w6c+selfhost: cgen chained N_DOT/N_ASSIGN spine walk

Loop-shaped spine walker for value-struct chains (o.i.a) and slice/str
pseudo-fields (s.buf.len), read+write, both stages. SB-fallback at the
catch-all preserved for unresolved module-qualified idents.

Follow-ups filed: tasks #7-#10 (wwstage >6-arg frame over-alloc, chained
array-elem field BX loss, & through chained DOT, signed sub-word field
loads zero-extend).
This commit is contained in:
2026-05-13 21:44:50 +09:00
parent 036b2c851f
commit 461a448d5f
7 changed files with 1593 additions and 1 deletions

View File

@@ -216,7 +216,7 @@ TESTS = $(BIN)/test_smoke $(BIN)/test_lex $(BIN)/test_parse $(BIN)/test_check \
$(BIN)/test_arch \
$(BIN)/test_e2e $(BIN)/test_ffi $(BIN)/test_dyn $(BIN)/test_stdlib \
$(BIN)/test_at_test $(BIN)/test_let_global \
$(BIN)/test_int_cast_signed \
$(BIN)/test_int_cast_signed $(BIN)/test_dot_chain \
$(BIN)/test_selfhost $(BIN)/test_w6a_ww $(BIN)/test_w6l_ww \
$(BIN)/test_w6c_ww $(BIN)/test_ww_ww $(BIN)/test_self_rebuild \
$(BIN)/test_dyn_ww $(BIN)/test_selfcheck $(BIN)/test_at_test_ww
@@ -283,6 +283,12 @@ $(BIN)/test_int_cast_signed: test/wcc/640_int_cast_signed.c $(BIN)/ww \
$(LIB)/libwwrt.a | $(BIN)
$(CC) $(CFLAGS) -o $@ $<
$(BIN)/test_dot_chain: test/wcc/650_dot_chain.c $(BIN)/ww \
$(BIN)/w6c $(BIN)/w6a $(BIN)/w6l \
$(BIN)/ww_ww $(BIN)/w6c_ww $(BIN)/w6a_ww $(BIN)/w6l_ww \
$(LIB)/libwwrt.a | $(BIN)
$(CC) $(CFLAGS) -o $@ $<
$(BIN)/test_selfhost: test/wcc/990_selfhost.c $(BIN)/w6c $(BIN)/w6a $(BIN)/w6l \
$(BIN)/ww $(BIN)/wwdump $(BIN)/wwdump_ww $(LIB)/libwwrt.a | $(BIN)
$(CC) $(CFLAGS) -o $@ $<

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@@ -1943,6 +1943,153 @@ cgexpr(Cg *c, Node *n, Local *locals)
}
}
}
/* Chained `<chain>.field = v` where <chain> spans value-struct
* dots ending at a root ident — `o.i.a = 10`, `v.a.b.c = …`.
* Also handles a slice/str pseudo-field leaf (`b.buf.len = 5`):
* spine walks down to the slice/str header, then the +0/+8/+16
* delta selects ptr/len/cap. Sibling of the chained-pointer-
* field branch above; without this the LHS is silently dropped
* (the existing 1-deep branch only fires for `ident.field = …`).
* Only plain `=` is wired — compound on a chained value-struct
* field is rare and stays unhandled. */
if (n->lhs && n->lhs->kind == N_DOT && n->lhs->lhs
&& n->lhs->lhs->kind == N_DOT && n->op == TK_ASSIGN) {
struct { Type *pu; const char *name; } steps[16];
int nsteps = 0;
Node *cur = n->lhs;
int abort = 0;
while (cur && cur->kind == N_DOT && cur->lhs) {
Type *pt = cur->lhs->type;
Type *pu = (pt && pt->kind == TY_NAMED)
? pt->under : pt;
if (!pu) { abort = 1; break; }
if (cur == n->lhs && (pu->kind == TY_SLICE
|| pu->kind == TY_STR)) {
/* leaf pseudo-field on slice/str header */
} else if (pu->kind != TY_STRUCT) {
abort = 1;
break;
}
if (nsteps >= 16) { abort = 1; break; }
steps[nsteps].pu = pu;
steps[nsteps].name = cur->str;
nsteps++;
cur = cur->lhs;
}
if (!abort && cur && cur->kind == N_IDENT
&& nsteps > 0) {
int total_off = 0;
Type *leaf_type = NULL;
int slice_delta = -1;
int ok = 1;
for (int i = nsteps - 1; i >= 0; i--) {
Type *pu = steps[i].pu;
if (pu->kind == TY_SLICE
|| pu->kind == TY_STR) {
if (strcmp(steps[i].name, "ptr") == 0)
slice_delta = 0;
else if (strcmp(steps[i].name, "len") == 0)
slice_delta = 8;
else if (strcmp(steps[i].name, "cap") == 0)
slice_delta = 16;
else { ok = 0; break; }
} else {
Tfield *f = NULL;
for (Tfield *fl = pu->fields; fl; fl = fl->next)
if (strcmp(fl->name, steps[i].name) == 0)
{ f = fl; break; }
if (!f) { ok = 0; break; }
total_off += (int)f->offset;
leaf_type = f->type;
}
}
if (ok) {
int root_off = localfind(locals, cur->str);
int base_reg = D_BP;
int base_disp = root_off;
int is_global = 0;
int root_resolved = (root_off != 0);
if (!root_resolved && let_islet(cur->str)) {
root_resolved = 1;
is_global = 1;
}
if (root_resolved) {
if (slice_delta >= 0) {
/* slice/str pseudo-field store. .ptr writes
* 8 bytes; .len / .cap write 8 bytes each
* (matches the existing N_IDENT pseudo-
* field branch). */
cgexpr(c, n->rhs, locals);
if (is_global) {
ins2(c, A_LEAQ,
masym(c, cur->str),
areg(D_CX));
ins2(c, A_MOVQ, areg(D_AX),
amem(D_CX, total_off + slice_delta));
} else {
ins2(c, A_MOVQ, areg(D_AX),
amem(D_BP, base_disp + total_off + slice_delta));
}
break;
}
Type *fu = (leaf_type
&& leaf_type->kind == TY_NAMED)
? leaf_type->under : leaf_type;
int fsz = (int)(leaf_type
? leaf_type->size : 8);
int store_op = A_MOVQ;
if (fsz == 1) store_op = A_MOVB;
else if (fsz == 4) store_op = A_MOVL;
if (fu && fu->kind == TY_STR) {
cgexpr(c, n->rhs, locals);
if (is_global) {
ins2(c, A_LEAQ,
masym(c, cur->str),
areg(D_CX));
ins2(c, A_MOVQ, areg(D_AX),
amem(D_CX, total_off + 0));
ins2(c, A_MOVQ, areg(D_BX),
amem(D_CX, total_off + 8));
} else {
ins2(c, A_MOVQ, areg(D_AX),
amem(D_BP, base_disp + total_off + 0));
ins2(c, A_MOVQ, areg(D_BX),
amem(D_BP, base_disp + total_off + 8));
}
break;
}
int sf32 = 0;
if (fld_isfloat(leaf_type, &sf32)) {
int mov = sf32 ? A_MOVSS : A_MOVSD;
cgexpr(c, n->rhs, locals);
if (is_global) {
ins2(c, A_LEAQ,
masym(c, cur->str),
areg(D_CX));
ins2(c, mov, areg(D_X0),
amem(D_CX, total_off));
} else {
ins2(c, mov, areg(D_X0),
amem(D_BP, base_disp + total_off));
}
break;
}
cgexpr(c, n->rhs, locals);
if (is_global) {
ins2(c, A_LEAQ,
masym(c, cur->str),
areg(D_CX));
ins2(c, store_op, areg(D_AX),
amem(D_CX, total_off));
} else {
ins2(c, store_op, areg(D_AX),
amem(D_BP, base_disp + total_off));
}
break;
}
}
}
}
/* float assignment to a local or top-level global. Globals
* route through LEAQ+indirect (no D_EXTERN SSE in w6a).
* Compound (`acc += d` etc.) loads slot into X1, combines
@@ -3561,6 +3708,138 @@ cgexpr(Cg *c, Node *n, Local *locals)
ins2(c, A_MOVQ, masym(c, n->str), areg(D_AX));
goto dot_done;
}
/* Chained N_DOT spine through value-struct fields. Handles any
* depth `root.f0.f1.…leaf` where every intermediate field is a
* value struct, plus the slice/str pseudo-field tail (`s.buf.len`)
* where the innermost field is a slice/str header. Walks inward
* collecting (parent_struct, field_name); reverses to sum field
* offsets; emits one load at (base + total_off). Placed BEFORE
* the slice/str pseudo-field branch so its else-arm (cgexpr lhs
* + shuffle BX→AX) doesn't mis-handle `b.buf.len` — cgexpr on a
* value-struct→slice chain only loads .ptr into AX, leaving BX
* stale. Sibling of the pointer-chain branch further down. */
if (n->lhs && n->lhs->kind == N_DOT) {
Type *lt0 = n->lhs->type;
Type *lu0 = (lt0 && lt0->kind == TY_NAMED) ? lt0->under : lt0;
int leaf_is_pseudo = lu0 && n->str
&& (lu0->kind == TY_SLICE || lu0->kind == TY_STR)
&& (strcmp(n->str, "ptr") == 0
|| strcmp(n->str, "len") == 0
|| strcmp(n->str, "cap") == 0);
int leaf_in_struct = lu0 && lu0->kind == TY_STRUCT;
if (leaf_is_pseudo || leaf_in_struct) {
struct { Type *pu; const char *name; } steps[16];
int nsteps = 0;
Node *cur = n;
int abort = 0;
while (cur && cur->kind == N_DOT && cur->lhs) {
Type *pt = cur->lhs->type;
Type *pu = (pt && pt->kind == TY_NAMED)
? pt->under : pt;
if (!pu) { abort = 1; break; }
if (cur == n && (pu->kind == TY_SLICE
|| pu->kind == TY_STR)) {
/* leaf pseudo on slice/str header */
} else if (pu->kind != TY_STRUCT) {
abort = 1;
break;
}
if (nsteps >= 16) { abort = 1; break; }
steps[nsteps].pu = pu;
steps[nsteps].name = cur->str;
nsteps++;
cur = cur->lhs;
}
if (!abort && cur && cur->kind == N_IDENT
&& nsteps > 0) {
int total_off = 0;
Type *leaf_type = NULL;
int slice_delta = -1;
int ok = 1;
for (int i = nsteps - 1; i >= 0; i--) {
Type *pu = steps[i].pu;
if (pu->kind == TY_SLICE
|| pu->kind == TY_STR) {
if (strcmp(steps[i].name, "ptr") == 0)
slice_delta = 0;
else if (strcmp(steps[i].name, "len") == 0)
slice_delta = 8;
else if (strcmp(steps[i].name, "cap") == 0)
slice_delta = 16;
else { ok = 0; break; }
} else {
Tfield *f = NULL;
for (Tfield *fl = pu->fields; fl; fl = fl->next)
if (strcmp(fl->name, steps[i].name) == 0)
{ f = fl; break; }
if (!f) { ok = 0; break; }
total_off += (int)f->offset;
leaf_type = f->type;
}
}
if (ok) {
int root_off = localfind(locals, cur->str);
int base_reg = D_BP;
int base_disp = root_off;
int root_resolved = (root_off != 0);
if (!root_resolved && let_islet(cur->str)) {
ins2(c, A_LEAQ,
masym(c, cur->str), areg(D_CX));
base_reg = D_CX;
base_disp = 0;
root_resolved = 1;
}
if (root_resolved) {
if (slice_delta >= 0) {
ins2(c, A_MOVQ,
amem(base_reg,
base_disp + total_off + slice_delta),
areg(D_AX));
goto dot_done;
}
Type *fu = (leaf_type
&& leaf_type->kind == TY_NAMED)
? leaf_type->under : leaf_type;
if (fu && fu->kind == TY_STR) {
ins2(c, A_MOVQ,
amem(base_reg,
base_disp + total_off + 0),
areg(D_AX));
ins2(c, A_MOVQ,
amem(base_reg,
base_disp + total_off + 8),
areg(D_BX));
goto dot_done;
}
int g_isf32 = 0;
if (fld_isfloat(leaf_type, &g_isf32)) {
int mov = g_isf32 ? A_MOVSS : A_MOVSD;
ins2(c, mov,
amem(base_reg,
base_disp + total_off),
areg(D_X0));
goto dot_done;
}
int fsz = (int)(leaf_type
? leaf_type->size : 8);
int signed_field = leaf_type && (
leaf_type->kind == TY_I8
|| leaf_type->kind == TY_I16
|| leaf_type->kind == TY_I32);
int op = A_MOVQ;
if (fsz == 1) op = A_MOVZBQ;
else if (fsz == 4)
op = signed_field ? A_MOVSXD : A_MOVL;
ins2(c, op,
amem(base_reg,
base_disp + total_off),
areg(D_AX));
goto dot_done;
}
}
}
}
}
int lenfld = (n->str && strcmp(n->str, "len") == 0);
int capfld = (n->str && strcmp(n->str, "cap") == 0);
int ptrfld = (n->str && strcmp(n->str, "ptr") == 0);

View File

@@ -7778,6 +7778,175 @@ fn cgwidentaggedstore(c: *cgen, dst: *node, src: *node, slot_off: i32, slot_sz:
return;
};
// dotchain — packed result struct for dotchainresolve. Out-params are
// bundled to keep the helper at <= 6 register-passed args; wwstage's
// per-fn arg-frame computation over-allocates by 16 bytes for any
// function with > 6 args (task #7, a pre-existing quirk independent
// of this fix), which would silently break the bootstrap fixed-point
// gate (993 / 994 / 995).
//
// Numeric fields are all i64, not i32. wwstage zero-inits an i32
// local with MOVQ (8-byte store) but subsequent `out.totaloff = …`
// updates would emit MOVL (4-byte store), leaving the upper 4 bytes
// stale from the wider init. Keeping the out-params at i64 makes the
// init width and the update width agree, so the field reads back
// what was written across both stages.
type dotchain = struct {
rootname: str,
rootoff: i64,
totaloff: i64,
leaffi: *fieldinfo,
slicedelta: i64,
isglobal: bool,
};
// Spine-walk a chained N_DOT (n) inward to a root ident, summing field
// offsets through value-struct intermediates. Optional slice/str leaf
// pseudo-field (.ptr / .len / .cap) on the last segment is folded into
// `out.slicedelta` (0/8/16); otherwise out.leaffi is the leaf fieldinfo
// and slicedelta stays -1. Returns true on success; on false the caller
// falls through to other branches.
//
// Mirrors cmd/w6c/cgen.c's N_DOT chained walker; both stages must agree
// on the same shapes so the bootstrap fixed-point holds. The chain
// depth is capped at 16 — deeper chains are vanishingly rare and fall
// through.
//
// On success the caller emits one load/store at root_base + out.totaloff
// (+ slicedelta for pseudo leaf). Root resolves as: local frame slot
// (out.rootoff != 0, isglobal false) or top-level let (isglobal true,
// root accessed via LEAQ name(SB), CX).
export fn dotchainresolve(c: *cgen, n: *node, out: *dotchain) bool = {
out.rootname = "";
out.rootoff = 0i64;
out.isglobal = false;
out.totaloff = 0i64;
out.leaffi = nil;
out.slicedelta = -1i64;
if (n == nil) { return false; };
if (n.kind != nkind.N_DOT) { return false; };
// Walk inward, recording the N_DOT node at each step (leaf first).
// We hold *node pointers (8B each, slotsize-stable across stages)
// and read .str on demand — a [16]str array would mis-slot at
// wwstage where slotsize("str") returns 8, breaking the bootstrap
// fixed-point.
let stk: [16]*node;
let nsteps: i32 = 0;
let cur: *node = n;
for (cur != nil) {
if (cur.kind != nkind.N_DOT) { break; };
if (nsteps >= 16) { return false; };
stk[nsteps] = cur;
nsteps += 1;
cur = cur.lhs;
};
if (nsteps < 2) { return false; };
if (cur == nil) { return false; };
if (cur.kind != nkind.N_IDENT) { return false; };
out.rootname = cur.str;
// Resolve the root's struct type and base.
let rootstruct: str = "";
let lc: *local = localfindnode(c, cur.str);
let gsi: *structinfo = nil;
if (lc != nil) {
if (lc.tnode != nil) {
if (lc.tnode.kind == nkind.N_TNAME) {
rootstruct = lc.tnode.str;
out.rootoff = lc.off: i64;
};
};
};
if (rootstruct.len == 0) {
gsi = letvarstructinfo(c, cur.str);
if (gsi != nil) {
rootstruct = gsi.sname;
out.isglobal = true;
};
};
if (rootstruct.len == 0) { return false; };
// Walk outward, resolving each field. stk is leaf-first; iterate
// from i = nsteps - 1 (the root-most field) down to i = 0 (leaf).
let curstruct: str = rootstruct;
// Pre-declare per-iteration spills here so cstage / wwstage agree
// on the frame layout. Both must emit byte-identical asm for the
// bootstrap fixed-point (tests 993/995) — letting these locals get
// declared inside the branch bodies trips a per-stage divergence in
// slot counting.
let stepnd: *node = nil;
let stepnm: str = "";
let fi: *fieldinfo = nil;
let found: *fieldinfo = nil;
let ft: *node = nil;
let s0nd: *node = nil;
let pseudo: str = "";
let delta: i64 = 0i64;
let i: i32 = nsteps - 1;
for (i >= 0) {
let csi: *structinfo = structlookup(c, curstruct);
if (csi == nil) { return false; };
// Materialise the *node first; wwstage's cgen mis-emits the
// chained shape `stk[i].str` directly (task #8 — loses BX
// between the index load and the field deref), so always
// spill to an intermediate local before reading the str
// field. The cstage emits the same pattern for byte-identity.
stepnd = stk[i];
if (stepnd == nil) { return false; };
stepnm = stepnd.str;
fi = csi.fields;
found = nil;
for (fi != nil) {
if (streq(fi.fname, stepnm)) { found = fi; break; };
fi = fi.finext;
};
if (found == nil) { return false; };
if (i == 0) {
out.totaloff = out.totaloff + (found.foff: i64);
out.leaffi = found;
return true;
};
// Intermediate step. Must be a nested value-struct, OR a slice/
// str field with the leaf (i == 1, stk[0]) as a pseudo-field.
ft = found.tnode;
if (ft == nil) { return false; };
if (ft.kind == nkind.N_TNAME) {
if (streq(ft.str, "str")) {
if (i != 1) { return false; };
s0nd = stk[0];
if (s0nd == nil) { return false; };
pseudo = s0nd.str;
delta = -1i64;
if (streq(pseudo, "ptr")) { delta = 0i64; }
else { if (streq(pseudo, "len")) { delta = 8i64; }; };
if (delta < 0i64) { return false; };
out.totaloff = out.totaloff + (found.foff: i64);
out.slicedelta = delta;
return true;
};
if (primsize(ft.str) != 0) { return false; };
// Nested value-struct (named).
out.totaloff = out.totaloff + (found.foff: i64);
curstruct = ft.str;
i -= 1;
} else { if (ft.kind == nkind.N_TSLICE) {
if (i != 1) { return false; };
s0nd = stk[0];
if (s0nd == nil) { return false; };
pseudo = s0nd.str;
delta = -1i64;
if (streq(pseudo, "ptr")) { delta = 0i64; }
else { if (streq(pseudo, "len")) { delta = 8i64; }
else { if (streq(pseudo, "cap")) { delta = 16i64; }; }; };
if (delta < 0i64) { return false; };
out.totaloff = out.totaloff + (found.foff: i64);
out.slicedelta = delta;
return true;
} else {
return false;
}; };
};
return false;
};
// MODULE: wcc
// selfhost/cmd/wcc/cgenexpr.ww — split out of cgen.ww.
//
@@ -9324,6 +9493,99 @@ fn cgdot(c: *cgen, n: *node) void = {
return;
};
};
// Chained N_DOT spine through value-struct fields (any depth).
// Walks the spine to a root ident, summing field offsets, then
// emits ONE load at base + total_off. Also handles a slice/str
// pseudo-field leaf (`b.buf.len`): the walk lands on the slice/
// str header and slicedelta picks ptr/len/cap. Mirror of cstage
// cgen.c's chained-DOT read branch. Without this, depth ≥ 3
// shapes (`v.a.a.a`) and `b.buf.len` fall through to the non-
// ident-base pseudo branch below — which would cgexpr the inner
// (loading only .ptr into AX) and shuffle stale BX into AX.
// Placed BEFORE the .ptr/.len fast paths so the chain wins.
if (lhs != nil) {
if (lhs.kind == nkind.N_DOT) {
let r: dotchain;
let pok: bool = dotchainresolve(c, n, &r);
if (pok) {
if (r.slicedelta >= 0i64) {
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\tMOVQ\t");
emitdispreg(r.totaloff + r.slicedelta, "CX");
emitline(", AX\n");
} else {
emitline("\tMOVQ\t");
emitoff(r.rootoff + r.totaloff + r.slicedelta);
emitline("(BP), AX\n");
};
return;
};
if (isstrtype(c, r.leaffi.tnode)) {
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\tMOVQ\t");
emitdispreg(r.totaloff + 0i64, "CX");
emitline(", AX\n");
emitline("\tMOVQ\t");
emitdispreg(r.totaloff + 8i64, "CX");
emitline(", BX\n");
} else {
emitline("\tMOVQ\t");
emitoff(r.rootoff + r.totaloff);
emitline("(BP), AX\n");
emitline("\tMOVQ\t");
emitoff(r.rootoff + r.totaloff + 8i64);
emitline("(BP), BX\n");
};
return;
};
if (isfloattype(c, r.leaffi.tnode)) {
let mov: str = "MOVSD";
if (isf32type(c, r.leaffi.tnode)) { mov = "MOVSS"; };
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\t");
emitline(mov);
emitline("\t");
emitdispreg(r.totaloff, "CX");
emitline(", X0\n");
} else {
emitline("\t");
emitline(mov);
emitline("\t");
emitoff(r.rootoff + r.totaloff);
emitline("(BP), X0\n");
};
return;
};
let lop: str = fieldloadop(r.leaffi);
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\t");
emitline(lop);
emitline("\t");
emitdispreg(r.totaloff, "CX");
emitline(", AX\n");
} else {
emitline("\t");
emitline(lop);
emitline("\t");
emitoff(r.rootoff + r.totaloff);
emitline("(BP), AX\n");
};
return;
};
};
};
// Non-ident base pseudo-field: e.g. `"abc".ptr` / `"abc".len`.
// Evaluate the str-producing expression — that leaves
// (AX=ptr, BX=len). Then `.ptr` returns AX as is; `.len`
@@ -9393,6 +9655,9 @@ fn cgdot(c: *cgen, n: *node) void = {
// field. Mirror of the cgassign branch added for the same shape.
// Without this, `L.cur.kind` (cur a by-value struct of *L)
// falls into the SB-fallback and emits `MOVQ kind(SB), AX`.
// Kept as a fallback below the generalized walker above (placed
// earlier in cgdot) to preserve byte-identical output on shapes
// it already handles.
if (lhs != nil) {
if (lhs.kind == nkind.N_DOT) {
let inner: *node = lhs.lhs;
@@ -11158,6 +11423,101 @@ fn cgassign(c: *cgen, n: *node) void = {
};
};
};
// Chained N_DOT spine write through value-struct fields (any
// depth) — `o.i.a = 10`, `v.a.b.c = …`. Also handles a slice/str
// pseudo-field leaf (`b.buf.len = 5`). Mirror of cstage cgen.c's
// chained-DOT write branch. Without this, depth ≥ 3 writes and
// the slice/str pseudo-field write through a value-struct chain
// silently emit no store. Only plain `=` is wired.
if (lhs != nil) {
if (lhs.kind == nkind.N_DOT && lhs.lhs != nil
&& lhs.lhs.kind == nkind.N_DOT
&& n.op == tkind.TK_ASSIGN) {
let r: dotchain;
let yok: bool = dotchainresolve(c, lhs, &r);
if (yok) {
if (r.slicedelta >= 0i64) {
cgexpr(c, n.rhs);
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\tMOVQ\tAX, ");
emitdispreg(r.totaloff + r.slicedelta, "CX");
emitline("\n");
} else {
emitline("\tMOVQ\tAX, ");
emitoff(r.rootoff + r.totaloff + r.slicedelta);
emitline("(BP)\n");
};
return;
};
if (isstrtype(c, r.leaffi.tnode)) {
cgexpr(c, n.rhs);
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\tMOVQ\tAX, ");
emitdispreg(r.totaloff + 0i64, "CX");
emitline("\n");
emitline("\tMOVQ\tBX, ");
emitdispreg(r.totaloff + 8i64, "CX");
emitline("\n");
} else {
emitline("\tMOVQ\tAX, ");
emitoff(r.rootoff + r.totaloff);
emitline("(BP)\n");
emitline("\tMOVQ\tBX, ");
emitoff(r.rootoff + r.totaloff + 8i64);
emitline("(BP)\n");
};
return;
};
if (isfloattype(c, r.leaffi.tnode)) {
let mov: str = "MOVSD";
if (isf32type(c, r.leaffi.tnode)) { mov = "MOVSS"; };
cgexpr(c, n.rhs);
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\t");
emitline(mov);
emitline("\tX0, ");
emitdispreg(r.totaloff, "CX");
emitline("\n");
} else {
emitline("\t");
emitline(mov);
emitline("\tX0, ");
emitoff(r.rootoff + r.totaloff);
emitline("(BP)\n");
};
return;
};
let sop: str = fieldstoreop(r.leaffi);
cgexpr(c, n.rhs);
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\t");
emitline(sop);
emitline("\tAX, ");
emitdispreg(r.totaloff, "CX");
emitline("\n");
} else {
emitline("\t");
emitline(sop);
emitline("\tAX, ");
emitoff(r.rootoff + r.totaloff);
emitline("(BP)\n");
};
return;
};
};
};
// Chained `(ident).f1.f2 = v` where f1 is a struct-by-value
// field. The earlier chained-DOT branch handles f1: *T (deref
// then store). This handles f1: T (in-place sub-struct), which
@@ -11165,6 +11525,8 @@ fn cgassign(c: *cgen, n: *node) void = {
// to flatten `cur.kind`/`cur.ival`/... into top-level fields to
// work around it. Only plain `=` is wired; compound on a by-
// value sub-field hasn't surfaced.
// Kept as fallback below the generalized walker for any shape
// the walker doesn't recognize.
if (lhs != nil) {
if (lhs.kind == nkind.N_DOT) {
let base: *node = lhs.lhs;

View File

@@ -1543,6 +1543,99 @@ fn cgdot(c: *cgen, n: *node) void = {
return;
};
};
// Chained N_DOT spine through value-struct fields (any depth).
// Walks the spine to a root ident, summing field offsets, then
// emits ONE load at base + total_off. Also handles a slice/str
// pseudo-field leaf (`b.buf.len`): the walk lands on the slice/
// str header and slicedelta picks ptr/len/cap. Mirror of cstage
// cgen.c's chained-DOT read branch. Without this, depth ≥ 3
// shapes (`v.a.a.a`) and `b.buf.len` fall through to the non-
// ident-base pseudo branch below — which would cgexpr the inner
// (loading only .ptr into AX) and shuffle stale BX into AX.
// Placed BEFORE the .ptr/.len fast paths so the chain wins.
if (lhs != nil) {
if (lhs.kind == nkind.N_DOT) {
let r: dotchain;
let pok: bool = dotchainresolve(c, n, &r);
if (pok) {
if (r.slicedelta >= 0i64) {
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\tMOVQ\t");
emitdispreg(r.totaloff + r.slicedelta, "CX");
emitline(", AX\n");
} else {
emitline("\tMOVQ\t");
emitoff(r.rootoff + r.totaloff + r.slicedelta);
emitline("(BP), AX\n");
};
return;
};
if (isstrtype(c, r.leaffi.tnode)) {
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\tMOVQ\t");
emitdispreg(r.totaloff + 0i64, "CX");
emitline(", AX\n");
emitline("\tMOVQ\t");
emitdispreg(r.totaloff + 8i64, "CX");
emitline(", BX\n");
} else {
emitline("\tMOVQ\t");
emitoff(r.rootoff + r.totaloff);
emitline("(BP), AX\n");
emitline("\tMOVQ\t");
emitoff(r.rootoff + r.totaloff + 8i64);
emitline("(BP), BX\n");
};
return;
};
if (isfloattype(c, r.leaffi.tnode)) {
let mov: str = "MOVSD";
if (isf32type(c, r.leaffi.tnode)) { mov = "MOVSS"; };
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\t");
emitline(mov);
emitline("\t");
emitdispreg(r.totaloff, "CX");
emitline(", X0\n");
} else {
emitline("\t");
emitline(mov);
emitline("\t");
emitoff(r.rootoff + r.totaloff);
emitline("(BP), X0\n");
};
return;
};
let lop: str = fieldloadop(r.leaffi);
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\t");
emitline(lop);
emitline("\t");
emitdispreg(r.totaloff, "CX");
emitline(", AX\n");
} else {
emitline("\t");
emitline(lop);
emitline("\t");
emitoff(r.rootoff + r.totaloff);
emitline("(BP), AX\n");
};
return;
};
};
};
// Non-ident base pseudo-field: e.g. `"abc".ptr` / `"abc".len`.
// Evaluate the str-producing expression — that leaves
// (AX=ptr, BX=len). Then `.ptr` returns AX as is; `.len`
@@ -1612,6 +1705,9 @@ fn cgdot(c: *cgen, n: *node) void = {
// field. Mirror of the cgassign branch added for the same shape.
// Without this, `L.cur.kind` (cur a by-value struct of *L)
// falls into the SB-fallback and emits `MOVQ kind(SB), AX`.
// Kept as a fallback below the generalized walker above (placed
// earlier in cgdot) to preserve byte-identical output on shapes
// it already handles.
if (lhs != nil) {
if (lhs.kind == nkind.N_DOT) {
let inner: *node = lhs.lhs;
@@ -3377,6 +3473,101 @@ fn cgassign(c: *cgen, n: *node) void = {
};
};
};
// Chained N_DOT spine write through value-struct fields (any
// depth) — `o.i.a = 10`, `v.a.b.c = …`. Also handles a slice/str
// pseudo-field leaf (`b.buf.len = 5`). Mirror of cstage cgen.c's
// chained-DOT write branch. Without this, depth ≥ 3 writes and
// the slice/str pseudo-field write through a value-struct chain
// silently emit no store. Only plain `=` is wired.
if (lhs != nil) {
if (lhs.kind == nkind.N_DOT && lhs.lhs != nil
&& lhs.lhs.kind == nkind.N_DOT
&& n.op == tkind.TK_ASSIGN) {
let r: dotchain;
let yok: bool = dotchainresolve(c, lhs, &r);
if (yok) {
if (r.slicedelta >= 0i64) {
cgexpr(c, n.rhs);
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\tMOVQ\tAX, ");
emitdispreg(r.totaloff + r.slicedelta, "CX");
emitline("\n");
} else {
emitline("\tMOVQ\tAX, ");
emitoff(r.rootoff + r.totaloff + r.slicedelta);
emitline("(BP)\n");
};
return;
};
if (isstrtype(c, r.leaffi.tnode)) {
cgexpr(c, n.rhs);
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\tMOVQ\tAX, ");
emitdispreg(r.totaloff + 0i64, "CX");
emitline("\n");
emitline("\tMOVQ\tBX, ");
emitdispreg(r.totaloff + 8i64, "CX");
emitline("\n");
} else {
emitline("\tMOVQ\tAX, ");
emitoff(r.rootoff + r.totaloff);
emitline("(BP)\n");
emitline("\tMOVQ\tBX, ");
emitoff(r.rootoff + r.totaloff + 8i64);
emitline("(BP)\n");
};
return;
};
if (isfloattype(c, r.leaffi.tnode)) {
let mov: str = "MOVSD";
if (isf32type(c, r.leaffi.tnode)) { mov = "MOVSS"; };
cgexpr(c, n.rhs);
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\t");
emitline(mov);
emitline("\tX0, ");
emitdispreg(r.totaloff, "CX");
emitline("\n");
} else {
emitline("\t");
emitline(mov);
emitline("\tX0, ");
emitoff(r.rootoff + r.totaloff);
emitline("(BP)\n");
};
return;
};
let sop: str = fieldstoreop(r.leaffi);
cgexpr(c, n.rhs);
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\t");
emitline(sop);
emitline("\tAX, ");
emitdispreg(r.totaloff, "CX");
emitline("\n");
} else {
emitline("\t");
emitline(sop);
emitline("\tAX, ");
emitoff(r.rootoff + r.totaloff);
emitline("(BP)\n");
};
return;
};
};
};
// Chained `(ident).f1.f2 = v` where f1 is a struct-by-value
// field. The earlier chained-DOT branch handles f1: *T (deref
// then store). This handles f1: T (in-place sub-struct), which
@@ -3384,6 +3575,8 @@ fn cgassign(c: *cgen, n: *node) void = {
// to flatten `cur.kind`/`cur.ival`/... into top-level fields to
// work around it. Only plain `=` is wired; compound on a by-
// value sub-field hasn't surfaced.
// Kept as fallback below the generalized walker for any shape
// the walker doesn't recognize.
if (lhs != nil) {
if (lhs.kind == nkind.N_DOT) {
let base: *node = lhs.lhs;

View File

@@ -2207,3 +2207,172 @@ fn cgwidentaggedstore(c: *cgen, dst: *node, src: *node, slot_off: i32, slot_sz:
emitline("(BP)\n");
return;
};
// dotchain — packed result struct for dotchainresolve. Out-params are
// bundled to keep the helper at <= 6 register-passed args; wwstage's
// per-fn arg-frame computation over-allocates by 16 bytes for any
// function with > 6 args (task #7, a pre-existing quirk independent
// of this fix), which would silently break the bootstrap fixed-point
// gate (993 / 994 / 995).
//
// Numeric fields are all i64, not i32. wwstage zero-inits an i32
// local with MOVQ (8-byte store) but subsequent `out.totaloff = …`
// updates would emit MOVL (4-byte store), leaving the upper 4 bytes
// stale from the wider init. Keeping the out-params at i64 makes the
// init width and the update width agree, so the field reads back
// what was written across both stages.
type dotchain = struct {
rootname: str,
rootoff: i64,
totaloff: i64,
leaffi: *fieldinfo,
slicedelta: i64,
isglobal: bool,
};
// Spine-walk a chained N_DOT (n) inward to a root ident, summing field
// offsets through value-struct intermediates. Optional slice/str leaf
// pseudo-field (.ptr / .len / .cap) on the last segment is folded into
// `out.slicedelta` (0/8/16); otherwise out.leaffi is the leaf fieldinfo
// and slicedelta stays -1. Returns true on success; on false the caller
// falls through to other branches.
//
// Mirrors cmd/w6c/cgen.c's N_DOT chained walker; both stages must agree
// on the same shapes so the bootstrap fixed-point holds. The chain
// depth is capped at 16 — deeper chains are vanishingly rare and fall
// through.
//
// On success the caller emits one load/store at root_base + out.totaloff
// (+ slicedelta for pseudo leaf). Root resolves as: local frame slot
// (out.rootoff != 0, isglobal false) or top-level let (isglobal true,
// root accessed via LEAQ name(SB), CX).
export fn dotchainresolve(c: *cgen, n: *node, out: *dotchain) bool = {
out.rootname = "";
out.rootoff = 0i64;
out.isglobal = false;
out.totaloff = 0i64;
out.leaffi = nil;
out.slicedelta = -1i64;
if (n == nil) { return false; };
if (n.kind != nkind.N_DOT) { return false; };
// Walk inward, recording the N_DOT node at each step (leaf first).
// We hold *node pointers (8B each, slotsize-stable across stages)
// and read .str on demand — a [16]str array would mis-slot at
// wwstage where slotsize("str") returns 8, breaking the bootstrap
// fixed-point.
let stk: [16]*node;
let nsteps: i32 = 0;
let cur: *node = n;
for (cur != nil) {
if (cur.kind != nkind.N_DOT) { break; };
if (nsteps >= 16) { return false; };
stk[nsteps] = cur;
nsteps += 1;
cur = cur.lhs;
};
if (nsteps < 2) { return false; };
if (cur == nil) { return false; };
if (cur.kind != nkind.N_IDENT) { return false; };
out.rootname = cur.str;
// Resolve the root's struct type and base.
let rootstruct: str = "";
let lc: *local = localfindnode(c, cur.str);
let gsi: *structinfo = nil;
if (lc != nil) {
if (lc.tnode != nil) {
if (lc.tnode.kind == nkind.N_TNAME) {
rootstruct = lc.tnode.str;
out.rootoff = lc.off: i64;
};
};
};
if (rootstruct.len == 0) {
gsi = letvarstructinfo(c, cur.str);
if (gsi != nil) {
rootstruct = gsi.sname;
out.isglobal = true;
};
};
if (rootstruct.len == 0) { return false; };
// Walk outward, resolving each field. stk is leaf-first; iterate
// from i = nsteps - 1 (the root-most field) down to i = 0 (leaf).
let curstruct: str = rootstruct;
// Pre-declare per-iteration spills here so cstage / wwstage agree
// on the frame layout. Both must emit byte-identical asm for the
// bootstrap fixed-point (tests 993/995) — letting these locals get
// declared inside the branch bodies trips a per-stage divergence in
// slot counting.
let stepnd: *node = nil;
let stepnm: str = "";
let fi: *fieldinfo = nil;
let found: *fieldinfo = nil;
let ft: *node = nil;
let s0nd: *node = nil;
let pseudo: str = "";
let delta: i64 = 0i64;
let i: i32 = nsteps - 1;
for (i >= 0) {
let csi: *structinfo = structlookup(c, curstruct);
if (csi == nil) { return false; };
// Materialise the *node first; wwstage's cgen mis-emits the
// chained shape `stk[i].str` directly (task #8 — loses BX
// between the index load and the field deref), so always
// spill to an intermediate local before reading the str
// field. The cstage emits the same pattern for byte-identity.
stepnd = stk[i];
if (stepnd == nil) { return false; };
stepnm = stepnd.str;
fi = csi.fields;
found = nil;
for (fi != nil) {
if (streq(fi.fname, stepnm)) { found = fi; break; };
fi = fi.finext;
};
if (found == nil) { return false; };
if (i == 0) {
out.totaloff = out.totaloff + (found.foff: i64);
out.leaffi = found;
return true;
};
// Intermediate step. Must be a nested value-struct, OR a slice/
// str field with the leaf (i == 1, stk[0]) as a pseudo-field.
ft = found.tnode;
if (ft == nil) { return false; };
if (ft.kind == nkind.N_TNAME) {
if (streq(ft.str, "str")) {
if (i != 1) { return false; };
s0nd = stk[0];
if (s0nd == nil) { return false; };
pseudo = s0nd.str;
delta = -1i64;
if (streq(pseudo, "ptr")) { delta = 0i64; }
else { if (streq(pseudo, "len")) { delta = 8i64; }; };
if (delta < 0i64) { return false; };
out.totaloff = out.totaloff + (found.foff: i64);
out.slicedelta = delta;
return true;
};
if (primsize(ft.str) != 0) { return false; };
// Nested value-struct (named).
out.totaloff = out.totaloff + (found.foff: i64);
curstruct = ft.str;
i -= 1;
} else { if (ft.kind == nkind.N_TSLICE) {
if (i != 1) { return false; };
s0nd = stk[0];
if (s0nd == nil) { return false; };
pseudo = s0nd.str;
delta = -1i64;
if (streq(pseudo, "ptr")) { delta = 0i64; }
else { if (streq(pseudo, "len")) { delta = 8i64; }
else { if (streq(pseudo, "cap")) { delta = 16i64; }; }; };
if (delta < 0i64) { return false; };
out.totaloff = out.totaloff + (found.foff: i64);
out.slicedelta = delta;
return true;
} else {
return false;
}; };
};
return false;
};

View File

@@ -7778,6 +7778,175 @@ fn cgwidentaggedstore(c: *cgen, dst: *node, src: *node, slot_off: i32, slot_sz:
return;
};
// dotchain — packed result struct for dotchainresolve. Out-params are
// bundled to keep the helper at <= 6 register-passed args; wwstage's
// per-fn arg-frame computation over-allocates by 16 bytes for any
// function with > 6 args (task #7, a pre-existing quirk independent
// of this fix), which would silently break the bootstrap fixed-point
// gate (993 / 994 / 995).
//
// Numeric fields are all i64, not i32. wwstage zero-inits an i32
// local with MOVQ (8-byte store) but subsequent `out.totaloff = …`
// updates would emit MOVL (4-byte store), leaving the upper 4 bytes
// stale from the wider init. Keeping the out-params at i64 makes the
// init width and the update width agree, so the field reads back
// what was written across both stages.
type dotchain = struct {
rootname: str,
rootoff: i64,
totaloff: i64,
leaffi: *fieldinfo,
slicedelta: i64,
isglobal: bool,
};
// Spine-walk a chained N_DOT (n) inward to a root ident, summing field
// offsets through value-struct intermediates. Optional slice/str leaf
// pseudo-field (.ptr / .len / .cap) on the last segment is folded into
// `out.slicedelta` (0/8/16); otherwise out.leaffi is the leaf fieldinfo
// and slicedelta stays -1. Returns true on success; on false the caller
// falls through to other branches.
//
// Mirrors cmd/w6c/cgen.c's N_DOT chained walker; both stages must agree
// on the same shapes so the bootstrap fixed-point holds. The chain
// depth is capped at 16 — deeper chains are vanishingly rare and fall
// through.
//
// On success the caller emits one load/store at root_base + out.totaloff
// (+ slicedelta for pseudo leaf). Root resolves as: local frame slot
// (out.rootoff != 0, isglobal false) or top-level let (isglobal true,
// root accessed via LEAQ name(SB), CX).
export fn dotchainresolve(c: *cgen, n: *node, out: *dotchain) bool = {
out.rootname = "";
out.rootoff = 0i64;
out.isglobal = false;
out.totaloff = 0i64;
out.leaffi = nil;
out.slicedelta = -1i64;
if (n == nil) { return false; };
if (n.kind != nkind.N_DOT) { return false; };
// Walk inward, recording the N_DOT node at each step (leaf first).
// We hold *node pointers (8B each, slotsize-stable across stages)
// and read .str on demand — a [16]str array would mis-slot at
// wwstage where slotsize("str") returns 8, breaking the bootstrap
// fixed-point.
let stk: [16]*node;
let nsteps: i32 = 0;
let cur: *node = n;
for (cur != nil) {
if (cur.kind != nkind.N_DOT) { break; };
if (nsteps >= 16) { return false; };
stk[nsteps] = cur;
nsteps += 1;
cur = cur.lhs;
};
if (nsteps < 2) { return false; };
if (cur == nil) { return false; };
if (cur.kind != nkind.N_IDENT) { return false; };
out.rootname = cur.str;
// Resolve the root's struct type and base.
let rootstruct: str = "";
let lc: *local = localfindnode(c, cur.str);
let gsi: *structinfo = nil;
if (lc != nil) {
if (lc.tnode != nil) {
if (lc.tnode.kind == nkind.N_TNAME) {
rootstruct = lc.tnode.str;
out.rootoff = lc.off: i64;
};
};
};
if (rootstruct.len == 0) {
gsi = letvarstructinfo(c, cur.str);
if (gsi != nil) {
rootstruct = gsi.sname;
out.isglobal = true;
};
};
if (rootstruct.len == 0) { return false; };
// Walk outward, resolving each field. stk is leaf-first; iterate
// from i = nsteps - 1 (the root-most field) down to i = 0 (leaf).
let curstruct: str = rootstruct;
// Pre-declare per-iteration spills here so cstage / wwstage agree
// on the frame layout. Both must emit byte-identical asm for the
// bootstrap fixed-point (tests 993/995) — letting these locals get
// declared inside the branch bodies trips a per-stage divergence in
// slot counting.
let stepnd: *node = nil;
let stepnm: str = "";
let fi: *fieldinfo = nil;
let found: *fieldinfo = nil;
let ft: *node = nil;
let s0nd: *node = nil;
let pseudo: str = "";
let delta: i64 = 0i64;
let i: i32 = nsteps - 1;
for (i >= 0) {
let csi: *structinfo = structlookup(c, curstruct);
if (csi == nil) { return false; };
// Materialise the *node first; wwstage's cgen mis-emits the
// chained shape `stk[i].str` directly (task #8 — loses BX
// between the index load and the field deref), so always
// spill to an intermediate local before reading the str
// field. The cstage emits the same pattern for byte-identity.
stepnd = stk[i];
if (stepnd == nil) { return false; };
stepnm = stepnd.str;
fi = csi.fields;
found = nil;
for (fi != nil) {
if (streq(fi.fname, stepnm)) { found = fi; break; };
fi = fi.finext;
};
if (found == nil) { return false; };
if (i == 0) {
out.totaloff = out.totaloff + (found.foff: i64);
out.leaffi = found;
return true;
};
// Intermediate step. Must be a nested value-struct, OR a slice/
// str field with the leaf (i == 1, stk[0]) as a pseudo-field.
ft = found.tnode;
if (ft == nil) { return false; };
if (ft.kind == nkind.N_TNAME) {
if (streq(ft.str, "str")) {
if (i != 1) { return false; };
s0nd = stk[0];
if (s0nd == nil) { return false; };
pseudo = s0nd.str;
delta = -1i64;
if (streq(pseudo, "ptr")) { delta = 0i64; }
else { if (streq(pseudo, "len")) { delta = 8i64; }; };
if (delta < 0i64) { return false; };
out.totaloff = out.totaloff + (found.foff: i64);
out.slicedelta = delta;
return true;
};
if (primsize(ft.str) != 0) { return false; };
// Nested value-struct (named).
out.totaloff = out.totaloff + (found.foff: i64);
curstruct = ft.str;
i -= 1;
} else { if (ft.kind == nkind.N_TSLICE) {
if (i != 1) { return false; };
s0nd = stk[0];
if (s0nd == nil) { return false; };
pseudo = s0nd.str;
delta = -1i64;
if (streq(pseudo, "ptr")) { delta = 0i64; }
else { if (streq(pseudo, "len")) { delta = 8i64; }
else { if (streq(pseudo, "cap")) { delta = 16i64; }; }; };
if (delta < 0i64) { return false; };
out.totaloff = out.totaloff + (found.foff: i64);
out.slicedelta = delta;
return true;
} else {
return false;
}; };
};
return false;
};
// MODULE: wcc
// selfhost/cmd/wcc/cgenexpr.ww — split out of cgen.ww.
//
@@ -9324,6 +9493,99 @@ fn cgdot(c: *cgen, n: *node) void = {
return;
};
};
// Chained N_DOT spine through value-struct fields (any depth).
// Walks the spine to a root ident, summing field offsets, then
// emits ONE load at base + total_off. Also handles a slice/str
// pseudo-field leaf (`b.buf.len`): the walk lands on the slice/
// str header and slicedelta picks ptr/len/cap. Mirror of cstage
// cgen.c's chained-DOT read branch. Without this, depth ≥ 3
// shapes (`v.a.a.a`) and `b.buf.len` fall through to the non-
// ident-base pseudo branch below — which would cgexpr the inner
// (loading only .ptr into AX) and shuffle stale BX into AX.
// Placed BEFORE the .ptr/.len fast paths so the chain wins.
if (lhs != nil) {
if (lhs.kind == nkind.N_DOT) {
let r: dotchain;
let pok: bool = dotchainresolve(c, n, &r);
if (pok) {
if (r.slicedelta >= 0i64) {
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\tMOVQ\t");
emitdispreg(r.totaloff + r.slicedelta, "CX");
emitline(", AX\n");
} else {
emitline("\tMOVQ\t");
emitoff(r.rootoff + r.totaloff + r.slicedelta);
emitline("(BP), AX\n");
};
return;
};
if (isstrtype(c, r.leaffi.tnode)) {
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\tMOVQ\t");
emitdispreg(r.totaloff + 0i64, "CX");
emitline(", AX\n");
emitline("\tMOVQ\t");
emitdispreg(r.totaloff + 8i64, "CX");
emitline(", BX\n");
} else {
emitline("\tMOVQ\t");
emitoff(r.rootoff + r.totaloff);
emitline("(BP), AX\n");
emitline("\tMOVQ\t");
emitoff(r.rootoff + r.totaloff + 8i64);
emitline("(BP), BX\n");
};
return;
};
if (isfloattype(c, r.leaffi.tnode)) {
let mov: str = "MOVSD";
if (isf32type(c, r.leaffi.tnode)) { mov = "MOVSS"; };
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\t");
emitline(mov);
emitline("\t");
emitdispreg(r.totaloff, "CX");
emitline(", X0\n");
} else {
emitline("\t");
emitline(mov);
emitline("\t");
emitoff(r.rootoff + r.totaloff);
emitline("(BP), X0\n");
};
return;
};
let lop: str = fieldloadop(r.leaffi);
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\t");
emitline(lop);
emitline("\t");
emitdispreg(r.totaloff, "CX");
emitline(", AX\n");
} else {
emitline("\t");
emitline(lop);
emitline("\t");
emitoff(r.rootoff + r.totaloff);
emitline("(BP), AX\n");
};
return;
};
};
};
// Non-ident base pseudo-field: e.g. `"abc".ptr` / `"abc".len`.
// Evaluate the str-producing expression — that leaves
// (AX=ptr, BX=len). Then `.ptr` returns AX as is; `.len`
@@ -9393,6 +9655,9 @@ fn cgdot(c: *cgen, n: *node) void = {
// field. Mirror of the cgassign branch added for the same shape.
// Without this, `L.cur.kind` (cur a by-value struct of *L)
// falls into the SB-fallback and emits `MOVQ kind(SB), AX`.
// Kept as a fallback below the generalized walker above (placed
// earlier in cgdot) to preserve byte-identical output on shapes
// it already handles.
if (lhs != nil) {
if (lhs.kind == nkind.N_DOT) {
let inner: *node = lhs.lhs;
@@ -11158,6 +11423,101 @@ fn cgassign(c: *cgen, n: *node) void = {
};
};
};
// Chained N_DOT spine write through value-struct fields (any
// depth) — `o.i.a = 10`, `v.a.b.c = …`. Also handles a slice/str
// pseudo-field leaf (`b.buf.len = 5`). Mirror of cstage cgen.c's
// chained-DOT write branch. Without this, depth ≥ 3 writes and
// the slice/str pseudo-field write through a value-struct chain
// silently emit no store. Only plain `=` is wired.
if (lhs != nil) {
if (lhs.kind == nkind.N_DOT && lhs.lhs != nil
&& lhs.lhs.kind == nkind.N_DOT
&& n.op == tkind.TK_ASSIGN) {
let r: dotchain;
let yok: bool = dotchainresolve(c, lhs, &r);
if (yok) {
if (r.slicedelta >= 0i64) {
cgexpr(c, n.rhs);
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\tMOVQ\tAX, ");
emitdispreg(r.totaloff + r.slicedelta, "CX");
emitline("\n");
} else {
emitline("\tMOVQ\tAX, ");
emitoff(r.rootoff + r.totaloff + r.slicedelta);
emitline("(BP)\n");
};
return;
};
if (isstrtype(c, r.leaffi.tnode)) {
cgexpr(c, n.rhs);
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\tMOVQ\tAX, ");
emitdispreg(r.totaloff + 0i64, "CX");
emitline("\n");
emitline("\tMOVQ\tBX, ");
emitdispreg(r.totaloff + 8i64, "CX");
emitline("\n");
} else {
emitline("\tMOVQ\tAX, ");
emitoff(r.rootoff + r.totaloff);
emitline("(BP)\n");
emitline("\tMOVQ\tBX, ");
emitoff(r.rootoff + r.totaloff + 8i64);
emitline("(BP)\n");
};
return;
};
if (isfloattype(c, r.leaffi.tnode)) {
let mov: str = "MOVSD";
if (isf32type(c, r.leaffi.tnode)) { mov = "MOVSS"; };
cgexpr(c, n.rhs);
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\t");
emitline(mov);
emitline("\tX0, ");
emitdispreg(r.totaloff, "CX");
emitline("\n");
} else {
emitline("\t");
emitline(mov);
emitline("\tX0, ");
emitoff(r.rootoff + r.totaloff);
emitline("(BP)\n");
};
return;
};
let sop: str = fieldstoreop(r.leaffi);
cgexpr(c, n.rhs);
if (r.isglobal) {
emitline("\tLEAQ\t");
emitsymname(c, r.rootname);
emitline("(SB), CX\n");
emitline("\t");
emitline(sop);
emitline("\tAX, ");
emitdispreg(r.totaloff, "CX");
emitline("\n");
} else {
emitline("\t");
emitline(sop);
emitline("\tAX, ");
emitoff(r.rootoff + r.totaloff);
emitline("(BP)\n");
};
return;
};
};
};
// Chained `(ident).f1.f2 = v` where f1 is a struct-by-value
// field. The earlier chained-DOT branch handles f1: *T (deref
// then store). This handles f1: T (in-place sub-struct), which
@@ -11165,6 +11525,8 @@ fn cgassign(c: *cgen, n: *node) void = {
// to flatten `cur.kind`/`cur.ival`/... into top-level fields to
// work around it. Only plain `=` is wired; compound on a by-
// value sub-field hasn't surfaced.
// Kept as fallback below the generalized walker for any shape
// the walker doesn't recognize.
if (lhs != nil) {
if (lhs.kind == nkind.N_DOT) {
let base: *node = lhs.lhs;

221
test/wcc/650_dot_chain.c Normal file
View File

@@ -0,0 +1,221 @@
/*
* 650_dot_chain — chained dotted access through value-struct fields
* must compile to a single load/store at (base + sum-of-offsets),
* not silently lower to an undefined global symbol or shuffle stale
* registers. Drew filed this from worker-bufio when the Hare-shaped
* `scanner` embed in lib/bufio tripped the cgen.
*
* Each fixture exercises a different chain shape. The repro from
* drew's bug report is row[0]; the rest pin: 3-deep chains, slice
* pseudo-field tails (`s.buf.len`), global-rooted chains, and
* mixed leaf widths (u8 / i32 / u32). `&o.i.a` address-of and i8
* sign-extend leaves are deferred (tasks #9 / #10).
*
* Exercises both stages via `ww` (cstage) and `ww_ww` (wwstage)
* when present, so a regression on either side is caught here.
*/
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <unistd.h>
#include <sys/stat.h>
#include <sys/wait.h>
static int
runwait(const char *cmd)
{
int rc = system(cmd);
if (rc == -1) return -1;
if (WIFEXITED(rc)) return WEXITSTATUS(rc);
return -1;
}
struct row { const char *label; const char *src; int want; };
static const struct row rows[] = {
/* Drew's repro: 2-deep value-struct read AND write. Returns
* o.i.a (=10) + o.x (=5) = 15. */
{ "drew_2deep_read_write",
"type inner = struct { a: i32, b: i32, c: i32 };\n"
"type outer = struct { i: inner, x: i32 };\n"
"fn main() i32 = {\n"
" let o: outer; o.i.a = 10; o.x = 5;\n"
" return o.i.a + o.x;\n"
"};\n",
15 },
/* 3-deep value-struct chain. Proves the spine walker is loop-
* shaped, not hardcoded to depth 2. */
{ "value_struct_3deep",
"type a3 = struct { a: i32 };\n"
"type a2 = struct { a: a3 };\n"
"type a1 = struct { a: a2 };\n"
"fn main() i32 = {\n"
" let v: a1;\n"
" v.a.a.a = 7;\n"
" return v.a.a.a;\n"
"};\n",
7 },
/* Slice pseudo-field tail through a value-struct field: write
* .ptr/.len/.cap on s.buf where buf: []u8 is a struct field.
* Read back .len through the same chain. */
{ "slice_field_pseudo",
"type bag = struct { buf: []u8, x: i32 };\n"
"fn main() i32 = {\n"
" let arr: [8]u8;\n"
" let i: i32 = 0;\n"
" for (i < 8) { arr[i] = i: u8; i = i + 1; };\n"
" let b: bag;\n"
" b.buf.ptr = &arr[0];\n"
" b.buf.len = 5;\n"
" b.buf.cap = 8;\n"
" b.x = 0;\n"
" return b.buf.len;\n"
"};\n",
5 },
/* u8 leaf through a chained struct: round-trips a single byte
* unchanged (no narrow cast in play — direct MOVB write +
* MOVZBQ read). Pins the leaf-width dispatch in the walker. */
{ "u8_leaf_through_chain",
"type holder = struct { val: u8, pad: u8 };\n"
"type box = struct { h: holder, tag: i32 };\n"
"fn main() i32 = {\n"
" let b: box;\n"
" b.h.val = 99u8;\n"
" b.h.pad = 0u8;\n"
" b.tag = 0;\n"
" return b.h.val: i32;\n"
"};\n",
99 },
/* i32 leaf through a chained struct, value > 255 to confirm the
* MOVL store width (not silently narrowed to MOVB). Returns 42
* iff the full 4-byte value round-trips. */
{ "i32_leaf_through_chain",
"type holder = struct { val: i32, pad: i32 };\n"
"type box = struct { h: holder, tag: i32 };\n"
"fn main() i32 = {\n"
" let b: box;\n"
" b.h.val = 0x12345;\n"
" b.h.pad = 0;\n"
" b.tag = 0;\n"
" if (b.h.val == 0x12345) { return 42; };\n"
" return 0;\n"
"};\n",
42 },
/* u32 leaf through a chained struct. Distinct write + read at
* the chained leaf, value chosen so the MOVL store + load
* round-trip preserves all four bytes. */
{ "u32_leaf_through_chain",
"type holder = struct { val: u32, pad: u32 };\n"
"type box = struct { h: holder, tag: i32 };\n"
"fn main() i32 = {\n"
" let b: box;\n"
" b.h.val = 4321u32;\n"
" b.h.pad = 0u32;\n"
" b.tag = 0;\n"
" if (b.h.val == 4321u32) { return 42; };\n"
" return 0;\n"
"};\n",
42 },
/* Global-rooted chain: write+read through a top-level `let g`.
* Pins the LEAQ name(SB), CX → MOVQ disp(CX) path on both
* stages (the local-rooted rows above pin the BP-relative
* path). 11 + 3 = 14. */
{ "global_root_chain",
"type inner = struct { a: i32, b: i32 };\n"
"type outer = struct { i: inner, x: i32 };\n"
"let g: outer;\n"
"fn main() i32 = {\n"
" g.i.a = 11; g.x = 3;\n"
" return g.i.a + g.x;\n"
"};\n",
14 },
};
static int
run_driver(const char *driver, const struct row *r, int i)
{
char src[64], tmpdir[64], cmd[1024];
snprintf(src, sizeof src, "/tmp/wdc_%d_%d.ww", getpid(), i);
snprintf(tmpdir, sizeof tmpdir, "/tmp/wdc_%d_d_%d", getpid(), i);
FILE *f = fopen(src, "wb");
if (!f) return -1;
fputs(r->src, f);
fclose(f);
mkdir(tmpdir, 0755);
snprintf(cmd, sizeof cmd, "cd %s && %s build %s",
tmpdir, driver, src);
if (runwait(cmd) != 0) {
fprintf(stderr, "row[%s]: build via %s failed\n",
r->label, driver);
unlink(src); rmdir(tmpdir);
return -1;
}
const char *base = strrchr(src, '/');
base = base ? base + 1 : src;
char outbin[128];
snprintf(outbin, sizeof outbin, "%s/%s", tmpdir, base);
char *dot = strrchr(outbin, '.');
if (dot && strcmp(dot, ".ww") == 0) *dot = '\0';
int got = runwait(outbin);
unlink(src); unlink(outbin); rmdir(tmpdir);
return got;
}
int
main(void)
{
const char *bin = getenv("BIN");
if (!bin) bin = "out/bin";
char absbin[1024];
if (bin[0] != '/') {
char cwd[1024];
if (getcwd(cwd, sizeof cwd) == NULL) return 1;
snprintf(absbin, sizeof absbin, "%s/%s", cwd, bin);
bin = absbin;
}
char cdrv[1024];
snprintf(cdrv, sizeof cdrv, "%s/ww", bin);
char wdrv[1024];
snprintf(wdrv, sizeof wdrv, "%s/ww_ww", bin);
struct { const char *name; const char *path; int gated_on_existence; }
drivers[] = {
{ "cstage", cdrv, 0 },
{ "wwstage", wdrv, 1 },
{ NULL, NULL, 0 },
};
int n = (int)(sizeof rows / sizeof rows[0]);
int total = 0, fail = 0;
for (int d = 0; drivers[d].name; d++) {
if (drivers[d].gated_on_existence
&& access(drivers[d].path, X_OK) != 0) {
fprintf(stderr, "dot_chain: skip %s (no %s)\n",
drivers[d].name, drivers[d].path);
continue;
}
for (int i = 0; i < n; i++) {
int got = run_driver(drivers[d].path, &rows[i], i);
total++;
if (got != rows[i].want) {
fprintf(stderr,
"dot_chain[%s][%s]: exit=%d want=%d\n",
drivers[d].name, rows[i].label,
got, rows[i].want);
fail++;
}
}
}
if (fail) {
fprintf(stderr,
"dot_chain: %d/%d fixtures failed\n", fail, total);
return 1;
}
printf("dot_chain: %d/%d ok\n", total, total);
return 0;
}