Files
Sylpheed/tools/ppc-manual/memory/stw.md
sim f3c512f2ab docs(ppc-manual): check every xenia-rs claim against Canary's source
The hand-written parts of the manual still described how the retired
xenia-rs interpreter behaved: its snapshots, Rust casts and helpers. Each of
those 490 statements is now either restated as what Canary's emitters and
x64 backend actually do (at the pinned canary_experimental commit), or
dropped where it only made sense for xenia-rs.

Checking them turned up claims that were wrong, not just outdated:

- VSCR[SAT] is never modelled in Canary (DID_SATURATE is a stub and mfvscr
  cannot see it); the pages said saturating ops set it stickily.
- Canary does not implement lswi/lswx/stswi/stswx, dcbi, mtfsb0/mtfsb1,
  vmsum*, vmhaddshs, vupkhpx/vupklpx, and most SPRs; pages described them
  as working.
- Traps evaluate TO in Canary; stvebx/stvehx/stvewx store one element, not
  16 bytes; mtmsrd writes only EE; fres/frsqrte/vrsqrtefp precision claims
  and the stfs "rounds under RN / sets FPSCR" claim contradicted the spec.
- Reservations are a 64 KiB block bitmap plus a value compare, not
  per-address tracking.

Claims that neither Canary's source nor a public spec settles are marked
unverified (NI at boot, vmaddcfp128 operand order, estimate bit-exactness).

Generated regions are untouched; re-running the generator changes nothing.

Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
2026-09-16 21:52:38 +02:00

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stw — Store Word

Category: Memory · Form: D · Opcode: 0x90000000

Assembler Mnemonics

Mnemonic XML entry Flags Description
stw stw — Store Word
stwu stwu — Store Word with Update
stwux stwux — Store Word with Update Indexed
stwx stwx — Store Word Indexed

Syntax

stw [RS], [d]([RA0])
stwu [RS], [d]([RA])
stwux [RS], [RA], [RB]
stwx [RS], [RA0], [RB]

Encoding

stw — form D

  • Opcode word: 0x90000000
  • Primary opcode (bits 0–5): 36
  • Extended opcode: —
  • Synchronising: no
Bits Field Meaning
0–5 OPCD primary opcode
6–10 RT destination GPR (or RS when storing)
11–15 RA source GPR (0 ⇒ literal 0 for RA0 forms)
16–31 D/SI/UI 16-bit signed or unsigned immediate

stwu — form D

  • Opcode word: 0x94000000
  • Primary opcode (bits 0–5): 37
  • Extended opcode: —
  • Synchronising: no
Bits Field Meaning
0–5 OPCD primary opcode
6–10 RT destination GPR (or RS when storing)
11–15 RA source GPR (0 ⇒ literal 0 for RA0 forms)
16–31 D/SI/UI 16-bit signed or unsigned immediate

stwux — form X

  • Opcode word: 0x7c00016e
  • Primary opcode (bits 0–5): 31
  • Extended opcode: 183
  • Synchronising: no
Bits Field Meaning
0–5 OPCD primary opcode
6–10 RT/FRT/VRT destination
11–15 RA/FRA/VRA source A
16–20 RB/FRB/VRB source B
21–30 XO extended opcode (10 bits)
31 Rc record-form flag

stwx — form X

  • Opcode word: 0x7c00012e
  • Primary opcode (bits 0–5): 31
  • Extended opcode: 151
  • Synchronising: no
Bits Field Meaning
0–5 OPCD primary opcode
6–10 RT/FRT/VRT destination
11–15 RA/FRA/VRA source A
16–20 RB/FRB/VRB source B
21–30 XO extended opcode (10 bits)
31 Rc record-form flag

Operands

Field Role Description
RS stw: read; stwu: read; stwux: read; stwx: read Source GPR (alias for RD in some stores).
RA0 stw: read; stwx: read Source GPR; when the encoded register number is 0 the operand is the literal 64-bit zero, not r0.
d stw: read; stwu: read 16-bit signed displacement (d) added to the base address register.
RA stwu: read; stwu: write; stwux: read; stwux: write Source GPR (r0–r31).
RB stwux: read; stwx: read Source GPR.

Register Effects

stw

  • Reads (always): RS, RA0, d
  • Reads (conditional): none
  • Writes (always): none
  • Writes (conditional): none

stwu

  • Reads (always): RS, RA, d
  • Reads (conditional): none
  • Writes (always): RA
  • Writes (conditional): none

stwux

  • Reads (always): RS, RA, RB
  • Reads (conditional): none
  • Writes (always): RA
  • Writes (conditional): none

stwx

  • Reads (always): RS, RA0, RB
  • Reads (conditional): none
  • Writes (always): none
  • Writes (conditional): none

Status-Register Effects

No condition-register or status-register effects.

Operation (pseudocode)

EA <- (RA|0) + EXTS(d)
MEM(EA, 4) <- (RS)[32:63]

C Translation Example

/* stw RS, d(RA)                                                   */
uint64_t base = (insn.RA == 0) ? 0 : r[insn.RA];
uint32_t ea   = (uint32_t)(base + (int64_t)(int16_t)insn.D);
mem_write_u32_be(ea, (uint32_t)r[insn.RS]);

Implementation References

stw

Canary emitter (frozen snapshot @ f21ebd49e9)
int InstrEmit_stw(PPCHIRBuilder& f, const InstrData& i) {
  // if RA = 0 then
  //   b <- 0
  // else
  //   b <- (RA)
  // EA <- b + EXTS(D)
  // MEM(EA, 4) <- (RS)[32:63]
  Value* b;
  if (i.D.RA == 0) {
    b = f.LoadZeroInt64();
  } else {
    b = f.LoadGPR(i.D.RA);
  }
  Value* offset = f.LoadConstantInt64(XEEXTS16(i.D.DS));
  f.StoreOffset(b, offset,
                f.ByteSwap(f.Truncate(f.LoadGPR(i.D.RT), INT32_TYPE)));

  return 0;
}

stwu

Canary emitter (frozen snapshot @ f21ebd49e9)
int InstrEmit_stwu(PPCHIRBuilder& f, const InstrData& i) {
  // EA <- (RA) + EXTS(D)
  // MEM(EA, 4) <- (RS)[32:63]
  // RA <- EA
  Value* ea = CalculateEA_i(f, i.D.RA, XEEXTS16(i.D.DS));
  f.Store(ea, f.ByteSwap(f.Truncate(f.LoadGPR(i.D.RT), INT32_TYPE)));
  StoreEA(f, i.D.RA, ea);
  return 0;
}

stwux

Canary emitter (frozen snapshot @ f21ebd49e9)
int InstrEmit_stwux(PPCHIRBuilder& f, const InstrData& i) {
  // EA <- (RA) + (RB)
  // MEM(EA, 4) <- (RS)[32:63]
  // RA <- EA
  Value* ea = CalculateEA(f, i.X.RA, i.X.RB);
  f.Store(ea, f.ByteSwap(f.Truncate(f.LoadGPR(i.X.RT), INT32_TYPE)));
  StoreEA(f, i.X.RA, ea);
  return 0;
}

stwx

Canary emitter (frozen snapshot @ f21ebd49e9)
int InstrEmit_stwx(PPCHIRBuilder& f, const InstrData& i) {
  // if RA = 0 then
  //   b <- 0
  // else
  //   b <- (RA)
  // EA <- b + (RB)
  // MEM(EA, 4) <- (RS)[32:63]
  Value* ea = CalculateEA_0(f, i.X.RA, i.X.RB);
  f.Store(ea, f.ByteSwap(f.Truncate(f.LoadGPR(i.X.RT), INT32_TYPE)));
  return 0;
}

Special Cases & Edge Conditions

  • Stores low 32 bits of RS. Writes (RS)[32:63] — the low word of the 64-bit GPR — at EA. Canary stores ByteSwap(Truncate(RS, INT32)). The high 32 bits are silently truncated; use std to store all 64 bits.
  • Big-endian write. RS[32:39] (the most-significant byte of the low word) lands at EA; RS[56:63] at EA+3. On little-endian hosts the byte-swap happens at the memory boundary.
  • RA0 (non-update forms). RA = 0 in stw and stwx selects literal zero. Update forms stwu / stwux invoke RA = 0 as an invalid form. The classic frame-allocation idiom stwu r1, -framesize(r1) exploits the update form: it writes the old SP at the new SP and updates r1 in one instruction.
  • Update-form post-write. stwu / stwux write EA to RA after the store. Order is store-then-update, so the new RA value reflects the post-update address (typically the new stack-frame base).
  • No alignment requirement. Xenon tolerates unaligned word stores. PowerISA permits implementations to raise alignment exceptions on cache-inhibited storage.
  • Cache-line behaviour. A word store fits inside one Xenon cache line (128 B). Stores that straddle a line boundary touch two lines; keep words 4-byte aligned for best performance.
  • Common as pointer / ABI store. Standard store for any int32_t/uint32_t/pointer field (Xbox 360 user pointers are 32-bit) and the workhorse of stack-frame setup.

IBM Reference