96db54d15d
Iteration-discipline milestone, 1 of 3. Adds named loop + recur as strictly-additive first-class AST nodes: parse/print/prose/serde/ round-trip/schema lockstep, typecheck (binder typing + recur arity/type unification via loop_stack threaded as mut.2's mut_scope_stack; recur-tail-position via verify_loop_body), codegen (loop-header + one phi per binder; recur back-edge br with a NEW parallel block_terminated setter; lambda-boundary loop_frames save/restore). Four Recur* CheckError variants. Strictly additive: zero deletions touch tail-app/tail-do or the seven existing block_terminated sites — this is what makes the destructive it.3 safe. recur synth = fresh metavar (resolves the plan's flagged Type::unit() risk). loop_counter->55, loop_in_lambda->49, four negatives fire, tail-app byte-identical, cargo test --workspace green. Specfda9b78, plan7381a42.
142 lines
5.8 KiB
Rust
142 lines
5.8 KiB
Rust
//! Pin for the iter-24.3 codegen `import_map`-fallback path
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//! (DESIGN.md §"Cross-module references in synthesised bodies"
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//! invariant 2).
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//!
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//! Property protected: post-mono synthesised body cross-module
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//! references resolve at codegen via the fallback to
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//! `module_user_fns` / `module_def_ail_types` when the prefix is
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//! NOT in the current module's `import_map`. Specifically, the
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//! synthesised `prelude.print__<UserType>` body references
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//! `<user_module>.show__<UserType>` even though `prelude` does not
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//! import user modules.
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//!
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//! Failure mode this pin catches: a future codegen refactor
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//! tightens `resolve_top_level_fn` or `lower_app`'s cross-module
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//! arm or `synth_with_extras`'s Var arm back to `import_map`-only.
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//! Without this pin, the regression surfaces only at the
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//! `show_user_adt` E2E (which builds + runs a binary, slow to
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//! bisect).
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use ailang_check::{check_workspace, monomorphise_workspace};
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use ailang_core::ast::{Def, Term};
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use ailang_surface::load_workspace;
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use std::path::PathBuf;
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fn fixture_path() -> PathBuf {
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PathBuf::from(env!("CARGO_MANIFEST_DIR"))
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.join("../../examples")
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.join("show_user_adt.ail")
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}
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#[test]
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fn synthesised_print_uses_user_module_show_via_fallback() {
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// Step 1: workspace loads + typechecks clean.
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let ws = load_workspace(&fixture_path()).expect("workspace loads");
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let diags = check_workspace(&ws);
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assert!(
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diags.is_empty(),
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"typecheck diagnostics in show_user_adt fixture: {diags:?}"
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);
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// Step 2: mono synthesis produces `prelude.print__<IntBox>` whose
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// body references `show_user_adt.show__<IntBox>` (cross-module).
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let post_mono = monomorphise_workspace(&ws).expect("mono green");
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let prelude_mod = post_mono
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.modules
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.get("prelude")
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.expect("prelude post-mono module present");
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let print_def = prelude_mod
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.defs
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.iter()
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.find_map(|d| match d {
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Def::Fn(f) if f.name.starts_with("print__") => Some(f),
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_ => None,
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})
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.expect("synthesised print__<UserType> not found in prelude post-mono module");
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// Step 3: recursively walk `print_def.body` looking for a Var
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// whose name carries the `show_user_adt.` prefix (the cross-
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// module reference invariant 2 protects).
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fn contains_xmod_show_var(t: &Term) -> bool {
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match t {
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Term::Var { name } => {
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name.starts_with("show_user_adt.") && name.contains("show__")
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}
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Term::Let { value, body, .. } => {
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contains_xmod_show_var(value) || contains_xmod_show_var(body)
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}
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Term::LetRec { body, in_term, .. } => {
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contains_xmod_show_var(body) || contains_xmod_show_var(in_term)
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}
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Term::App { callee, args, .. } => {
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contains_xmod_show_var(callee) || args.iter().any(contains_xmod_show_var)
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}
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Term::Do { args, .. } => args.iter().any(contains_xmod_show_var),
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Term::Lam { body, .. } => contains_xmod_show_var(body),
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Term::If { cond, then, else_ } => {
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contains_xmod_show_var(cond)
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|| contains_xmod_show_var(then)
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|| contains_xmod_show_var(else_)
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}
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Term::Match { scrutinee, arms } => {
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contains_xmod_show_var(scrutinee)
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|| arms.iter().any(|a| contains_xmod_show_var(&a.body))
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}
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Term::Ctor { args, .. } => args.iter().any(contains_xmod_show_var),
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Term::Seq { lhs, rhs } => {
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contains_xmod_show_var(lhs) || contains_xmod_show_var(rhs)
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}
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Term::Clone { value } => contains_xmod_show_var(value),
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Term::ReuseAs { source, body } => {
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contains_xmod_show_var(source) || contains_xmod_show_var(body)
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}
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// Iter mut.1: a `Term::Mut` cannot itself host a
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// `show_user_adt.show__<T>` reference (its body is a
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// mut-block, not a synthesised polymorphic call), but
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// recurse defensively so any nested reference inside a
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// var init / body / assign-value still surfaces.
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Term::Mut { vars, body } => {
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vars.iter().any(|v| contains_xmod_show_var(&v.init))
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|| contains_xmod_show_var(body)
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}
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Term::Assign { value, .. } => contains_xmod_show_var(value),
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// Iter it.1: a `Term::Loop` cannot itself host a synth'd
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// cross-module reference, but recurse defensively.
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Term::Loop { binders, body } => {
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binders.iter().any(|b| contains_xmod_show_var(&b.init))
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|| contains_xmod_show_var(body)
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}
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Term::Recur { args } => args.iter().any(contains_xmod_show_var),
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Term::Lit { .. } => false,
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}
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}
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assert!(
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contains_xmod_show_var(&print_def.body),
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"synthesised print body should contain a `show_user_adt.<suffix>` Var \
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referencing the user-module's show__<IntBox> mono symbol — \
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this is the cross-module reference codegen resolves via the \
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import_map-fallback path. Body: {:?}",
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print_def.body
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);
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// Step 4: confirm prelude module's `imports` does NOT contain
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// `show_user_adt` — the resolution at codegen time genuinely
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// bypasses the source template's import_map.
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let prelude_src = ws
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.modules
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.get("prelude")
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.expect("prelude source module present");
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assert!(
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prelude_src
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.imports
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.iter()
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.all(|imp| imp.module != "show_user_adt"),
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"prelude must not import show_user_adt (the invariant is that \
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codegen resolves the cross-module ref WITHOUT going through \
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import_map). Got imports: {:?}",
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prelude_src.imports
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);
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}
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