
255    })
256}
257
258fn load_rooted(entry: &Path, prefix_root: Option<PathBuf>) -> Result<Program, LoadError> {
259    let entry_canonical = entry.canonicalize().map_err(|source| LoadError::Io {
260        path: entry.display().to_string(),
261        source,
262    })?;
263    let mut state = LoaderState {
264        in_progress: Vec::new(),
265        loaded: HashSet::new(),
266        prefixes: HashMap::new(),
267        prefix_root,
268        prefix_namespace: None,
269        imports_by_file: BTreeMap::new(),
270    };
271    // Entry file's prefix is empty so `lex run main.lex process` works
272    // without users typing the hashed prefix.
273    state.prefixes.insert(entry_canonical.clone(), String::new());
274    state.load(&entry_canonical)
275}
276
277/// Load a Lex program from a string source. Local-path imports are
278/// rejected up-front since there's no base path to resolve from.
279pub fn load_program_from_str(src: &str) -> Result<Program, LoadError> {
280    let prog = parse_source(src).map_err(|source| LoadError::Syntax {
281        path: "<input>".into(),
282        source,
283    })?;
284    for item in &prog.items {
285        if let Item::Import(imp) = item {
286            if is_path_import(&imp.reference)
287                || split_package_import(&imp.reference).is_some()
288            {
289                return Err(LoadError::LocalImportInStringSource);
290            }
291        }
292    }
293    Ok(prog)
294}
295
296struct LoaderState {
297    in_progress: Vec<PathBuf>,
298    /// Canonical paths that have already been merged into the output.
299    /// A second `import "./shared"` from a different parent skips
300    /// re-merging — the file's mangled items are already there.
301    loaded: HashSet<PathBuf>,
302    /// Stable mangling prefix per canonical path. Computed lazily;
303    /// the entry file is seeded with an empty prefix.
304    prefixes: HashMap<PathBuf, String>,
305    /// When set, mangling prefixes hash each file's path relative to
306    /// this (already canonicalized) directory rather than its absolute
307    /// path, so the same package layout mangles identically wherever it
308    /// is unpacked. See the module header's "Mangling" section.
309    prefix_root: Option<PathBuf>,
310    /// Mixed into every relative mangling key ahead of the path, so two
311    /// packages sharing an internal layout (two `src/error.lex` files)
312    /// do not mangle to one set of names. Only [`load_package`] sets it.
313    prefix_namespace: Option<String>,
314    /// Stdlib modules imported by each file itself, keyed by the file's
315    /// root-relative path. Recorded for every file the loader reads;
316    /// only [`load_package`] hands it back.
317    imports_by_file: BTreeMap<String, BTreeSet<String>>,
318}
319
320impl LoaderState {
321    fn prefix_for(&mut self, canonical: &Path) -> String {
322        if let Some(p) = self.prefixes.get(canonical) {
323            return p.clone();
324        }
325        let stem = canonical
326            .file_stem()
327            .and_then(|s| s.to_str())
328            .unwrap_or("module");
329        let mut hasher = Sha256::new();
330        hasher.update(self.mangling_key(canonical).as_bytes());
331        let digest = hasher.finalize();
332        let prefix = format!("{stem}_{:08x}", u32::from_be_bytes([
333            digest[0], digest[1], digest[2], digest[3],
334        ]));
335        self.prefixes.insert(canonical.to_path_buf(), prefix.clone());
336        prefix
337    }
338
339    /// The string a file's mangling hash is taken over: `prefix_namespace`
340    /// (when set) followed by the file's path relative to `prefix_root`,
341    /// else its canonical absolute path. Relative keys are joined with
342    /// `/` regardless of platform so the same layout hashes the same on
343    /// Windows and Unix.
344    fn mangling_key(&self, canonical: &Path) -> String {
345        match (self.relative_key(canonical), &self.prefix_namespace) {
346            (Some(rel), Some(ns)) => format!("{ns}/{rel}"),
347            (Some(rel), None) => rel,
348            (None, _) => canonical.to_string_lossy().into_owned(),
349        }
350    }
351
352    /// A file's path relative to `prefix_root`, `/`-joined — `None` when
353    /// there is no root or the file lives outside it. Also the key
354    /// `imports_by_file` is reported under, which is why it carries no
355    /// namespace: those keys name files in the archive, and history
356    /// already records them under exactly this spelling.
357    fn relative_key(&self, canonical: &Path) -> Option<String> {
358        let root = self.prefix_root.as_ref()?;
359        let rel = canonical.strip_prefix(root).ok()?;
360        let key = rel
361            .components()
362            .map(|c| c.as_os_str().to_string_lossy())
363            .collect::<Vec<_>>()
364            .join("/");
365        // An empty key means `canonical == root` (a root pointing at the
366        // file itself) — not a usable key, and it would collide with any
367        // other such file.
368        if key.is_empty() {
369            None
370        } else {
371            Some(key)
372        }
373    }
374
375    fn load(&mut self, canonical: &Path) -> Result<Program, LoadError> {
376        if self.in_progress.contains(&canonical.to_path_buf()) {
377            let mut chain: Vec<String> = self
378                .in_progress
379                .iter()
380                .map(|p| p.display().to_string())
381                .collect();
382            chain.push(canonical.display().to_string());
383            return Err(LoadError::Cycle {
384                chain: chain.join(" -> "),
385            });
386        }
387        // Diamond dedupe: if this file was already merged on another
388        // path through the import graph, its items are already in the
389        // output Vec — return an empty Program so the caller's
390        // `merged_children.extend(...)` is a no-op for items, but the
391        // call still resolves so the parent's `path_imports` map gets
392        // populated below.
393        if self.loaded.contains(canonical) {
394            return Ok(Program {
395                items: Vec::new(),
396                leading_comments: Vec::new(),
397                trailing_comments: Vec::new(),
398            });
399        }
400        self.in_progress.push(canonical.to_path_buf());
401
402        let src = std::fs::read_to_string(canonical).map_err(|source| LoadError::Io {
403            path: canonical.display().to_string(),
404            source,
405        })?;
406        let prog = parse_source(&src).map_err(|source| LoadError::Syntax {
407            path: canonical.display().to_string(),
408            source,
409        })?;
410
411        let local_names: HashSet<String> = prog
412            .items
413            .iter()
414            .filter_map(|item| match item {
415                Item::FnDecl(fd) => Some(fd.name.clone()),
416                Item::TypeDecl(td) => Some(td.name.clone()),
417                _ => None,
418            })
419            .collect();
420
421        // alias used by this file → mangling prefix of the imported file
422        let mut path_imports: HashMap<String, String> = HashMap::new();
423        let mut merged_children: Vec<Item> = Vec::new();
424        let mut std_imports: Vec<Item> = Vec::new();
425        let mut my_items: Vec<Item> = Vec::new();
426
427        for item in prog.items {
428            match item {
429                Item::Import(ref imp) if is_path_import(&imp.reference) => {
430                    let resolved = resolve_import(canonical, &imp.reference)?;
431                    let child_prefix = self.prefix_for(&resolved);
432                    path_imports.insert(imp.alias.clone(), child_prefix);
433                    let child_prog = self.load(&resolved)?;
434                    merged_children.extend(child_prog.items);
435                }
436                Item::Import(ref imp)
437                    if split_package_import(&imp.reference).is_some() =>
438                {
439                    let (pkg, module) =
440                        split_package_import(&imp.reference).unwrap();
441                    let resolved =
442                        resolve_package_import(canonical, pkg, module)
443                            .map_err(LoadError::Package)?
444                            .canonicalize()
445                            .map_err(|source| LoadError::Io {
446                                path: imp.reference.clone(),
447                                source,
448                            })?;
449                    let child_prefix = self.prefix_for(&resolved);
450                    path_imports.insert(imp.alias.clone(), child_prefix);
451                    let child_prog = self.load(&resolved)?;
452                    merged_children.extend(child_prog.items);
453                }
454                Item::Import(_) => std_imports.push(item),
455                _ => my_items.push(item),
456            }
457        }
458
459        // Attribute this file's own stdlib imports to this file, before
460        // the merge below makes them indistinguishable from its
461        // children's. Every file gets an entry, imports or not, so a
462        // file that has dropped its last import is still represented.
463        if let Some(key) = self.relative_key(canonical) {
464            let entry = self.imports_by_file.entry(key).or_default();
465            for item in &std_imports {
466                if let Item::Import(imp) = item {
467                    entry.insert(imp.reference.clone());
468                }
469            }
470        }
471
472        let my_prefix = self.prefix_for(canonical);
473        let mangler = Mangler {
474            prefix: my_prefix,
475            local_names: &local_names,
476            path_imports: &path_imports,
477        };
478        let mangled: Vec<Item> = my_items
479            .into_iter()
480            .map(|i| mangler.mangle_item(i))
481            .collect();
482
483        self.in_progress.pop();
484        self.loaded.insert(canonical.to_path_buf());
485
486        // Output order: std imports first (deduped against children's),
487        // then merged children's items, then this file's items.
488        let mut out: Vec<Item> = Vec::new();
489        for s in std_imports {
490            if !merged_children.iter().any(|m| m == &s) {
491                out.push(s);
492            }
493        }
494        out.extend(merged_children);
495        out.extend(mangled);
496        // Top-of-file comments live on each source file independently;
497        // after import merging the merged Program represents many
498        // files at once, and there is no obvious single "top of file"
499        // to attribute them to. Drop here — they're preserved by
500        // `lex fmt` (which operates per-file) but not by the loader's
501        // import-merging path. Same rationale for trailing_comments.
502        Ok(Program {
503            items: out,
504            leading_comments: Vec::new(),
505            trailing_comments: Vec::new(),
506        })
507    }
508}
509
510fn is_path_import(reference: &str) -> bool {
511    reference.starts_with("./") || reference.starts_with("../") || reference.starts_with('/')
512}
513
514/// Returns `Some((pkg_name, module_path))` for package imports like
515/// `"lex-schema/validate"`. Stdlib (`std.*`) and relative paths are
516/// excluded — they are handled elsewhere.
517fn split_package_import(reference: &str) -> Option<(&str, &str)> {
518    if reference.starts_with("./")
519        || reference.starts_with("../")
520        || reference.starts_with('/')
521        || reference.starts_with("std.")
522    {
523        return None;
524    }
525    reference.split_once('/')
526}
527
528fn resolve_import(importer: &Path, reference: &str) -> Result<PathBuf, LoadError> {
529    let importer_dir = importer.parent().unwrap_or_else(|| Path::new("."));
530    let mut resolved: PathBuf = if reference.starts_with('/') {
531        PathBuf::from(reference)
532    } else {
533        importer_dir.join(reference)
534    };
535    if resolved.extension().is_none() {
536        resolved.set_extension("lex");
537    }
538    if !resolved.exists() {
539        return Err(LoadError::NotFound {
540            importer: importer.display().to_string(),
541            reference: reference.to_string(),
542        });
543    }
544    // Canonicalize so that `../../shared/foo` and `../other/../shared/foo`
545    // resolve to the same HashMap key, preventing duplicate loads and
546    // mismatched mangling prefixes in diamond-import graphs (#358).
547    resolved.canonicalize().map_err(|source| LoadError::Io {
548        path: resolved.display().to_string(),
549        source,
550    })
551}
552
553struct Mangler<'a> {
554    /// Mangling prefix for items declared in this file. Empty for the
555    /// entry file, `<stem>_<hash8>` for imported files.
556    prefix: String,
557    local_names: &'a HashSet<String>,
558    /// Map from local alias to the imported file's mangling prefix.
559    /// `m.foo` rewrites to `<imported_prefix>.foo` regardless of which
560    /// alias `m` was, so two parents importing the same module agree.
561    path_imports: &'a HashMap<String, String>,
562}
563
564impl<'a> Mangler<'a> {
565    fn qualify(&self, name: &str) -> String {
566        if self.prefix.is_empty() {
567            name.to_string()
568        } else {
569            format!("{}.{}", self.prefix, name)
570        }
571    }
572
573    fn mangle_item(&self, item: Item) -> Item {
574        match item {
575            Item::Import(imp) => Item::Import(imp),
576            Item::TypeDecl(td) => Item::TypeDecl(self.mangle_type_decl(td)),
577            Item::FnDecl(fd) => Item::FnDecl(self.mangle_fn_decl(fd)),
578        }
579    }
580
581    fn mangle_type_decl(&self, td: TypeDecl) -> TypeDecl {
582        TypeDecl {
583            name: self.qualify(&td.name),
584            params: td.params,
585            definition: self.mangle_type_expr(td.definition),
586            leading_comments: td.leading_comments,
587        }
588    }
589
590    fn mangle_fn_decl(&self, fd: FnDecl) -> FnDecl {
591        let mut shadow = HashSet::new();
592        for p in &fd.params {
593            shadow.insert(p.name.clone());
594        }
595        // Example args/expected sit outside the body's parameter scope:
596        // they're top-level expressions evaluated against the function
597        // signature, so the only names they can see are the file's
598        // top-level fns/types and any path-import aliases — i.e., an
599        // empty shadow set (#391).
600        let empty_shadow = HashSet::new();
601        let examples = fd
602            .examples
603            .into_iter()
604            .map(|ex| Example {
605                args: ex
606                    .args
607                    .into_iter()
608                    .map(|a| self.mangle_expr(a, &empty_shadow))
609                    .collect(),
610                expected: self.mangle_expr(ex.expected, &empty_shadow),
611            })
612            .collect();
613        FnDecl {
614            name: self.qualify(&fd.name),
615            type_params: fd.type_params,
616            params: fd
617                .params
618                .into_iter()
619                .map(|p| Param {
620                    name: p.name,
621                    ty: self.mangle_type_expr(p.ty),
622                })
623                .collect(),
624            effects: fd.effects,
625            effect_row_var: fd.effect_row_var,
626            return_type: self.mangle_type_expr(fd.return_type),
627            body: self.mangle_block(fd.body, &shadow),
628            examples,
629            leading_comments: fd.leading_comments,
630        }
631    }
632
633    fn mangle_type_expr(&self, te: TypeExpr) -> TypeExpr {
634        match te {
635            TypeExpr::Named { name, args } => TypeExpr::Named {
636                name: self.rewrite_type_name(&name),
637                args: args.into_iter().map(|a| self.mangle_type_expr(a)).collect(),
638            },
639            TypeExpr::Record(fields) => TypeExpr::Record(
640                fields
641                    .into_iter()
642                    .map(|f| TypeField {
643                        name: f.name,
644                        ty: self.mangle_type_expr(f.ty),
645                    })
646                    .collect(),
647            ),
648            TypeExpr::RecordWithSpreads { spreads, fields } => TypeExpr::RecordWithSpreads {
649                spreads: spreads.into_iter().map(|s| self.rewrite_type_name(&s)).collect(),
650                fields: fields
651                    .into_iter()
652                    .map(|f| TypeField {
653                        name: f.name,
654                        ty: self.mangle_type_expr(f.ty),
655                    })
656                    .collect(),
657            },
658            TypeExpr::Tuple(items) => {
659                TypeExpr::Tuple(items.into_iter().map(|t| self.mangle_type_expr(t)).collect())
660            }
661            TypeExpr::Function {
662                params,
663                effects,
664                effect_row_var,
665                ret,
666            } => TypeExpr::Function {
667                params: params
668                    .into_iter()
669                    .map(|t| self.mangle_type_expr(t))
670                    .collect(),
671                effects,
672                effect_row_var,
673                ret: Box::new(self.mangle_type_expr(*ret)),
674            },
675            TypeExpr::Union(variants) => TypeExpr::Union(
676                variants
677                    .into_iter()
678                    .map(|v| UnionVariant {
679                        name: v.name,
680                        payload: v.payload.map(|t| self.mangle_type_expr(t)),
681                    })
682                    .collect(),
683            ),
684            TypeExpr::Refined { base, binding, predicate } => TypeExpr::Refined {
685                base: Box::new(self.mangle_type_expr(*base)),
686                binding,
687                // The predicate is an expression; its names are
688                // resolved during type-check, not loader-time, so
689                // it passes through unchanged here. Slice 2 wires
690                // up discharge through the spec-checker.
691                predicate,
692            },
693        }
694    }
695
696    /// Rewrite a possibly-qualified type name to its mangled form.
697    fn rewrite_type_name(&self, name: &str) -> String {
698        if let Some((alias, rest)) = name.split_once('.') {
699            if let Some(child) = self.path_imports.get(alias) {
700                return format!("{child}.{rest}");
701            }
702            return name.to_string();
703        }
704        if self.local_names.contains(name) {
705            return self.qualify(name);
706        }
707        name.to_string()
708    }
709
710    fn mangle_block(&self, b: Block, shadow: &HashSet<String>) -> Block {
711        let mut shadow = shadow.clone();
712        let statements = b
713            .statements
714            .into_iter()
715            .map(|s| match s {
716                Statement::Let { name, ty, value } => {
717                    let value = self.mangle_expr(value, &shadow);
718                    let ty = ty.map(|t| self.mangle_type_expr(t));
719                    shadow.insert(name.clone());
720                    Statement::Let { name, ty, value }
721                }
722                Statement::Expr(e) => Statement::Expr(self.mangle_expr(e, &shadow)),
723            })
724            .collect();
725        let result = Box::new(self.mangle_expr(*b.result, &shadow));
726        Block { statements, result }
727    }
728
729    fn mangle_expr(&self, e: Expr, shadow: &HashSet<String>) -> Expr {
730        match e {
731            Expr::Lit(_) => e,
732            Expr::Var(name) => {
733                if !shadow.contains(&name) && self.local_names.contains(&name) {
734                    Expr::Var(self.qualify(&name))
735                } else {
736                    Expr::Var(name)
737                }
738            }
739            Expr::Block(b) => Expr::Block(self.mangle_block(b, shadow)),
740            Expr::Call { callee, args } => {
741                let mangled_args: Vec<Expr> = args
742                    .into_iter()
743                    .map(|a| self.mangle_expr(a, shadow))
744                    .collect();
745                if let Expr::Field { value, field } = (*callee).clone() {
746                    if let Expr::Var(alias) = *value {
747                        if !shadow.contains(&alias) {
748                            if let Some(child) = self.path_imports.get(&alias) {
749                                return Expr::Call {
750                                    callee: Box::new(Expr::Var(format!("{child}.{field}"))),
751                                    args: mangled_args,
752                                };
753                            }
754                        }
755                    }
756                }
757                Expr::Call {
758                    callee: Box::new(self.mangle_expr(*callee, shadow)),
759                    args: mangled_args,
760                }
761            }
762            Expr::Pipe { left, right } => Expr::Pipe {
763                left: Box::new(self.mangle_expr(*left, shadow)),
764                right: Box::new(self.mangle_expr(*right, shadow)),
765            },
766            Expr::Try(inner) => Expr::Try(Box::new(self.mangle_expr(*inner, shadow))),
767            Expr::Field { value, field } => {
768                if let Expr::Var(alias) = (*value).clone() {
769                    if !shadow.contains(&alias) {
770                        if let Some(child) = self.path_imports.get(&alias) {
771                            return Expr::Var(format!("{child}.{field}"));
772                        }
773                    }
774                }
775                Expr::Field {
776                    value: Box::new(self.mangle_expr(*value, shadow)),
777                    field,
778                }
779            }
780            Expr::BinOp { op, lhs, rhs } => Expr::BinOp {
781                op,
782                lhs: Box::new(self.mangle_expr(*lhs, shadow)),
783                rhs: Box::new(self.mangle_expr(*rhs, shadow)),
784            },
785            Expr::UnaryOp { op, expr } => Expr::UnaryOp {
786                op,
787                expr: Box::new(self.mangle_expr(*expr, shadow)),
788            },
789            Expr::If {
790                cond,
791                then_block,
792                else_block,
793            } => Expr::If {
794                cond: Box::new(self.mangle_expr(*cond, shadow)),
795                then_block: self.mangle_block(then_block, shadow),
796                else_block: self.mangle_block(else_block, shadow),
797            },
798            Expr::Match { scrutinee, arms } => Expr::Match {
799                scrutinee: Box::new(self.mangle_expr(*scrutinee, shadow)),
800                arms: arms
801                    .into_iter()
802                    .map(|a| {
803                        let mut arm_shadow = shadow.clone();
804                        collect_pattern_binders(&a.pattern, &mut arm_shadow);
805                        Arm {
806                            pattern: self.mangle_pattern(a.pattern),
807                            body: self.mangle_expr(a.body, &arm_shadow),
808                        }
809                    })
810                    .collect(),
811            },
812            Expr::RecordLit(fields) => Expr::RecordLit(
813                fields
814                    .into_iter()
815                    .map(|f| RecordLitField {
816                        name: f.name,
817                        value: self.mangle_expr(f.value, shadow),
818                    })
819                    .collect(),
820            ),
821            Expr::TupleLit(items) => Expr::TupleLit(
822                items
823                    .into_iter()
824                    .map(|i| self.mangle_expr(i, shadow))
825                    .collect(),
826            ),
827            Expr::ListLit(items) => Expr::ListLit(
828                items
829                    .into_iter()
830                    .map(|i| self.mangle_expr(i, shadow))
831                    .collect(),
832            ),
833            Expr::Constructor { name, args } => Expr::Constructor {
834                name,
835                args: args
836                    .into_iter()
837                    .map(|a| self.mangle_expr(a, shadow))
838                    .collect(),
839            },
840            Expr::Ascription { value, ty } => Expr::Ascription {
841                value: Box::new(self.mangle_expr(*value, shadow)),
842                ty: self.mangle_type_expr(ty),
843            },
844            Expr::Lambda(lambda) => {
845                let mut lam_shadow = shadow.clone();
846                for p in &lambda.params {
847                    lam_shadow.insert(p.name.clone());
848                }
849                Expr::Lambda(Box::new(Lambda {
850                    params: lambda
851                        .params
852                        .into_iter()
853                        .map(|p| Param {
854                            name: p.name,
855                            ty: self.mangle_type_expr(p.ty),
856                        })
857                        .collect(),
858                    return_type: self.mangle_type_expr(lambda.return_type),
859                    effects: lambda.effects,
860                    effect_row_var: lambda.effect_row_var,
861                    body: self.mangle_block(lambda.body, &lam_shadow),
862                }))
863            }
864        }
865    }
866
867    fn mangle_pattern(&self, p: Pattern) -> Pattern {
868        match p {
869            Pattern::Constructor { name, args } => Pattern::Constructor {
870                name,
871                args: args.into_iter().map(|a| self.mangle_pattern(a)).collect(),
872            },
873            Pattern::Record { fields, rest } => Pattern::Record {
874                fields: fields
875                    .into_iter()
876                    .map(|f| RecordPatField {
877                        name: f.name,
878                        pattern: f.pattern.map(|p| self.mangle_pattern(p)),
879                    })
880                    .collect(),
881                rest,
882            },
883            Pattern::Tuple(items) => {
884                Pattern::Tuple(items.into_iter().map(|p| self.mangle_pattern(p)).collect())
885            }
886            Pattern::Lit(_) | Pattern::Var(_) | Pattern::Wild => p,
887        }
888    }
889}
890
891fn collect_pattern_binders(p: &Pattern, out: &mut HashSet<String>) {
892    match p {
893        Pattern::Var(name) => {
894            out.insert(name.clone());
895        }
896        Pattern::Constructor { args, .. } => {
897            for a in args {
898                collect_pattern_binders(a, out);
899            }
900        }
901        Pattern::Record { fields, .. } => {
902            for f in fields {
903                match &f.pattern {
904                    Some(p) => collect_pattern_binders(p, out),
905                    // `{ name }` shorthand binds `name`.
906                    None => {
907                        out.insert(f.name.clone());
908                    }
909                }
910            }
911        }
912        Pattern::Tuple(items) => {
913            for p in items {
914                collect_pattern_binders(p, out);
915            }
916        }
917        Pattern::Lit(_) | Pattern::Wild => {}
918    }
919}