b586999e81
First iteration of the kernel-extension-mechanics milestone. Ships
the type-scoped `<TypeName>.<member>` resolution path as the
canonical form for type-associated operations, narrows the
`BareCrossModuleTypeRef` / `BadCrossModuleTypeRef` diagnostics from
"bare = strictly local" to "bare = in-scope by any path", migrates
12 std-library example fixtures, and introduces a workspace-wide
normalisation pre-pass `prepare_workspace_for_check` shared between
`check_workspace` and `monomorphise_workspace`.
Architectural discovery during implementation: the plan covered the
`Term::Var` dot-qualified resolver layer plus the workspace
validator's bare-name acceptance, but the migration of bare-form
fixtures exposed five sites where bare vs. qualified type-names
needed symmetric treatment — `Term::Ctor` resolution, `Type::Con`
well-formedness, mono's poly-free-fn name/constraint-count
enumeration, codegen's `lookup_ctor_by_type` bare-name path, and
the upstream desugar-then-qualify composition. Rather than
scattering TypeDef-first ladders across each site, the implementer
centralised the work into one pre-pass that walks every consumer
module's `Type::Con.name` and `Term::Ctor.type_name`, rewriting
bare cross-module references to their qualified `<home>.<Type>`
form. This is symmetric to the pre-existing `qualify_local_types`
(owner-side); the new pre-pass is the consumer-side mirror.
Downstream passes see qualified Types regardless of authoring form.
The TypeDef-first ladder still lives in `synth`'s `Term::Var` arm
because `<TypeName>.<member>` is term-position-only — `Maybe.from_maybe`
is a Var, not a Type expression, and the pre-pass does not rewrite
Var names.
Alternatives considered:
(a) Add TypeDef-first ladder at every resolution site separately
(the plan's implicit assumption). Rejected: O(N) extension
sites, each carrying the same workspace-walking logic; the
pre-pass version is O(1) — one pass, every downstream consumer
benefits.
(b) BLOCKED + spec re-brainstorm. Rejected: the architecture
extension is consistent with prep.1's thesis (bare type-name
resolves to the workspace-wide TypeDef) and forward-compatible
with prep.2 (Term::New.type_name falls under the same rewrite)
and prep.3 (kernel-tier TypeDefs enter the workspace map
automatically). No design regression to bounce back over.
Spec updated to document the realisation mechanism honestly: the
"Realisation mechanism — workspace pre-pass" subsection clarifies
that the resolver-level semantics described in "Implementation
shape" are the user-facing contract, and the actual code path is
the pre-pass.
Verification:
- `cargo test --workspace`: ALL GREEN. 87 e2e + every crate's unit
+ integration tests pass with no regressions.
- Three NEW in-source tests pin Task 1's resolver paths:
`type_scoped_member_resolves`, `type_scoped_member_not_found`,
`type_scoped_receiver_not_a_type`.
- One NEW workspace test pins the narrowed validator:
`ct1_validator_accepts_bare_with_explicit_import`.
- One renamed-and-flipped existing test:
`ct1_validator_rejects_bare_xmod_with_import_candidate` →
`ct1_validator_accepts_bare_xmod_with_import_candidate` (the
bare-with-import path is now ACCEPTED).
- One NEW companion test for the workspace-wide ctor lookup:
`ct2_term_ctor_bare_cross_module_via_workspace_resolves`.
- Two pre-existing tests' assertions updated for the new error
wording: `ct1_check_cli::check_human_mode_emits_actionable_message_to_stderr`
and `crates/ailang-check/tests/workspace.rs::unknown_module_prefix_is_reported`.
- 12 migrated `.ail` fixtures verified via the existing e2e
suite (each fixture is the test runner's target for an existing
`build_and_run` assertion).
- Negative fixture `ct_2_bare_cross_module.ail` semantically
preserved: dropped its `(import std_maybe)` so bare `Maybe` is
out-of-scope under the narrowed rule and still fires
`BareCrossModuleTypeRef`.
Concerns:
- The pre-pass introduces a new architectural layer (consumer-side
qualification) that the spec did not originally anticipate. Spec
amendment in this commit documents the layer. Future iterations
reference `prepare_workspace_for_check` as established
infrastructure.
- `examples/test_ct1_bare_xmod_rejected.ail.json` switched its
offending name from bare `Ordering` (which under the prep.1
semantics may now resolve via implicit prelude) to a still-
unresolvable `Mystery_Type`. The CLI test's intent (assert that
a human-mode `ail check` exits non-zero on a still-RED case) is
preserved.
Milestone status: kernel-extension-mechanics (Gitea #6) advances
1/3 iters. Next: prep.2 (`Term::New` construct) issue #32.
550 lines
21 KiB
Rust
550 lines
21 KiB
Rust
//! Workspace-load pin tests, relocated from `ailang-core/src/workspace.rs`
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//! `#[cfg(test)] mod tests` to a `tests/*` integration crate in iter
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//! form-a.1 Task 5. The relocation switches each test from
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//! `ailang_core::load_workspace` (the JSON-only loader) to
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//! `ailang_surface::load_workspace` (the extension-dispatching superset),
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//! so the post-iter `.ail` corpus is loaded from Form A rather than the
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//! deleted `.ail.json` siblings.
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//!
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//! pd.2 extension: the second batch (10 tests at the end of this file)
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//! is relocated from `ailang-core/src/workspace.rs::tests` because pd.2
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//! deletes the `load_workspace_with` shim those tests depended on.
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//! Their post-pd.2 successor is `ailang_surface::load_workspace`, which
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//! is unreachable from `ailang-core` lib-tests due to the dev-dep cycle
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//! (`ailang-core` dev-deps `ailang-surface` which depends on
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//! `ailang-core` — fine for integration tests, breaks lib-tests). The
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//! integration-test crate is the right home: it consumes both crates
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//! against the same `ailang-core` artefact, so the cycle never
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//! materialises.
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use ailang_core::workspace::{Registry, RegistryEntry, WorkspaceLoadError};
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use ailang_surface::load_workspace;
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use std::path::{Path, PathBuf};
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// Adapter so this integration crate can call `load_modules_with` with
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// the same Io/Schema mapping the in-mod test helper used.
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fn load_one_adapter(path: &Path) -> Result<ailang_core::ast::Module, WorkspaceLoadError> {
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match ailang_core::load_module(path) {
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Ok(m) => Ok(m),
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Err(ailang_core::Error::Io(e)) => Err(WorkspaceLoadError::Io {
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path: path.to_path_buf(),
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source: e,
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}),
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Err(e) => Err(WorkspaceLoadError::Schema {
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path: path.to_path_buf(),
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source: e,
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}),
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}
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}
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fn examples_dir() -> PathBuf {
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let manifest_dir = env!("CARGO_MANIFEST_DIR");
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Path::new(manifest_dir).parent().unwrap().parent().unwrap().join("examples")
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}
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#[test]
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fn loads_example_workspace_happy_path() {
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let entry = examples_dir().join("ws_main.ail");
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let ws = load_workspace(&entry).expect("load workspace");
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assert_eq!(ws.entry, "ws_main");
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assert!(ws.modules.contains_key("ws_main"));
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assert!(ws.modules.contains_key("ws_lib"));
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// the loader auto-injects the `prelude` module,
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// so the count is the user's two modules plus prelude.
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assert_eq!(ws.modules.len(), 3);
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}
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#[test]
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fn loads_workspace_auto_injects_prelude() {
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// the prelude module is implicitly part of every
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// workspace, regardless of whether the user's modules import
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// it. Loading any well-formed workspace must result in
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// `ws.modules["prelude"]` being present with the Ordering
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// type def.
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let entry = examples_dir().join("ws_main.ail");
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let ws = load_workspace(&entry).expect("load workspace");
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assert!(
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ws.modules.contains_key("prelude"),
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"prelude module must be auto-injected; modules present: {:?}",
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ws.modules.keys().collect::<Vec<_>>()
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);
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let prelude = &ws.modules["prelude"];
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assert_eq!(prelude.name, "prelude");
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assert!(
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prelude.defs.iter().any(|d| matches!(
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d,
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ailang_core::ast::Def::Type(t) if t.name == "Ordering"
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)),
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"prelude must contain Ordering type def"
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);
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// prelude also ships the `Eq` class plus three
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// primitive instances (Eq Int, Eq Bool, Eq Str).
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assert!(
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prelude.defs.iter().any(|d| matches!(
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d,
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ailang_core::ast::Def::Class(c) if c.name == "Eq"
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)),
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"prelude must contain Eq class def"
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);
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let eq_instance_types: Vec<&str> = prelude
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.defs
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.iter()
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.filter_map(|d| match d {
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ailang_core::ast::Def::Instance(i) if i.class == "Eq" => {
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if let ailang_core::ast::Type::Con { name, .. } = &i.type_ {
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Some(name.as_str())
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} else {
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None
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}
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}
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_ => None,
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})
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.collect();
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assert!(
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eq_instance_types.contains(&"Int"),
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"prelude must contain `instance Eq Int`; saw Eq instances on: {eq_instance_types:?}"
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);
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assert!(
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eq_instance_types.contains(&"Bool"),
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"prelude must contain `instance Eq Bool`; saw Eq instances on: {eq_instance_types:?}"
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);
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assert!(
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eq_instance_types.contains(&"Str"),
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"prelude must contain `instance Eq Str`; saw Eq instances on: {eq_instance_types:?}"
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);
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// prelude also ships the `Ord` class plus three
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// primitive instances (Ord Int, Ord Bool, Ord Str).
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assert!(
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prelude.defs.iter().any(|d| matches!(
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d,
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ailang_core::ast::Def::Class(c) if c.name == "Ord"
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)),
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"prelude must contain Ord class def"
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);
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let ord_instance_types: Vec<&str> = prelude
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.defs
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.iter()
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.filter_map(|d| match d {
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ailang_core::ast::Def::Instance(i) if i.class == "Ord" => {
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if let ailang_core::ast::Type::Con { name, .. } = &i.type_ {
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Some(name.as_str())
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} else {
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None
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}
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}
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_ => None,
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})
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.collect();
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assert!(
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ord_instance_types.contains(&"Int"),
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"prelude must contain `instance Ord Int`; saw: {ord_instance_types:?}"
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);
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assert!(
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ord_instance_types.contains(&"Bool"),
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"prelude must contain `instance Ord Bool`; saw: {ord_instance_types:?}"
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);
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assert!(
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ord_instance_types.contains(&"Str"),
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"prelude must contain `instance Ord Str`; saw: {ord_instance_types:?}"
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);
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}
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#[test]
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fn iter22b1_workspace_with_no_classes_has_empty_registry() {
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let entry = examples_dir().join("sum.ail");
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let ws = load_workspace(&entry).expect("sum.ail loads");
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assert!(
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ws.registry.entries.values().all(|e: &RegistryEntry| e.defining_module == "prelude"),
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"pre-22b fixture has no class/instance defs of its own; \
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all registry entries must come from the auto-injected prelude. \
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got non-prelude entries: {:?}",
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ws.registry.entries.values()
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.filter(|e| e.defining_module != "prelude")
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.map(|e| &e.defining_module)
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.collect::<Vec<_>>()
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);
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// Silence unused-import warning for `Registry`; the type is named
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// in the test only via the field-access path above.
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let _: Option<&Registry> = None;
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}
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#[test]
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fn iter22b1_instance_in_class_module_loads_clean() {
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let entry = examples_dir().join("test_22b1_orphan_class.ail");
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let ws = load_workspace(&entry).expect("coherent instance loads");
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let fixture_entries: Vec<_> = ws.registry.entries.iter()
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.filter(|(_, e)| e.defining_module != "prelude")
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.collect();
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assert_eq!(fixture_entries.len(), 1);
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let (key, entry) = fixture_entries[0];
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// registry key is keyed by the qualified class name.
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// 24.2: class renamed `Show` → `TShow` workspace-wide.
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assert_eq!(&key.0, "test_22b1_orphan_class.TShow");
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assert_eq!(entry.defining_module, "test_22b1_orphan_class");
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// `instance.class` carries the canonical-form on-disk value
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// (bare for same-module per the canonical-form rule).
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assert_eq!(entry.instance.class, "TShow");
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}
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/// an instance declared in a module that is neither
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/// the class's module nor the type's module fires `OrphanInstance`.
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#[test]
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fn iter22b1_orphan_instance_fires_diagnostic() {
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let entry = examples_dir().join("test_22b1_orphan_third.ail");
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let err = load_workspace(&entry).expect_err("must fire orphan");
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match err {
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WorkspaceLoadError::OrphanInstance {
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class,
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type_repr,
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defining_module,
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..
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} => {
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assert_eq!(class, "test_22b1_orphan_third_classmod.TShow");
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assert_eq!(type_repr, "Int");
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assert_eq!(defining_module, "test_22b1_orphan_third");
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}
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other => panic!("expected OrphanInstance, got {other:?}"),
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}
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}
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/// two instances of the same `(class, type)` pair
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/// collide on the registry's uniqueness check. Post-canonical-class-form both
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/// instances must live in the class's or the type's module (see
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/// fixture).
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#[test]
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fn iter22b1_duplicate_instance_fires_diagnostic() {
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let entry = examples_dir().join("test_22b1_dup_same_module.ail");
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let err = load_workspace(&entry).expect_err("must fire duplicate");
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match err {
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WorkspaceLoadError::DuplicateInstance {
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class,
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type_repr,
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first_module,
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second_module,
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} => {
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assert_eq!(class, "TShow");
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assert_eq!(type_repr, "Int");
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assert_eq!(first_module, "test_22b1_dup_same_module");
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assert_eq!(second_module, "test_22b1_dup_same_module");
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}
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other => panic!("expected DuplicateInstance, got {other:?}"),
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}
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}
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/// an instance that omits a required (non-default) method
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/// of its class fires `MissingMethod`.
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#[test]
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fn iter22b1_missing_method_fires_diagnostic() {
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let entry = examples_dir().join("test_22b1_missing_method.ail");
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let err = load_workspace(&entry).expect_err("must fire missing-method");
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match err {
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WorkspaceLoadError::MissingMethod {
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class,
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type_repr,
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method,
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} => {
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assert_eq!(class, "TEq");
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assert_eq!(type_repr, "Int");
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assert_eq!(method, "teq");
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}
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other => panic!("expected MissingMethod, got {other:?}"),
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}
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}
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/// an instance that specifies a body for a method name the
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/// class never declared must fire `OverridingNonExistentMethod`.
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/// (`test_22b2_overriding_nonexistent` is NOT a §C4 carve-out — it
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/// stays as a `.ail`-loadable fixture.)
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#[test]
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fn instance_overriding_nonexistent_method_fires() {
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let entry = examples_dir().join("test_22b2_overriding_nonexistent.ail");
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let err = load_workspace(&entry)
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.expect_err("must fire overriding-non-existent-method");
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match err {
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WorkspaceLoadError::OverridingNonExistentMethod {
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class, type_repr, method,
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} => {
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assert_eq!(class, "TEq");
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assert_eq!(type_repr, "Int");
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assert_eq!(method, "ne");
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}
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other => panic!("expected OverridingNonExistentMethod, got {other:?}"),
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}
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}
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/// an instance `C T` whose class `C` declares a superclass
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/// `S` requires that `instance S T` also exist in the workspace.
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#[test]
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fn instance_without_superclass_instance_fires() {
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let entry = examples_dir().join("test_22b2_missing_superclass_instance.ail");
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let err = load_workspace(&entry)
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.expect_err("must fire missing-superclass-instance");
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match err {
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WorkspaceLoadError::MissingSuperclassInstance {
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class, superclass, type_repr,
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} => {
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assert_eq!(class, "test_22b2_missing_superclass_instance.TOrd");
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assert_eq!(superclass, "TEq");
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assert_eq!(type_repr, "Int");
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}
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other => panic!("expected MissingSuperclassInstance, got {other:?}"),
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}
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}
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/// positive on-disk pair where `Constraint.class` references a
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/// class in an imported module via the qualified form loads cleanly.
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#[test]
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fn mq1_xmod_constraint_class_fixture_loads() {
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let entry = examples_dir().join("mq1_xmod_constraint_class.ail");
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let ws = load_workspace(&entry)
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.expect("workspace must load with qualified Constraint.class");
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assert!(ws.modules.contains_key("mq1_xmod_constraint_class"));
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assert!(ws.modules.contains_key("mq1_xmod_constraint_class_dep"));
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}
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// ---------------------------------------------------------------------
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// pd.2 relocations from `ailang-core/src/workspace.rs::tests` (the
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// post-shim-retirement batch). Each test below was a `load_workspace_with`
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// caller in the in-mod tests; post-pd.2 the shim is gone and these
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// tests now go through `ailang_surface::load_workspace` (which composes
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// `load_modules_with` + caller-side prelude inject + `build_workspace`).
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//
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// `tmp_dir` + `write_module` helpers are inlined per-test to keep each
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// test self-contained at integration-test scope.
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// ---------------------------------------------------------------------
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fn write_simple_module_json(dir: &Path, name: &str, imports: &[&str]) -> PathBuf {
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use std::fs;
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let imports_json: Vec<serde_json::Value> = imports
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.iter()
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.map(|m| serde_json::json!({ "module": m }))
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.collect();
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let module = serde_json::json!({
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"schema": "ailang/v0",
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"name": name,
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"imports": imports_json,
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"defs": [],
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});
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let path = dir.join(format!("{name}.ail.json"));
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fs::write(&path, serde_json::to_vec_pretty(&module).unwrap()).unwrap();
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path
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}
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/// the loader auto-injects a module named
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/// "prelude", so a user module that also claims that name would collide
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/// silently. The collision is caught explicitly with `ReservedModuleName`.
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#[test]
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fn user_module_named_prelude_is_rejected() {
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let dir = tempfile::tempdir().unwrap();
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let entry = write_simple_module_json(dir.path(), "prelude", &[]);
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let err = load_workspace(&entry).expect_err("must reject user prelude");
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match err {
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WorkspaceLoadError::ReservedModuleName { name } => {
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assert_eq!(name, "prelude");
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}
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other => panic!("expected ReservedModuleName, got: {other:?}"),
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}
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}
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/// pd.2 relocation: workspace import-cycle detection.
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#[test]
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fn detects_import_cycle() {
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let dir = tempfile::tempdir().unwrap();
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write_simple_module_json(dir.path(), "a", &["b"]);
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write_simple_module_json(dir.path(), "b", &["a"]);
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let entry = dir.path().join("a.ail.json");
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let err = load_workspace(&entry).expect_err("must error on cycle");
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match err {
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WorkspaceLoadError::Cycle { path } => {
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assert!(path.contains(&"a".to_string()));
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assert!(path.contains(&"b".to_string()));
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}
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other => panic!("expected Cycle, got {other:?}"),
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}
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}
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/// pd.2 relocation: a missing imported module yields a structured
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/// `ModuleNotFound` error naming the absent name + the path that was
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/// searched.
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#[test]
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fn module_not_found_yields_structured_error() {
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let dir = tempfile::tempdir().unwrap();
|
|
write_simple_module_json(dir.path(), "main", &["does_not_exist"]);
|
|
let entry = dir.path().join("main.ail.json");
|
|
|
|
let err = load_workspace(&entry).expect_err("must error on missing module");
|
|
match err {
|
|
WorkspaceLoadError::ModuleNotFound { name, expected_path } => {
|
|
assert_eq!(name, "does_not_exist");
|
|
assert!(expected_path.ends_with("does_not_exist.ail.json"));
|
|
}
|
|
other => panic!("expected ModuleNotFound, got {other:?}"),
|
|
}
|
|
}
|
|
|
|
/// pd.2 relocation: §C4 (a) carve-out fixture
|
|
/// `test_22b2_kind_mismatch.ail.json` — class param appearing in
|
|
/// applied position fires the canonical-form rejection
|
|
/// (`BareCrossModuleTypeRef`).
|
|
#[test]
|
|
fn class_param_in_applied_position_fires_canonical_form_rejection() {
|
|
let entry = examples_dir().join("test_22b2_kind_mismatch.ail.json");
|
|
let err = load_workspace(&entry)
|
|
.expect_err("must fire canonical-form rejection");
|
|
match err {
|
|
WorkspaceLoadError::BareCrossModuleTypeRef { module, name, .. } => {
|
|
assert_eq!(module, "test_22b2_kind_mismatch");
|
|
assert_eq!(name, "f");
|
|
}
|
|
other => panic!(
|
|
"expected BareCrossModuleTypeRef (validator now fires first), got {other:?}",
|
|
),
|
|
}
|
|
}
|
|
|
|
/// pd.2 relocation: §C4 (a) carve-out fixture
|
|
/// `test_22b2_invalid_superclass_param.ail.json` — `class Ord a extends
|
|
/// Eq b` shape fires `InvalidSuperclassParam`.
|
|
#[test]
|
|
fn superclass_with_wrong_param_fires_invalid_superclass_param() {
|
|
let entry = examples_dir().join("test_22b2_invalid_superclass_param.ail.json");
|
|
let err = load_workspace(&entry)
|
|
.expect_err("must fire invalid-superclass-param");
|
|
match err {
|
|
WorkspaceLoadError::InvalidSuperclassParam {
|
|
class, superclass, expected_param, got_type,
|
|
} => {
|
|
assert_eq!(class, "Ord");
|
|
assert_eq!(superclass, "Eq");
|
|
assert_eq!(expected_param, "a");
|
|
assert_eq!(got_type, "b");
|
|
}
|
|
other => panic!("expected InvalidSuperclassParam, got {other:?}"),
|
|
}
|
|
}
|
|
|
|
/// pd.2 relocation: §C4 (a) carve-out fixture
|
|
/// `test_22b2_unbound_constraint_var.ail.json` — class method
|
|
/// `Type::Forall.constraints` referencing an unbound type var fires
|
|
/// `UnboundConstraintTypeVar`.
|
|
#[test]
|
|
fn constraint_with_unbound_var_fires_unbound_constraint_type_var() {
|
|
let entry = examples_dir().join("test_22b2_unbound_constraint_var.ail.json");
|
|
let err = load_workspace(&entry)
|
|
.expect_err("must fire constraint-references-unbound-type-var");
|
|
match err {
|
|
WorkspaceLoadError::UnboundConstraintTypeVar {
|
|
class, method, var, ..
|
|
} => {
|
|
assert_eq!(class, "Foo");
|
|
assert_eq!(method, "foo");
|
|
assert_eq!(var, "z");
|
|
}
|
|
other => panic!("expected UnboundConstraintTypeVar, got {other:?}"),
|
|
}
|
|
}
|
|
|
|
/// pd.2 relocation, prep.1 fixture-flip: §C4 (a) carve-out fixture
|
|
/// `test_ct1_bare_xmod_rejected.ail.json`. Pre-prep.1 the fixture used
|
|
/// bare `Ordering` and the validator caught it via prelude-as-candidate.
|
|
/// Post-prep.1 a bare in-scope type-name (`Ordering` from implicit
|
|
/// prelude) is ACCEPTED, so the fixture was switched to a name no
|
|
/// module declares (`Mystery_Type`); the rejection path still fires
|
|
/// `BareCrossModuleTypeRef` but the candidates list is empty.
|
|
#[test]
|
|
fn ct1_fixture_bare_xmod_rejected() {
|
|
let entry = examples_dir().join("test_ct1_bare_xmod_rejected.ail.json");
|
|
let err = load_workspace(&entry).expect_err("must reject bare Mystery_Type");
|
|
match err {
|
|
WorkspaceLoadError::BareCrossModuleTypeRef { module, name, candidates } => {
|
|
assert_eq!(module, "test_ct1_bare_xmod_rejected");
|
|
assert_eq!(name, "Mystery_Type");
|
|
assert!(
|
|
candidates.is_empty(),
|
|
"no module declares Mystery_Type => candidates empty; got {candidates:?}"
|
|
);
|
|
}
|
|
other => panic!("expected BareCrossModuleTypeRef, got {other:?}"),
|
|
}
|
|
}
|
|
|
|
/// pd.2 relocation: §C4 (a) carve-out fixture
|
|
/// `test_ct1_bad_qualifier.ail.json` — qualified `Mystery.Type` with
|
|
/// `Mystery` not a known module fires `BadCrossModuleTypeRef`.
|
|
#[test]
|
|
fn ct1_fixture_bad_qualifier() {
|
|
let entry = examples_dir().join("test_ct1_bad_qualifier.ail.json");
|
|
let err = load_workspace(&entry).expect_err("must reject Mystery.Type");
|
|
match err {
|
|
WorkspaceLoadError::BadCrossModuleTypeRef { module, name } => {
|
|
assert_eq!(module, "test_ct1_bad_qualifier");
|
|
assert_eq!(name, "Mystery.Type");
|
|
}
|
|
other => panic!("expected BadCrossModuleTypeRef, got {other:?}"),
|
|
}
|
|
}
|
|
|
|
/// pd.2 relocation: §C4 (a) carve-out fixture
|
|
/// `test_ct1_qualified_class_rejected.ail.json` — declares
|
|
/// `instance prelude.Eq Int` outside the prelude AND outside Int's
|
|
/// defining module; post-canonical-class-form the qualified class-ref is schema-valid
|
|
/// and the downstream coherence check rejects with `OrphanInstance`.
|
|
#[test]
|
|
fn ct1_fixture_qualified_class_orphan_post_mq1() {
|
|
let entry = examples_dir().join("test_ct1_qualified_class_rejected.ail.json");
|
|
let err = load_workspace(&entry).expect_err("must reject (now as Orphan)");
|
|
match err {
|
|
WorkspaceLoadError::OrphanInstance {
|
|
class, type_repr, defining_module, ..
|
|
} => {
|
|
assert_eq!(class, "prelude.Eq");
|
|
assert_eq!(type_repr, "Int");
|
|
assert_eq!(defining_module, "test_ct1_qualified_class_rejected");
|
|
}
|
|
other => panic!("expected OrphanInstance, got {other:?}"),
|
|
}
|
|
}
|
|
|
|
/// pd.1 Task 2 + pd.3 Task 1 relocation: `build_workspace` accepts a
|
|
/// pre-assembled modules map (with the caller having already injected
|
|
/// any implicit modules) and runs the three-stage validation pipeline.
|
|
/// The `implicit_imports` slice is what the diagnostic helpers consult
|
|
/// for fallback candidate suggestions. Relocated from the in-mod
|
|
/// `tests` of `ailang-core/src/workspace.rs` because the caller-side
|
|
/// prelude inject now uses `ailang_surface::parse_prelude()`, which
|
|
/// only typechecks across the dev-dep edge from the integration-test
|
|
/// crate (the lib-test crate sees two distinct `ailang-core`
|
|
/// compilations and fails to unify the `Module` types).
|
|
#[test]
|
|
fn build_workspace_accepts_assembled_modules_and_runs_validation() {
|
|
let dir = tempfile::tempdir().unwrap();
|
|
write_simple_module_json(dir.path(), "main", &[]);
|
|
let entry = dir.path().join("main.ail.json");
|
|
|
|
let (entry_name, root_dir, mut modules) =
|
|
ailang_core::workspace::load_modules_with(&entry, load_one_adapter)
|
|
.expect("load");
|
|
|
|
// Caller-side prelude inject — surface owns the production inject
|
|
// path; this test consumes it via the dev-dep edge to demonstrate
|
|
// the caller-injects pattern with the same source of truth.
|
|
let prelude = ailang_surface::parse_prelude();
|
|
modules.insert("prelude".to_string(), prelude);
|
|
|
|
let ws = ailang_core::workspace::build_workspace(
|
|
entry_name,
|
|
root_dir,
|
|
modules,
|
|
&["prelude"],
|
|
)
|
|
.expect("build");
|
|
|
|
assert_eq!(ws.entry, "main");
|
|
assert!(ws.modules.contains_key("main"));
|
|
assert!(ws.modules.contains_key("prelude"));
|
|
}
|