Files
AILang/crates/ail/tests/ct1_check_cli.rs
T
Brummel 1ff7e811af fix: mut-local diagnostics doubled the [code] prefix in human stderr (fieldtest F2)
The four mut-local CheckError variants (MutAssignOutOfScope,
AssignTypeMismatch, UnsupportedMutVarType, MutVarCapturedByLambda)
embedded the bracketed kebab code in their thiserror Display body,
while the non-JSON CLI formatter independently prepends [code] from
CheckError::code() — doubling it. Non-mut variants never embedded
the bracket; this brings the four in line with that convention.

RED-first via the debug skill: ct1_check_cli.rs pins the observable
property (code appears exactly once in the rendered human
diagnostic). GREEN was a trivial four-string mechanical edit.

Tests 598 -> 599.
2026-05-15 10:13:50 +02:00

297 lines
13 KiB
Rust

//! ct.1: E2E coverage for the CLI surface of the canonical-type-names
//! validator. The unit tests in `workspace.rs` already prove the
//! validator fires; these tests prove the diagnostic survives the
//! `WorkspaceLoadError -> Diagnostic` translation in
//! `crates/ail/src/main.rs::workspace_error_to_diagnostic` AND is
//! observable on the CLI in both `--json` and human modes (exit code
//! + diagnostic code in the output stream).
//!
//! Companion to the happy-path test below: post-migration
//! `examples/ordering_match.ail.json` must `ail check` cleanly. If
//! someone reverts the migration (or breaks the canonical-form
//! acceptance path in the registry), that test goes red.
use std::path::PathBuf;
use std::process::Command;
fn ail_bin() -> PathBuf {
// CARGO_BIN_EXE_<name> is set by cargo when building integration tests.
PathBuf::from(env!("CARGO_BIN_EXE_ail"))
}
fn examples_dir() -> PathBuf {
// CARGO_MANIFEST_DIR points at `crates/ail`; examples/ sits at the
// workspace root, two levels up.
PathBuf::from(env!("CARGO_MANIFEST_DIR"))
.join("..")
.join("..")
.join("examples")
}
/// Property: a workspace whose entry module contains a bare
/// cross-module Type::Con / Term::Ctor reference — here `Ordering`,
/// satisfiable only via the auto-injected `prelude` — is rejected by
/// `ail check --json` with diagnostic code `bare-cross-module-type-ref`
/// and non-zero exit. Guards against `workspace_error_to_diagnostic`
/// losing the `BareCrossModuleTypeRef` arm or the validator no longer
/// firing through the CLI loader path.
#[test]
fn check_json_emits_bare_cross_module_type_ref() {
let fixture = examples_dir().join("test_ct1_bare_xmod_rejected.ail.json");
let output = Command::new(ail_bin())
.args(["check", "--json", fixture.to_str().unwrap()])
.output()
.expect("ail binary must launch");
assert!(
!output.status.success(),
"ail check must fail on bare cross-module ref; stdout={} stderr={}",
String::from_utf8_lossy(&output.stdout),
String::from_utf8_lossy(&output.stderr),
);
let stdout = String::from_utf8(output.stdout).expect("stdout is utf-8");
let diags: serde_json::Value =
serde_json::from_str(&stdout).expect("--json mode emits a JSON array on stdout");
let arr = diags.as_array().expect("diagnostics is a JSON array");
assert!(
arr.iter().any(|d| d["code"] == "bare-cross-module-type-ref"),
"expected `bare-cross-module-type-ref` in diagnostics array; got {stdout}"
);
}
/// Property: a qualified `<owner>.<name>` Type::Con where `<owner>` is
/// not a known module is rejected by `ail check --json` with
/// diagnostic code `bad-cross-module-type-ref` and non-zero exit.
/// Guards against `workspace_error_to_diagnostic` losing the
/// `BadCrossModuleTypeRef` arm.
#[test]
fn check_json_emits_bad_cross_module_type_ref() {
let fixture = examples_dir().join("test_ct1_bad_qualifier.ail.json");
let output = Command::new(ail_bin())
.args(["check", "--json", fixture.to_str().unwrap()])
.output()
.expect("ail binary must launch");
assert!(
!output.status.success(),
"ail check must fail on unknown qualifier; stdout={} stderr={}",
String::from_utf8_lossy(&output.stdout),
String::from_utf8_lossy(&output.stderr),
);
let stdout = String::from_utf8(output.stdout).expect("stdout is utf-8");
let diags: serde_json::Value =
serde_json::from_str(&stdout).expect("--json mode emits a JSON array on stdout");
let arr = diags.as_array().expect("diagnostics is a JSON array");
assert!(
arr.iter().any(|d| d["code"] == "bad-cross-module-type-ref"),
"expected `bad-cross-module-type-ref` in diagnostics array; got {stdout}"
);
}
/// Property: mq.1 — a qualified class name in an `InstanceDef.class`
/// field is the canonical form, not a rejection. The
/// `test_ct1_qualified_class_rejected` fixture (declares
/// `instance prelude.Eq Int` outside prelude and outside Int's
/// defining module) is now rejected by the downstream coherence
/// check with `orphan-instance` instead of the pre-mq.1
/// `qualified-class-name`. Guards against
/// `workspace_error_to_diagnostic` losing the OrphanInstance arm
/// AND against any regression that would reintroduce
/// `qualified-class-name` on a referencing field.
#[test]
fn check_json_emits_orphan_instance_on_xmod_class_without_coherence_post_mq1() {
let fixture = examples_dir().join("test_ct1_qualified_class_rejected.ail.json");
let output = Command::new(ail_bin())
.args(["check", "--json", fixture.to_str().unwrap()])
.output()
.expect("ail binary must launch");
assert!(
!output.status.success(),
"ail check must fail; stdout={} stderr={}",
String::from_utf8_lossy(&output.stdout),
String::from_utf8_lossy(&output.stderr),
);
let stdout = String::from_utf8(output.stdout).expect("stdout is utf-8");
let diags: serde_json::Value =
serde_json::from_str(&stdout).expect("--json mode emits a JSON array on stdout");
let arr = diags.as_array().expect("diagnostics is a JSON array");
assert!(
arr.iter().any(|d| d["code"] == "orphan-instance"),
"expected `orphan-instance` in diagnostics array; got {stdout}"
);
assert!(
!arr.iter().any(|d| d["code"] == "qualified-class-name"),
"must NOT fire `qualified-class-name` on a referencing field post-mq.1; got {stdout}"
);
}
/// Property: in non-JSON (human) mode `ail check` exits non-zero on a
/// ct.1 validator failure and writes an actionable error message to
/// stderr — naming both the offending type and the migration command
/// the author should run. Pinning the human-mode path separately
/// because in this mode the loader error short-circuits via `anyhow`
/// (no diagnostic-code prefix) and is formatted by the
/// `WorkspaceLoadError`'s `thiserror` Display impl rather than by
/// `workspace_error_to_diagnostic`. A regression that left `--json`
/// working but stripped the actionable hint from the human path
/// would otherwise ship unnoticed. The bare-cross-module fixture is
/// the representative case; the property — actionable hint in the
/// Display impl — is named per-variant.
#[test]
fn check_human_mode_emits_actionable_message_to_stderr() {
let fixture = examples_dir().join("test_ct1_bare_xmod_rejected.ail.json");
let output = Command::new(ail_bin())
.args(["check", fixture.to_str().unwrap()])
.output()
.expect("ail binary must launch");
assert!(
!output.status.success(),
"ail check (human mode) must fail on bare cross-module ref"
);
let stderr = String::from_utf8(output.stderr).expect("stderr is utf-8");
assert!(
stderr.contains("Ordering"),
"expected the offending type name in stderr; got {stderr}"
);
assert!(
stderr.contains("ail migrate-canonical-types"),
"expected the migration-command hint in stderr; got {stderr}"
);
}
/// Property: the post-migration `examples/ordering_match.ail.json`
/// (Term::Ctor `Ordering` -> `prelude.Ordering`) typechecks cleanly
/// through the CLI — `ail check` exits 0 with no diagnostics.
/// Guards against (a) a revert of the ct.1.5 migration, (b) a
/// regression in `Registry::normalize_type_for_lookup` that would make
/// the canonical (qualified) form fail to dispatch where the bare
/// form used to succeed.
#[test]
fn check_ordering_match_post_migration_is_clean() {
let fixture = examples_dir().join("ordering_match.ail");
let output = Command::new(ail_bin())
.args(["check", "--json", fixture.to_str().unwrap()])
.output()
.expect("ail binary must launch");
assert!(
output.status.success(),
"ail check must succeed on migrated ordering_match; stdout={} stderr={}",
String::from_utf8_lossy(&output.stdout),
String::from_utf8_lossy(&output.stderr),
);
let stdout = String::from_utf8(output.stdout).expect("stdout is utf-8");
let diags: serde_json::Value =
serde_json::from_str(&stdout).expect("--json mode emits a JSON array on stdout");
let arr = diags.as_array().expect("diagnostics is a JSON array");
assert!(
arr.is_empty(),
"expected zero diagnostics on migrated fixture; got {stdout}"
);
}
/// Property (RED — fieldtest mut-local F2): in non-JSON (human) mode,
/// the human-stderr formatter prepends the diagnostic code exactly once
/// as the canonical `[code]` bracket prefix (the cli-diag-human format).
/// The four mut-local `CheckError` variants
/// (`mut-assign-out-of-scope`, `assign-type-mismatch`,
/// `mut-var-unsupported-type`, `mut-var-captured-by-lambda`) must NOT
/// also embed `[code] ` inside their `thiserror` Display body, which
/// would render the bracketed code TWICE in the user-visible stderr
/// line (`error: [code] fn: [code] message`).
///
/// This pins the *observable* doubling on the real CLI human path
/// (`crates/ail/src/main.rs` non-JSON `Cmd::Check` arm), not the raw
/// Display string of one variant in isolation: it counts occurrences
/// of the literal `[<code>]` token in the rendered stderr and requires
/// exactly one. Drops to GREEN once the four Display bodies shed their
/// leading `[<code>] ` prefix (the formatter's prefix then supplies it
/// once). The non-mut variants are unaffected because they never
/// embedded the bracket.
#[test]
fn check_human_mode_renders_mut_diagnostic_code_exactly_once() {
// (fixture filename, kebab diagnostic code) for the four mut-local
// negative fixtures shipped by the mut-local milestone.
let cases = [
(
"test_mut_assign_out_of_scope.ail.json",
"mut-assign-out-of-scope",
),
(
"test_mut_assign_type_mismatch.ail.json",
"assign-type-mismatch",
),
(
"test_mut_var_unsupported_type.ail.json",
"mut-var-unsupported-type",
),
(
"test_mut_var_captured_by_lambda.ail.json",
"mut-var-captured-by-lambda",
),
];
for (fixture_name, code) in cases {
let fixture = examples_dir().join(fixture_name);
let output = Command::new(ail_bin())
.args(["check", fixture.to_str().unwrap()])
.output()
.expect("ail binary must launch");
assert!(
!output.status.success(),
"ail check (human mode) must fail on {fixture_name}"
);
let stderr = String::from_utf8(output.stderr).expect("stderr is utf-8");
// The canonical cli-diag-human prefix is `[<code>]`. It must
// appear exactly once in the rendered human diagnostic — the
// formatter supplies it; the Display body must not also embed it.
let needle = format!("[{code}]");
let occurrences = stderr.matches(&needle).count();
assert_eq!(
occurrences, 1,
"expected `[{code}]` exactly once in human stderr, found {occurrences}; \
full stderr:\n{stderr}"
);
}
}
/// Property: `ail check --json` on a `.ail` (Form A) source file with
/// a syntax error returns a structured `surface-parse-error`
/// diagnostic (non-empty diagnostics array, exit code != 0), rather
/// than crashing with the misleading JSON-parse fall-through that
/// ext-cli.1 was built to eliminate. Guards against
/// `workspace_error_to_diagnostic` losing the `SurfaceParse` arm or
/// the surface dispatcher silently swallowing the parse error.
#[test]
fn ail_check_json_on_ail_with_syntax_error_returns_structured_diagnostic() {
let tmp = tempfile::tempdir().expect("tempdir");
let bad = tmp.path().join("bad.ail");
// Deliberately broken — missing closing paren in the module header.
std::fs::write(&bad, "(module bad\n").expect("write");
let output = Command::new(ail_bin())
.args(["check", "--json", bad.to_str().unwrap()])
.output()
.expect("run ail check --json");
// ail check --json on a bad .ail should NOT crash with the misleading
// JSON-parse fall-through; it should return exit code != 0 and emit a
// parseable JSON diagnostic on stdout.
assert!(
!output.status.success(),
"expected non-zero exit on bad source; stdout={} stderr={}",
String::from_utf8_lossy(&output.stdout),
String::from_utf8_lossy(&output.stderr),
);
let stdout = String::from_utf8(output.stdout).expect("stdout is UTF-8");
let parsed: serde_json::Value = serde_json::from_str(&stdout)
.unwrap_or_else(|e| panic!("stdout not valid JSON: {e}\ngot:\n{stdout}"));
let diags = parsed.as_array().expect("diagnostics array");
assert!(!diags.is_empty(), "at least one diagnostic emitted");
let first = &diags[0];
assert_eq!(first["code"].as_str(), Some("surface-parse-error"));
// The offending path goes into the ctx payload (matching the
// shape every other workspace-error diagnostic uses, e.g.
// `schema-mismatch` puts `expected`/`actual` there).
assert!(first["ctx"]["path"].is_string(), "ctx.path is the file path");
assert!(first["message"].is_string(), "message is the formatted ParseError");
}