All 176 files in the four accumulating directories now use a zero-padded 4-digit counter prefix that reflects creation order (`NNNN-slug.md`). The counter is assigned per directory in strict git-log creation order; ties broken alphabetically by original name. The old `YYYY-MM-DD-` prefix on docs/specs/ and docs/plans/ files is dropped — the date is recoverable from git log and the counter carries the ordering. A file's counter is stable for the life of the file: never reassigned, never reused, never compacted. Deleted files retire their counter; subsequent files do not fill the gap. This is the property that lets cross-references stay literal — refs use the full filename including the counter (`design/contracts/0007-honesty-rule.md`) so they grep cleanly and resolve directly without a glob step. 313 cross-references updated across .md/.rs/.toml/.c/.json files (test pins, include_str! paths, design-INDEX entries, baseline notes, runtime C comments, inter-contract markdown links incl. bare basename and `../models/foo.md` forms). CLAUDE.md gets a new "File-naming convention" section spelling out the rule and rationale. skills/brainstorm/SKILL.md and skills/planner/SKILL.md updated so new spec/plan creation produces counter-prefixed names from the start. The full test suite (cargo test --workspace) passes.
27 KiB
Iteration 23.1 — Ordering ADT + Prelude Skeleton + Auto-Load — Implementation Plan
Parent spec:
docs/specs/2026-05-10-23-eq-ord-prelude.mdFor agentic workers: REQUIRED SUB-SKILL: use
skills/implementto run this plan. Steps use- [ ]checkboxes for tracking.
Goal: Ship the Ordering ADT (data Ordering = LT | EQ | GT)
inside a new prelude module at examples/prelude.ail.json,
auto-loaded into every workspace via load_workspace, with the
prelude implicitly imported into every user module so its
ctors (LT, EQ, GT) are bare-resolvable. Verify end-to-end via
a fixture that pattern-matches on a hard-coded LT value and
prints 1.
Architecture:
- The prelude module file
examples/prelude.ail.jsonis embedded intocrates/ailang-coreat compile time viainclude_str!, so the loader needs no on-disk resolution; the same file remains the LLM-author-readable artefact. load_workspaceparses and inserts the embedded prelude intows.modulesafter the DFS over the user's imports finishes (and beforevalidate_classdefs/build_registry), so every workspace sees the prelude.check_in_workspaceadds the string"prelude"toenv.importsfor every non-prelude module before body-check runs, so the existing bare-ctor fallback (Iter 15a,lib.rs:2399) resolvesLT/EQ/GTthroughenv.module_types["prelude"].- An E2E fixture exercises Ordering through the full pipeline (typecheck → codegen → link → run); existing ADT codegen handles zero-field ctors with no new arms.
Tech Stack: Rust (ailang-core, ailang-check, ail), JSON
fixture authoring, no new C runtime work.
Files this plan creates or modifies:
- Create:
examples/prelude.ail.json— Form-A JSON, module nameprelude, contains only theOrderingtype def (three 0-arg ctorsLT,EQ,GT). - Modify:
crates/ailang-core/src/workspace.rs—load_workspaceembeds and injects the prelude module; new privateload_prelude()helper parses the embedded JSON; new testtest_load_workspace_auto_injects_preludeasserts presence after load. - Modify:
crates/ailang-check/src/lib.rs—check_in_workspaceadds"prelude"toenv.importsfor every non-prelude module during env construction. - Create:
examples/ordering_match.ail.json— fixture: user module with no explicit imports, pattern-matches on a hard-codedLTctor in(match LT { LT => 1, EQ => 2, GT => 3 }), prints the result viaio/print_int. - Modify:
crates/ail/tests/e2e.rs— new testtest_23_1_ordering_match_via_preludethat builds and runs the fixture, asserts stdout ="1\n".
Task 1: Author the prelude module file
Files:
-
Create:
examples/prelude.ail.json -
Step 1: Write the prelude JSON
Create examples/prelude.ail.json with the following exact
contents:
{
"schema": "ailang/v0",
"name": "prelude",
"imports": [],
"defs": [
{
"kind": "type",
"name": "Ordering",
"vars": [],
"doc": "Result of a three-way comparison: LT (less than), EQ (equal), GT (greater than). Ships in milestone 23 as the codomain of Ord.compare.",
"ctors": [
{ "name": "LT", "fields": [] },
{ "name": "EQ", "fields": [] },
{ "name": "GT", "fields": [] }
]
}
]
}
- Step 2: Verify the JSON parses as a Module
Run: cargo test --workspace -p ailang-core -- workspace::tests::loads_example_workspace_happy_path
Expected: PASS (this test loads examples/ws_main.ail.json; if it
breaks, the new prelude file is malformed in a way that affects
JSON shape detection).
Then a manual sanity check that the file is valid JSON:
Run: python3 -c "import json; json.load(open('examples/prelude.ail.json'))"
Expected: no output, exit 0.
- Step 3: Commit
git add examples/prelude.ail.json
git commit -m "iter 23.1.1: examples/prelude.ail.json — Ordering ADT skeleton"
Task 2: load_workspace auto-injects the prelude module
Files:
-
Modify:
crates/ailang-core/src/workspace.rs -
Step 1: Write the failing test
In the mod tests block of crates/ailang-core/src/workspace.rs
(near loads_example_workspace_happy_path), add:
#[test]
fn loads_workspace_auto_injects_prelude() {
// Iter 23.1: the prelude module is implicitly part of every
// workspace, regardless of whether the user's modules import
// it. Loading any well-formed workspace must result in
// `ws.modules["prelude"]` being present with the Ordering
// type def.
let workspace_root =
std::path::PathBuf::from(env!("CARGO_MANIFEST_DIR")).join("../..");
let entry = workspace_root.join("examples").join("ws_main.ail.json");
let ws = load_workspace(&entry).expect("load workspace");
assert!(
ws.modules.contains_key("prelude"),
"prelude module must be auto-injected; modules present: {:?}",
ws.modules.keys().collect::<Vec<_>>()
);
let prelude = &ws.modules["prelude"];
assert_eq!(prelude.name, "prelude");
assert!(
prelude.defs.iter().any(|d| matches!(
d,
crate::ast::Def::Type(t) if t.name == "Ordering"
)),
"prelude must contain Ordering type def"
);
}
- Step 2: Run test to verify it fails
Run: cargo test --workspace -p ailang-core -- workspace::tests::loads_workspace_auto_injects_prelude
Expected: FAIL with prelude module must be auto-injected; modules present: ["ws_main", "ws_lib"] (or similar — prelude key missing).
- Step 3: Add the prelude-loading helper
Inside crates/ailang-core/src/workspace.rs, immediately above
pub fn load_workspace (which starts around line 305), add:
/// Iter 23.1: the prelude module is embedded into the binary at
/// compile time so the loader needs no on-disk resolution. The
/// canonical source-of-truth file remains
/// `examples/prelude.ail.json` (the file the LLM-author edits).
const PRELUDE_JSON: &str = include_str!(
"../../../examples/prelude.ail.json"
);
/// Iter 23.1: parse the embedded prelude source into a `Module`.
/// Panics on parse failure — the prelude is build-time-validated;
/// a failure here means the embedded file is malformed and is a
/// build-correctness bug, not a runtime concern.
fn load_prelude() -> Module {
serde_json::from_str(PRELUDE_JSON)
.expect("examples/prelude.ail.json must parse as a Module")
}
- Step 4: Inject the prelude in load_workspace
In pub fn load_workspace (currently around line 305-353),
locate the lines AFTER the visit(entry_module, ...) call and
BEFORE validate_classdefs(&modules)?. Insert the injection so
the registry-build pass sees the prelude:
visit(
entry_module,
&root_dir,
&mut modules,
&mut visiting,
&mut visiting_set,
)?;
// Iter 23.1: inject the prelude module. It is implicitly
// part of every workspace, so the user's import graph
// does not name it. A user module that happens to be named
// "prelude" would collide here; reject explicitly so the
// failure is informative rather than silent.
if modules.contains_key("prelude") {
return Err(WorkspaceLoadError::ReservedModuleName {
name: "prelude".to_string(),
});
}
let prelude = load_prelude();
modules.insert("prelude".to_string(), prelude);
// Iter 22b.2: class-schema validation runs before registry
...
- Step 5: Add the new error variant
The WorkspaceLoadError enum uses thiserror::Error derive
(see line 104: #[derive(Debug, thiserror::Error)]), so the
Display message is on the variant itself via #[error(...)].
No separate impl Display block exists.
In crates/ailang-core/src/workspace.rs, inside the
pub enum WorkspaceLoadError { ... } block (currently lines
105 onwards), add this new variant at the end of the enum
(after the existing MethodOnNonClass or similar terminal
variant — locate the last }, before the closing } of the
enum and insert before it):
/// Iter 23.1: a user module attempted to use the reserved
/// module name `prelude`. The prelude is auto-injected by
/// the loader, so a user module of the same name would
/// collide silently. Reject explicitly.
#[error("module name {name:?} is reserved (auto-injected by the loader)")]
ReservedModuleName { name: String },
No impl Display edit is required — the #[error] attribute
generates it automatically via the thiserror derive.
- Step 6: Run test to verify it passes
Run: cargo test --workspace -p ailang-core -- workspace::tests::loads_workspace_auto_injects_prelude
Expected: PASS.
Also run the existing happy-path test to verify nothing regresses:
Run: cargo test --workspace -p ailang-core -- workspace::tests::loads_example_workspace_happy_path
Expected: PASS.
- Step 7: Run the full ailang-core test suite
Run: cargo test --workspace -p ailang-core
Expected: all green. Any regression here is a sign that an
existing test built a workspace by hand and didn't expect a
prelude entry — fix that test by either updating its
assertion (if the count of modules is asserted directly) or
filtering on module names.
- Step 8: Commit
git add crates/ailang-core/src/workspace.rs
git commit -m "iter 23.1.2: load_workspace auto-injects prelude module"
Task 3: check_in_workspace implicitly imports the prelude
Files:
-
Modify:
crates/ailang-check/src/lib.rs -
Step 1: Write the failing test
In the mod tests block of crates/ailang-check/src/lib.rs
(near the existing cross_module_* tests around line 3386-3700),
add this test. It uses the same struct shapes as the existing
cross_module_ws helper at line 3390 and the fn_def helper
at line 2628.
/// Iter 23.1: the prelude module is implicitly imported into
/// every user module. A user module that pattern-matches on
/// `LT` / `EQ` / `GT` without an explicit
/// `import { module: "prelude" }` must typecheck cleanly.
#[test]
fn user_module_can_pattern_match_on_prelude_ordering_bare() {
let prelude = Module {
schema: SCHEMA.into(),
name: "prelude".into(),
imports: vec![],
defs: vec![Def::Type(TypeDef {
name: "Ordering".into(),
vars: vec![],
ctors: vec![
Ctor { name: "LT".into(), fields: vec![] },
Ctor { name: "EQ".into(), fields: vec![] },
Ctor { name: "GT".into(), fields: vec![] },
],
doc: None,
drop_iterative: false,
})],
};
let consumer = Module {
schema: SCHEMA.into(),
name: "user".into(),
imports: vec![],
defs: vec![fn_def(
"from_lt",
Type::Fn {
params: vec![],
ret: Box::new(Type::int()),
effects: vec![],
param_modes: vec![],
ret_mode: ParamMode::Implicit,
},
vec![],
Term::Match {
scrutinee: Box::new(Term::Ctor {
type_name: "Ordering".into(),
ctor: "LT".into(),
args: vec![],
}),
arms: vec![
Arm {
pat: Pattern::Ctor {
ctor: "LT".into(),
fields: vec![],
},
body: Term::Lit { lit: Literal::Int { value: 1 } },
},
Arm {
pat: Pattern::Ctor {
ctor: "EQ".into(),
fields: vec![],
},
body: Term::Lit { lit: Literal::Int { value: 2 } },
},
Arm {
pat: Pattern::Ctor {
ctor: "GT".into(),
fields: vec![],
},
body: Term::Lit { lit: Literal::Int { value: 3 } },
},
],
},
)],
};
let mut modules = BTreeMap::new();
modules.insert("prelude".into(), prelude);
modules.insert("user".into(), consumer);
let ws = Workspace {
entry: "user".into(),
modules,
root_dir: std::path::PathBuf::from("."),
registry: ailang_core::workspace::Registry::default(),
};
let diags = check_workspace(&ws);
assert!(
diags.is_empty(),
"user module must typecheck bare-LT without explicit prelude import; got: {:?}",
diags
);
}
The use super::*; and use ailang_core::SCHEMA; lines at the
top of the mod tests block (lines 2625-2626) bring Module,
Def, TypeDef, Ctor, Type, ParamMode, Term, Arm,
Pattern, Literal, Workspace, BTreeMap, check_workspace,
and SCHEMA into scope. No new use declarations needed.
- Step 2: Run test to verify it fails
Run: cargo test --workspace -p ailang-check -- user_module_can_pattern_match_on_prelude_ordering_bare
Expected: FAIL — the test asserts diags.is_empty(), but the
bare LT in the user module fires UnknownCtorInPattern("LT")
(per lib.rs:2419) because env.imports for the user module
is empty and the bare-ctor fallback finds no candidate.
- Step 3: Inject implicit prelude import in check_in_workspace
Locate fn check_in_workspace (around line 1216 in
crates/ailang-check/src/lib.rs). It calls build_check_env
which populates env.module_imports from each module's
declared imports (around lines 1176-1183 inside build_check_env).
The cleanest place to add the implicit prelude import is inside
build_check_env, in the loop that builds env.module_imports,
right after the per-module import map is constructed and before
it is inserted. Modify the loop:
// env.module_imports — per-module alias-or-name -> module-name.
// Per-module because aliases collide across modules; sibling
// shape to `module_globals`.
for m in ws.modules.values() {
let mut import_map: BTreeMap<String, String> = BTreeMap::new();
for imp in &m.imports {
let key = imp.alias.clone().unwrap_or_else(|| imp.module.clone());
import_map.insert(key, imp.module.clone());
}
// Iter 23.1: the prelude module is implicitly imported
// into every non-prelude module. A user-declared explicit
// `import { module: "prelude" }` would already place
// "prelude" in the map above (idempotent insert). The
// prelude module itself does not import itself.
if m.name != "prelude" {
import_map.entry("prelude".to_string())
.or_insert_with(|| "prelude".to_string());
}
env.module_imports.insert(m.name.clone(), import_map);
}
NOTE: this overlay lives in build_check_env, which builds the
workspace-wide env. The per-module overlay in check_in_workspace
(lines 1224+) clears env.types/env.ctor_index and rebuilds
them with only the local module's entries, but env.module_imports
(used by the ctor-fallback at line 2405) is set workspace-wide and
not cleared per module, so the implicit prelude import is in scope
for every module's body-check.
Also need to plumb the local module's import map into env.imports
during body-check. Look for where the per-module body-check
reads env.module_imports[<module>] into env.imports. (If the
existing code already drives env.imports from
env.module_imports[current_module], then no further wiring is
needed; this step is a code-reading verification, not a code
change.)
Read crates/ailang-check/src/lib.rs around line 1260-1320 (the
end of check_in_workspace) and confirm that env.imports is
populated from env.module_imports[m.name] before each body-check
call. If yes, no further changes. If no, plumb it through (extend
the local overlay).
- Step 4: Run test to verify it passes
Run: cargo test --workspace -p ailang-check -- user_module_can_pattern_match_on_prelude_ordering_bare
Expected: PASS.
- Step 5: Run the full ailang-check test suite
Run: cargo test --workspace -p ailang-check
Expected: all green. Watch in particular for regressions in
the cross_module_pat_ctor_ambiguous_errors test
(line 3536) — if any of those workspaces happened to contain a
ctor named LT / EQ / GT, the implicit prelude import could
now create a new ambiguity. Read the test fixtures; if a clash
exists, rename the clashing ctor in the test fixture (not in
the prelude).
- Step 6: Commit
git add crates/ailang-check/src/lib.rs
git commit -m "iter 23.1.3: check_in_workspace implicitly imports prelude into every user module"
Task 4: E2E fixture + ail-crate test
Files:
-
Create:
examples/ordering_match.ail.json -
Modify:
crates/ail/tests/e2e.rs -
Step 1: Author the fixture
Create examples/ordering_match.ail.json with the following
exact contents:
{
"schema": "ailang/v0",
"name": "ordering_match",
"imports": [],
"defs": [
{
"kind": "fn",
"name": "main",
"type": {
"k": "fn",
"params": [],
"ret": { "k": "con", "name": "Unit" },
"effects": ["IO"]
},
"params": [],
"doc": "Iter 23.1 fixture: pattern-match on prelude Ordering ctor without explicit prelude import.",
"body": {
"t": "do",
"op": "io/print_int",
"args": [
{
"t": "match",
"scrutinee": {
"t": "ctor",
"type": "Ordering",
"ctor": "LT",
"args": []
},
"arms": [
{
"pat": { "p": "ctor", "ctor": "LT", "fields": [] },
"body": { "t": "lit", "lit": { "kind": "int", "value": 1 } }
},
{
"pat": { "p": "ctor", "ctor": "EQ", "fields": [] },
"body": { "t": "lit", "lit": { "kind": "int", "value": 2 } }
},
{
"pat": { "p": "ctor", "ctor": "GT", "fields": [] },
"body": { "t": "lit", "lit": { "kind": "int", "value": 3 } }
}
]
}
]
}
}
]
}
- Step 2: Write the failing E2E test
In crates/ail/tests/e2e.rs, add a new test function. Locate
an existing E2E test (e.g. check_workspace_resolves_import at
line 863) to match the helper-usage style, and add this test
function nearby:
#[test]
fn ordering_match_via_prelude_prints_1() {
// Iter 23.1: examples/ordering_match.ail.json pattern-matches
// on the prelude Ordering ctor `LT` without an explicit
// prelude import. End-to-end: typecheck → codegen → link →
// run → stdout "1\n".
let stdout = run_example("examples/ordering_match.ail.json")
.expect("ordering_match should build and run");
assert_eq!(stdout, "1\n");
}
NOTE: the run_example helper name above must match the one
already in use in e2e.rs (read the file's top to confirm —
some test files name it differently, e.g. build_and_run,
exec_fixture, or run_fixture). Use whatever name the
existing E2E tests in this file already use to compile and run
a .ail.json fixture and capture stdout.
- Step 3: Run test to verify it fails (and isolate why)
Run: cargo test --workspace -p ail -- ordering_match_via_prelude_prints_1
Expected: FAIL. The failure should be either:
(a) the test infrastructure is fine but the binary outputs
something wrong (real failure mode worth investigating);
(b) the test infrastructure compiles successfully and stdout
is "1\n" — meaning Tasks 1-3 already chain through
correctly and the test is GREEN on first run. That is the
expected end state.
If (b) — test passes on first run — go directly to Step 5.
If (a) — investigate. Most likely causes:
-
The fixture failed to typecheck → indicates Task 3 didn't fully wire
env.importsto include "prelude" at body-check time. Re-read Task 3 Step 3's NOTE about plumbingenv.module_imports[current_module]intoenv.imports. -
The fixture typechecks but codegen fails on the cross-module ctor reference → indicates codegen needs the cross-module resolution too. Symptom: the IR emit step reports
UnknownCtor("LT")or similar. -
Step 4: Apply minimal fix (only if Step 3 fell into case (a))
If codegen reports UnknownCtor("LT"), the codegen lookup path
for ctors does not honour the implicit prelude import. Locate
the codegen ctor-resolution (likely in
crates/ailang-codegen/src/lib.rs, grep for UnknownCtor or
ctor_index to find the relevant arm). The fix mirrors Task 3:
add "prelude" to whatever import-set codegen consults for the
current module's ctor resolution.
If the failure is something else, treat as a NEEDS_CONTEXT escalation back to the orchestrator.
- Step 5: Run test to verify it passes
Run: cargo test --workspace -p ail -- ordering_match_via_prelude_prints_1
Expected: PASS, stdout captured as "1\n".
- Step 6: Run the full ail-crate test suite
Run: cargo test --workspace -p ail
Expected: all green.
- Step 7: Run the full workspace test suite
Run: cargo test --workspace
Expected: all green.
- Step 8: Commit
git add examples/ordering_match.ail.json crates/ail/tests/e2e.rs
git commit -m "iter 23.1.4: E2E fixture — bare LT match via implicit prelude import"
Task 5: JOURNAL entry for iter 23.1
Files:
-
Modify:
docs/JOURNAL.md -
Step 1: Get commit hashes
Run: git log --oneline -10
Expected: top 4 commits are iter 23.1.1, 23.1.2, 23.1.3, 23.1.4
(in that order, most recent first).
- Step 2: Append JOURNAL entry
Append the following block at the end of docs/JOURNAL.md,
replacing <hash N> with the short SHA from Step 1:
## 2026-05-10 — Iteration 23.1: Ordering ADT + prelude skeleton + auto-load
First iteration of the milestone-23 Eq/Ord Prelude. Lays the
groundwork — no classes or instances ship yet — by establishing
the prelude module as a real loaded module that every workspace
implicitly contains, with bare-name resolution for its ctors via
the existing import-fallback machinery (Iter 15a,
`ailang-check/src/lib.rs:2399`).
Three mechanisms compose:
1. **Embedded prelude.** `examples/prelude.ail.json` is the
LLM-author-readable source; the loader embeds it via
`include_str!` at compile time. No runtime file IO, no CWD
dependency, no fixture-not-found failure mode.
2. **Loader injection.** `load_workspace` inserts the prelude
into `ws.modules` after the user's import DFS finishes and
before `validate_classdefs` / `build_registry`, so the
workspace-wide registry passes see it like any other module.
A user module trying to claim the reserved name `prelude`
fails fast with `WorkspaceLoadError::ReservedModuleName`.
3. **Implicit import.** `build_check_env` adds `prelude → prelude`
to every non-prelude module's `module_imports` map. The
existing bare-ctor fallback in `Pattern::Ctor` resolution
(Iter 15a) finds prelude ctors through this path, so the user
writes `LT` instead of `prelude.LT`.
Verified end-to-end through `examples/ordering_match.ail.json`
(pattern-matches a hard-coded `LT` value, prints `1`). The
ail-crate E2E test plus the per-crate unit tests catch any
regression on the three mechanisms independently.
Out of scope for this iter (covered by later 23.x):
- Eq / Ord class definitions (23.2 / 23.3).
- Free top-level utility functions (23.4).
- Float-NoInstance diagnostic + DESIGN.md amendment (23.5).
Per-task commits:
- `<hash 1>` iter 23.1.1: examples/prelude.ail.json — Ordering ADT skeleton
- `<hash 2>` iter 23.1.2: load_workspace auto-injects prelude module
- `<hash 3>` iter 23.1.3: check_in_workspace implicitly imports prelude into every user module
- `<hash 4>` iter 23.1.4: E2E fixture — bare LT match via implicit prelude import
- Step 3: Commit
git add docs/JOURNAL.md
git commit -m "iter 23.1.5: JOURNAL entry"
Self-review checklist
- Spec coverage: Component row 23.1 in the parent spec names
four concrete artefacts — Ordering ADT, prelude module skeleton,
check_workspaceauto-load wire, codegen+match-lowering exercised by unit test. Task 1 ships the ADT and skeleton. Task 2 ships the auto-load. Task 3 ships the implicit import (the part that makes auto-load useful). Task 4 exercises the end-to-end pipeline through the unit + E2E fixture. Task 5 records the JOURNAL entry. ✓ - Placeholder scan:
<hash 1>/<hash 2>/<hash 3>/<hash 4>are commit-hash placeholders, resolved by the implementer at Task 5 Step 1 by reading actualgit logoutput. No "TBD", no "TODO", no "implement later", no "similar to Task N". Task 4 Step 4 says "apply minimal fix only if Step 3 fell into case (a)" — that is a conditional path with explicit triggering criteria, not a placeholder. ✓ - Type / path consistency:
examples/prelude.ail.json(Task 1) is the same path in Task 2 Step 3'sinclude_str!path component.ws.modules["prelude"]is consistent in Task 2 Step 4 (insert) and Task 3 Step 1 (assert). Module name"prelude"appears consistently in Tasks 2, 3, and 4 (skip-self condition in Task 3 Step 3, fixture import-list in Task 4 — fixture has emptyimportsbecause the implicit import is the point). ✓ - Step granularity: every step is one file edit or one command, 2-5 minutes. Task 3 Step 3 is the longest (read + modify env-construction); split into NOTE-driven sub-actions if the implementer flags it as not bite-sized. ✓
Notes for the implementer
- The
run_examplehelper name in Task 4 Step 2 — the test filecrates/ail/tests/e2e.rsuses a specific helper to compile and run a fixture. Read the file's existing tests to find the right name (most likelycompile_and_runorrun_example). Match the existing style; do NOT introduce a new helper. - Cross-module ctor resolution at codegen time (Task 4 Step
4) — if it surfaces, it is the same "lockstep across files"
pattern the architect-iron-law extension just guarded against
(
is_static_callee↔lower_app,pre_desugar_validation↔ desugar). For ctors: the codegen ctor-resolution path likely has its own import-list consultation, mirroringcheck_in_workspace's. If the fix in Task 3 fully resolves Task 4 without codegen changes (case (b) in Step 3), no further lockstep-update is needed — but report this in the status payload so the orchestrator can record it. - Existing
loads_example_workspace_happy_pathtest — this test currently asserts a count of modules. After Task 2 it will see one extra module (the prelude). Either: (i) the test does NOT assert a count → unaffected; (ii) the test DOES assert a count → it will break, and Task 2 Step 7 is the place to fix it (update the count or filter the prelude key out). Read the test first, before assuming.