Completes issue 0095: a non-integral float→int narrowing via a FLOAT-const leaf (`F : f64 : 2.5; y : s64 = F + 0.25` = 2.75) silently truncated to 2. `evalConstFloatExpr` delegated only INTEGER leaves to `evalConstIntExpr` and had no float-const leaf arm, so the unified rule never saw the value. - program_index.zig: add `moduleConstFloat`/`moduleConstFloatFramed` — the f64 twin of `moduleConstInt` (same `isCountableConstType` gate, same cyclic- definition frame), recovering a numeric module const's value via `evalConstFloatExpr`. Add `lookupFloatName` to `ModuleConstCtx` and the `.identifier`/`.type_expr` leaf arms to `evalConstFloatExpr` that call it. Integer / integral-float leaves keep resolving through the existing `evalConstIntExpr` delegation, so the unified rule now applies to ANY compile-time-constant float expression — literal, int-const leaf, float-const leaf, and combinations — at every binding site. - lower.zig: add `Lowering.lookupFloatName` delegating to `moduleConstFloat`. Route `typedConstInitFits`' integral-fold check through `evalConstFloatExpr` + `floatToIntExact` (the SAME facility `foldComptimeFloatInit` uses) instead of the int-only `evalComptimeInt`, which folded leaf-by-leaf in i64 and so rejected an integral SUM built from a non-integral float leaf (`K : s64 : F + 1.5` = 4.0 now folds; `K : s64 : F + 0.25` errors). A LOCAL `::` const leaf is a scope ref (not in the const tables) so neither the int nor float evaluator folds it — float now matches int exactly there. Regression: examples/1146 (negative) + 0168 (positive) extended with float-const-leaf cases at local/field/param/const; unit test in program_index.test.zig covers the leaf resolution (F→2.5, F+0.25→2.75, F+1.5→4.0). specs.md + readme.md state the rule covers any compile-time-const float expression incl. float-typed const leaves. issues/0095 banner updated. Gate: zig build + zig build test green; 447 examples pass, 0 failed.
7.2 KiB
0095 — typed local/decl silently truncates a float initializer to an integer annotation
RESOLVED (F0.11). Agra ruled the UNIFIED rule (Option B): an implicit float→int in a typed binding behaves exactly like the array-dimension rule — an integral float FOLDS to its integer (
4.0→ 4,-2.0→ -2), a non-integral float is a COMPILE ERROR (1.5,4.5), and an explicitxx/cast(T)ALWAYS truncates (the escape). Applied consistently across typed local / param-default / field-default, typed module CONST, and array dim — all reusing the singleprogram_index.floatToIntExact/evalConstIntExprfacility (no second integral check).Fix (
src/ir/lower.zig,src/ir/module.zig,src/ir/program_index.zig):
Builder.constFloatInforeads a compile-timeconst_floatback from its Ref (value + span).coerceToTypenow means IMPLICIT coercion: its.float_to_intarm folds an integral const-float toconstInt, else emits the narrowing diagnostic.coerceExplicitis the raw truncating path;xx(lowerXX) andcast(T)route through it so the escape still truncates.- Field-default lowering (struct-literal pad, named-field default,
buildDefaultValue) now coerces the default to the field type at the IR level (was silently bit-coerced byemitStructInit).- Const path:
typedConstInitFitsaccepts an integral float (literal or aM + 2.0-style expression that folds viaevalComptimeInt);emitModuleConst/constExprValue/globalInitValuefold an integral float to its int and reject a non-integral one.Completion (F0.11 attempt 2) — the direct-
const_floatcoerce arm only caught a float LITERAL; a non-integral const-folded float EXPRESSION (local/field/param : s64 = M + 0.5) still truncated silently. Closed by:
- New
program_index.evalConstFloatExpr— the f64 counterpart toevalConstIntExpr, delegating every integer subtree back to it (no parallel integer logic), adding only the float literal / negate /+ - * /arms.Lowering.foldComptimeFloatInitroutes the typed LOCAL, struct FIELD default, and call ARGUMENT (incl. an expanded param default) throughevalConstFloatExpr+floatToIntExact: an integral comptime float folds, a non-integral one errors, a genuine runtime float /xxcast is left to the normal path. (Run pureevalConstFloatExprFIRST so a$pack[i]arg isn't spuriously type-resolved out of binding.)- One
Lowering.diagNonIntegralNarrownow emits the narrowing wording at all five sites (coerce arm, global init, const-expr value, the typed-binding sites, and the typed-const path), so the typed-CONST non-integral diagnostic readscannot implicitly narrow non-integral float …instead of the staleinitializer is a float literal / floating-point expression.Completion (F0.11 attempt 3) — attempt 2 resolved INT-const-expr leaves (
M + 0.5,M :: 2), but a non-integral result via a FLOAT-const leaf (F : f64 : 2.5; y : s64 = F + 0.25= 2.75) still truncated silently:evalConstFloatExprdelegated only integer leaves toevalConstIntExprand had no float-const leaf arm. Closed by completing the evaluator:
program_index.moduleConstFloat— the f64 twin ofmoduleConstInt(sameisCountableConstTypegate, same cyclic-definition frame), recovering a numeric module const's value throughevalConstFloatExpr. A newlookupFloatNamectx method (onLoweringandModuleConstCtx) surfaces a NON-INTEGRAL float const leaf;evalConstFloatExprgained.identifier/.type_exprarms that call it. Integer / integral-float leaves keep resolving through the existingevalConstIntExprdelegation, so the unified rule now applies to ANY compile-time-constant float expression — literal, int-const leaf, float-const leaf, and combinations — at every binding site.typedConstInitFitsnow judges integral-fold viaevalConstFloatExpr+floatToIntExact(the SAME facilityfoldComptimeFloatInituses) instead of the int-onlyevalComptimeInt, which folded leaf-by-leaf ini64and so rejected an integral SUM built from a non-integral float leaf (K : s64 : F + 1.5= 4.0). Integral float-const-leaf consts now FOLD; non-integral ones still error with the unified wording.- Out of scope (consistent with the int evaluator): a LOCAL
::const leaf is resolved as a scope ref, not through the const tables, so neitherevalConstIntExprnorevalConstFloatExprfolds it — a localM : s64 : 2inM + 0.5and a localF : f64 : 2.5inF + 0.25both still truncate identically. Float now matches int exactly at that boundary.Regression tests:
examples/0168-types-integral-float-to-int.sx(positive — local/field/param/const fold, integral int-const-EXPRESSION (M + 2.0) AND float-const-LEAF (F + 1.5,F : f64 : 2.5) fold at local/field/param/const,xx/casttruncate incl.xx (M + 0.5)/xx (F + 0.25)),examples/1146-diagnostics-nonintegral-float-to-int.sx(negative — non-integral LITERAL, int-const-EXPRESSION (M + 0.5), AND float-const-LEAF (F + 0.25) error at local/param/field), the integral-float const cases inexamples/0162-types-typed-module-const-roundtrip.sx, and the aligned const diagnostic inexamples/1143-diagnostics-typed-module-const-mismatch.sx(G / BAD / BAD2 stay errors with the new wording). Unit:program_index.test.zig"evalConstFloatExpr folds comptime float expressions" (covers the float-const leaf:F→ 2.5,F + 0.25→ 2.75,F + 1.5→ 4.0).
Symptom
A typed LOCAL (and likely typed param/field) silently truncates a floating-point initializer to an integer annotation instead of rejecting or requiring an explicit cast.
Observed:
y : s64 = 1.5;→ y == 1 (float literal truncated, no diagnostic)y : s64 = 2 + 0.5;→ y == 2 (float-valued expr truncated, no diagnostic)
Expected: a type-mismatch / narrowing diagnostic (consistent with typed MODULE CONSTS,
which after F0.7 reject N : s64 : 1.5 and N : s64 : M + 0.5). Today consts are strict
but locals are lenient — an inconsistency.
Reproduction
#import "modules/std.sx";
main :: () {
y : s64 = 1.5;
print("{}\n", y); // prints 1
}
Investigation prompt
Decide + implement the language rule for implicit float→int narrowing in a TYPED binding
(local / param / field) initializer. Module consts already reject it (F0.7,
registerTypedModuleConst + typedConstInitFits/constExprInitFits). Make typed-local/param/field
assignment-coercion consistent: either reject a non-integral float→int initializer with a
diagnostic (matching the const path) or require an explicit xx/cast. Suspected area: the
assignment / typed-binding coercion path (coerceToType ladder, specs.md §"coercion") in
src/ir/lower.zig. Verify y : s64 = 1.5 errors (or requires a cast); confirm integral-float
folding rules (specs.md: 4.0→4 ok, 4.5 rejected) stay consistent. Then gate.
Disposition
Discovered during F0.7 (issue 0088) attempt-2 review. Agra ruled F0.7 fixes the inferExprType ROOT for binary-op promotion; this typed-LOCAL narrowing is a SEPARATE assignment-coercion concern -> its own scheduled step.