`Term::Lam`'s two camelCase JSON tags become kebab-case, matching
the convention every other compound-key tag in the AST schema
already follows. After this iter the canonical JSON has zero
camelCase outliers.
## Schema swap (atomic, Task 2)
- `crates/ailang-core/src/ast.rs:492,494` — two
`#[serde(rename)]` strings: `"paramTypes" → "param-types"`,
`"retType" → "ret-type"`. Rust field names unchanged.
- `crates/ailang-core/src/workspace.rs:1925-1926` — in-source
JSON literal in the `ct1_validator_walks_lam_embedded_types`
test.
- `design/contracts/data-model.md:142-147` — fenced JSON block
in the canonical data-model contract. Honesty-Rule touch-point:
the contract document must describe the actual present-state
schema.
- `examples/test_loop_binder_captured_by_lambda.ail.json` and
`experiments/2026-05-12-cross-model-authoring/master/examples/fn_with_lambda.ail.json`
— the two `.ail.json` fixtures whose canonical-JSON embeds
the renamed tags.
The five files moved together within one task because `Term::Lam`
has no `#[serde(default)]` on `param_tys` / `ret_ty` — a
renamed-away key is a hard deserialise error. Splitting the swap
would have left the workspace untestable mid-step.
## RED → GREEN pin (Tasks 1, 2)
`crates/ailang-core/tests/design_schema_drift.rs` gains
`lam_serialises_with_kebab_keys`: pins that `serde_json::to_value(&Term::Lam{...})`
emits `"param-types"` / `"ret-type"` AND does not emit the old
camelCase keys. Companion: the existing
`design_md_anchors_every_term_variant` test now also asserts the
kebab anchors appear inside `data-model.md`'s `lam` fenced block.
Both confirmed RED on entry, GREEN after Task 2.
## Rustdoc honesty pass (Task 3)
Three pure-prose edits keep production rustdoc consistent with
the new schema vocabulary: `crates/ailang-core/src/ast.rs:8` (the
module-level rename enumeration), `crates/ailang-surface/src/parse.rs:81`
(prose mention of `lam`'s carry), `crates/ailang-check/src/lib.rs:1707`
(InstanceMethod routing helper rustdoc). No compile or test
consequence — Honesty-Rule maintenance.
## Plan-pseudo-vs-reality finding: under-audited hash blast radius
The brainstorm spec audited `crates/ailang-core/tests/hash_pin.rs`
exhaustively (5 pinned modules, zero `(lam ...)` occurrences,
"no hash refresh required"). It missed
`crates/ailang-surface/tests/prelude_module_hash_pin.rs` — a
separate hash-pin file in a different crate that pins `prelude.ail`,
which contains 11 `(lam ...)` forms. The prelude module hash
drifted (`6d0577ff0d4e50ac` → `562a03fc57e7e017`); the implementer
refreshed it with a Honesty-Rule provenance comment matching the
precedent set in commit `26fb345`. Form-A is unchanged — only the
canonical-JSON byte stream differs, which is exactly what the
rename targets. The spec-side learning is: schema-rename
brainstorms must walk *every* test crate for hash-pin files, not
just the home crate of the AST.
## Why this shape, and not the alternatives
- *`params-ty` / `ret-ty` (Rust-field-name vibe)* — rejected. The
AST JSON schema follows its own kebab/single-word convention,
not Rust field names. The other multi-word tag (`reuse-as`) is
kebab; abbreviating `params-ty` mixes singular+plural and has
no precedent.
- *Inline typed params as a sub-tag* (e.g. `params: [{name, type}, ...]`)
— rejected. Stronger semantic locality, but it changes schema
topology rather than tag spelling. Out of scope for a camelCase
correction; would have re-pinned far more than this milestone.
- *Bundle with #27 (arith-rename)* — rejected. #27 carries four
open brainstorm questions (mod vs rem, neg vs sub 0, Num class,
deprecation window) and is structurally a separate milestone.
Each gets one re-pin wave with its own rationale; no churn
saving from bundling.
## Honest call on the feature-acceptance gate
Clause 1 (LLM author naturally uses the new form) is the weakest
of the three. Direct empirical evidence is absent — the 2026-05-21
naming-A/B run measured a different axis. The argument is
indirect: a future LLM author generalises from the rest of the
schema ("compound keys are kebab"), and the two camelCase
outliers are precisely the sites where that generalisation
diverged from reality. Clause 2 (redundancy reduction) and
Clause 3 (no semantic surface touched) are direct.
## Forbidden touches verified untouched
`docs/plans/*.md` historic plans (which embed old tag names in
example JSON), `experiments/2026-05-12-cross-model-authoring/master/spec.md`,
`experiments/.../rendered/*.md`, and `experiments/.../runs/**` —
all left as frozen historical artefacts per Honesty-Rule
analogue (describe state at time of writing, not present state).
Verified via `git diff --name-only HEAD` (Task 4 Step 4).
## Verification
- `cargo test --workspace`: all test groups OK, 0 failed,
2 ignored (pre-existing).
- `cargo test -p ailang-surface --test round_trip`: GREEN
(Form-A unchanged invariant).
- New schema-shape pin and the extended data-model anchor walk:
GREEN after Task 2.
- Negative grep across `crates/`, `examples/`, `design/`,
`runtime/`: the only remaining `paramTypes` / `retType`
occurrences in checked-in code are the load-bearing
negative-assertion strings inside the new pin (intentional —
they are what makes the pin RED-able on regression).
- Stats: `bench/orchestrator-stats/2026-05-21-iter-schema-camelcase-fix.json`
— 4/4 tasks DONE, no re-loops, no review-loops.
closes #30
9.8 KiB
Data model
Data model
The on-disk JSON-AST is what the toolchain hashes, typechecks, and
lowers. This section is the canonical schema. The Rust types in
crates/ailang-core/src/ast.rs are the in-memory projection of it;
when the two disagree, this section wins, and the drift test
crates/ailang-core/tests/design_schema_drift.rs fires. Every
additive field is declared with skip_serializing_if so pre-existing
fixtures keep bit-identical canonical-JSON hashes — that gating
contract is what makes growing the schema cheap.
Module
{
"schema": "ailang/v0",
"name": "<id>",
"imports": [{ "module": "<id>", "as": "<id>" }],
"defs": [Def...]
}
Def
kind ∈ { "fn", "const", "type", "class", "instance" }. All five
are real surface forms. Class and type cross-module references
(canonical-form rule, qualified <module>.<Class> /
<module>.<TypeName>) follow the scoping rule in
memory model; the class/instance schema
narrative — defaults, superclasses, diagnostics — lives in
typeclasses. Exported fn defs interact with
embedding ABI.
// fn (the unit that gets a content hash)
{ "kind": "fn",
"name": "<id>",
"type": Type, // typically Type::Fn, optionally wrapped in Forall
"params": ["<id>"...], // names bound in body, in type.params order
"body": Term,
"doc": "<optional string>",
"export": "<optional C symbol>", // omitted when absent (hash-stable when omitted); embedding-ABI surface — see prose below
"suppress": [Suppress...] // omitted when empty
}
// const (top-level value; codegen emits as a global; body must be pure)
{ "kind": "const",
"name": "<id>",
"type": Type,
"value": Term,
"doc": "<optional string>"
}
// type (algebraic data type; parameterised)
{ "kind": "type",
"name": "<id>",
"vars": ["<id>"...], // type parameters; omitted when empty (hash-stable when omitted)
"ctors": [
{ "name": "<id>", "fields": [Type...] } // nullary ctor: fields = []
...
],
"doc": "<optional string>",
"drop-iterative": true // opt-in; omitted when false (hash-stable when omitted)
}
// class (typeclass declaration; narrative in contracts/typeclasses.md)
{ "kind": "class",
"name": "<id>", // class name (e.g. "Show")
"param": "<id>", // single class parameter, kind *
"superclass": null, // or { "class": "<id>", "type": "<param>" } — "class": canonical form (bare for same-module, "<module>.<Class>" for cross-module)
"methods": [
{ "name": "<id>",
"type": Type, // FnSig over the class param
"default": Term // optional fallback body; null = abstract-required
}
...
],
"doc": "<optional string>"
}
// instance (typeclass instance; narrative in contracts/typeclasses.md)
{ "kind": "instance",
"class": "<id>", // class being instantiated; canonical form (bare for same-module, "<module>.<Class>" for cross-module)
"type": Type, // concrete type expression (never the class param)
"methods": [
{ "name": "<id>", "body": Term }
...
],
"doc": "<optional string>"
}
Suppress (entry in FnDef.suppress):
{ "code": "<diagnostic-code>", // e.g. "over-strict-mode"
"because": "<author reason>" // must be non-empty;
// empty/whitespace fires `empty-suppress-reason` (Error)
}
Term (expression)
{ "t": "lit", "lit": Literal }
{ "t": "var", "name": "<id>" }
// fn application; tail flag triggers musttail under codegen.
// `tail` is omitted when false (hash-stable when omitted).
// `args` may be empty: a nullary call is the surface form
// `(app f)` (resolution of Gitea #12). Read-tolerant: a JSON
// document omitting the `args` key deserialises to `[]`.
{ "t": "app", "fn": Term, "args": [Term...], "tail": false }
{ "t": "let", "name": "<id>", "value": Term, "body": Term }
// Local recursive let. Always fn-shaped. The desugar pass
// lifts most `letrec` to a synthetic top-level fn; `lift_letrecs`
// finishes the job after typecheck for the residue that captures
// let-bound names. Post-codegen, no `letrec` survives.
{ "t": "letrec",
"name": "<id>", "type": Type, "params": ["<id>"...],
"body": Term, "in": Term }
{ "t": "if", "cond": Term, "then": Term, "else": Term }
// Effect-op invocation. `op` is "<eff>/<op>" (e.g. "io/print_str").
// `tail` triggers musttail (omitted when false).
{ "t": "do", "op": "<eff>/<op>", "args": [Term...], "tail": false }
// Ctor application. `args` is always emitted on write (including
// as `"args": []` for niladic ctors); reads tolerate the key being
// absent and treat it as `[]`. This mirrors the read/write
// asymmetry on `Term::App.args` (see above).
{ "t": "ctor", "type": "<id>", "ctor": "<id>", "args": [Term...] }
{ "t": "match", "scrutinee": Term, "arms": [Arm...] }
// Anonymous fn value; free vars captured from enclosing scope.
{ "t": "lam",
"params": ["<id>"...],
"param-types": [Type...],
"ret-type": Type,
"effects": ["<id>"...],
"body": Term }
// Sequencing. Semantically `let _ = lhs in rhs`; lhs must be Unit.
{ "t": "seq", "lhs": Term, "rhs": Term }
// Explicit RC clone. Codegen lowers as
// `call void @ailang_rc_inc(ptr %v)` before returning %v under `--alloc=rc`.
{ "t": "clone", "value": Term }
// Explicit reuse-as hint. `body` must be allocating
// (typically `ctor` or `lam`); `source` must be a bare `var`. Codegen
// lowers as in-place rewrite under `--alloc=rc`.
{ "t": "reuse-as", "source": Term, "body": Term }
// loop: strict iteration block. `binders` declares
// one or more loop parameters (name, type, init), evaluated in
// order on loop entry; `body` is in scope of all binders. The
// loop's value is `body`'s value on the iteration that exits via a
// non-`recur` branch. Strictly additive (no `skip_serializing_if`;
// pre-existing fixtures hash bit-identically — none carry the tag).
// No totality claim — an infinite loop is legal. See
// `docs/specs/2026-05-17-loop-recur.md`.
{ "t": "loop",
"binders": [ { "name": "<id>", "type": Type, "init": Term }, ... ],
"body": Term }
// recur: re-enter the lexically innermost enclosing
// `loop`, rebinding its binders positionally to `args`. Transfers
// control (no fall-through); valid only in tail position of its
// enclosing loop (enforced at typecheck, `recur-not-in-tail-position`).
{ "t": "recur",
"args": [ Term, ... ] }
In the MVP, do is only a direct call to a built-in effect op (no
handler); the effect system is described in effects.
A lam term constructs an anonymous function value; free
variables of its body are captured from the enclosing scope.
Loop binders are alloca-resident: typecheck binds them in the
ordinary local scope plus a positional loop_stack, and codegen
lowers them as entry-block allocas. Capturing a loop binder into a
lambda body is rejected at typecheck via
CheckError::LoopBinderCapturedByLambda. See
docs/specs/2026-05-17-loop-recur.md.
Literal:
{ "kind": "int", "value": <i64> }
{ "kind": "bool", "value": <bool> }
{ "kind": "str", "value": "<utf-8>" }
{ "kind": "unit" }
{ "kind": "float", "bits": "<16-lowercase-hex>" }
Pattern (the pat field of an Arm; discriminator p):
{ "p": "wild" } // _
{ "p": "var", "name": "<id>" } // x — binds the value
{ "p": "lit", "lit": Literal }
{ "p": "ctor", "ctor": "<id>", "fields": [Pattern...] } // fields omitted when empty
Patterns are linear: each pattern variable may appear at most once.
Type
The Type::Con.name canonical-form rule (bare for same-module /
primitives, qualified <module>.<TypeName> for cross-module) lives
in memory model; Type::Fn's parameter-mode
metadata is defined and gated there as well.
// Type-constructor application. `args` omitted when empty
// (hash-stable when omitted, for non-parameterised cases like Int, Bool, ...).
{ "k": "con", "name": "<id>", "args": [Type...] } // "name": canonical form (bare for same-module / primitives, "<module>.<TypeName>" for cross-module)
// Function type. paramModes/retMode are metadata on Type::Fn —
// they are NOT separate Type variants, so every existing match-arm
// in the typechecker (unify, occurs, apply) keeps working.
// `paramModes` omitted when every entry is "implicit"; `retMode`
// omitted when "implicit" (hash-stable when omitted). Full mode
// contract lives in contracts/memory-model.md.
{ "k": "fn",
"params": [Type...],
"paramModes": [ParamMode...],
"ret": Type,
"retMode": ParamMode,
"effects": ["<id>"...] }
{ "k": "var", "name": "<id>" }
// Top-level polymorphism only. `constraints` carries class
// constraints (narrative in contracts/typeclasses.md); omitted when
// empty (hash-stable when omitted).
{ "k": "forall",
"vars": ["<id>"...],
"constraints": [{ "class": "<id>", "type": "<id>" }, ...], // "class": canonical form (bare for same-module, "<module>.<Class>" for cross-module)
"body": Type }
ParamMode (full contract in
memory model):
"implicit" — unannotated / back-compat. Treated as `own` by the typechecker.
"own" — (own T) — caller transfers ownership; callee consumes.
"borrow" — (borrow T) — caller retains ownership; callee may not consume.
implicit ≡ own semantically; the distinction exists so existing
unannotated fixtures continue to serialize without the mode wrapper and keep their
canonical-JSON hash. The full mode contract (codegen consequences,
the over-strict-mode lint, the Suppress mechanism) lives in
memory model; the four language-design
preconditions that make RC sound live in
language constraints.
Ratified by: crates/ailang-core/tests/design_schema_drift.rs.