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Checking them turned up claims that were wrong, not just outdated: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

11 KiB
Raw Blame History

std — Store Doubleword

Category: Memory · Form: DS · Opcode: 0xf8000000

Assembler Mnemonics

Mnemonic XML entry Flags Description
std std Store Doubleword
stdu stdu Store Doubleword with Update
stdux stdux Store Doubleword with Update Indexed
stdx stdx Store Doubleword Indexed

Syntax

std [RS], [ds]([RA0])
stdu [RS], [ds]([RA])
stdux [RS], [RA], [RB]
stdx [RS], [RA0], [RB]

Encoding

std — form DS

  • Opcode word: 0xf8000000
  • Primary opcode (bits 05): 62
  • Extended opcode:
  • Synchronising: no
Bits Field Meaning
05 OPCD primary opcode
610 RT destination GPR (or RS)
1115 RA source GPR (0 ⇒ literal 0)
1629 DS 14-bit signed word-scaled displacement
3031 XO extended opcode

stdu — form DS

  • Opcode word: 0xf8000001
  • Primary opcode (bits 05): 62
  • Extended opcode:
  • Synchronising: no
Bits Field Meaning
05 OPCD primary opcode
610 RT destination GPR (or RS)
1115 RA source GPR (0 ⇒ literal 0)
1629 DS 14-bit signed word-scaled displacement
3031 XO extended opcode

stdux — form X

  • Opcode word: 0x7c00016a
  • Primary opcode (bits 05): 31
  • Extended opcode: 181
  • Synchronising: no
Bits Field Meaning
05 OPCD primary opcode
610 RT/FRT/VRT destination
1115 RA/FRA/VRA source A
1620 RB/FRB/VRB source B
2130 XO extended opcode (10 bits)
31 Rc record-form flag

stdx — form X

  • Opcode word: 0x7c00012a
  • Primary opcode (bits 05): 31
  • Extended opcode: 149
  • Synchronising: no
Bits Field Meaning
05 OPCD primary opcode
610 RT/FRT/VRT destination
1115 RA/FRA/VRA source A
1620 RB/FRB/VRB source B
2130 XO extended opcode (10 bits)
31 Rc record-form flag

Operands

Field Role Description
RS std: read; stdu: read; stdux: read; stdx: read Source GPR (alias for RD in some stores).
RA std: read; stdu: read; stdu: write; stdux: read; stdux: write Source GPR (r0r31).
ds std: read; stdu: read 14-bit signed word-aligned displacement (DS << 2).
RB stdux: read; stdx: read Source GPR.
RA0 stdx: read Source GPR; when the encoded register number is 0 the operand is the literal 64-bit zero, not r0.

Register Effects

std

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

stdu

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

stdux

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

stdx

  • 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(ds || 0b00)
MEM(EA, 8) <- (RS)

C Translation Example

/* No hand-written C yet. Translate the Canary emitter snapshot   */
/* under Implementation References; its HIR maps directly:        */
/*   f.LoadGPR(n) / f.StoreGPR(n, v)  -> r[n] / r[n] = v          */
/*   f.LoadFPR / StoreFPR, f.LoadVR / StoreVR -> f[n], v[n]        */
/*   f.Load(ea, T), f.Store(ea, v) -> raw read / write; emitters   */
/*     wrap them in f.ByteSwap for the big-endian guest value      */
/*   f.UpdateCR(n, v)  -> CR field n from v's LOW 32 BITS vs 0     */
/*   f.LoadCA / f.StoreCA -> xer.CA;  f.StoreSAT -> vscr.SAT       */
/*   i.XO.RA, i.D.DS, ... -> the bit-fields listed under Operands  */
/* The Register Effects and Status-Register Effects tables above  */
/* enumerate every side effect a faithful translation must emit.  */

Implementation References

std

Canary emitter (frozen snapshot @ f21ebd49e9)
int InstrEmit_std(PPCHIRBuilder& f, const InstrData& i) {
  // if RA = 0 then
  //   b <- 0
  // else
  //   b <- (RA)
  // EA <- b + EXTS(DS || 0b00)
  // MEM(EA, 8) <- (RS)
  Value* b;
  if (i.DS.RA == 0) {
    b = f.LoadZeroInt64();
  } else {
    b = f.LoadGPR(i.DS.RA);
  }

  Value* offset = f.LoadConstantInt64(XEEXTS16(i.DS.DS << 2));
  f.StoreOffset(b, offset, f.ByteSwap(f.LoadGPR(i.DS.RT)));
  return 0;
}

stdu

Canary emitter (frozen snapshot @ f21ebd49e9)
int InstrEmit_stdu(PPCHIRBuilder& f, const InstrData& i) {
  // EA <- (RA) + EXTS(DS || 0b00)
  // MEM(EA, 8) <- (RS)
  // RA <- EA
  Value* ea = CalculateEA_i(f, i.DS.RA, XEEXTS16(i.DS.DS << 2));
  f.Store(ea, f.ByteSwap(f.LoadGPR(i.DS.RT)));
  StoreEA(f, i.DS.RA, ea);
  return 0;
}

stdux

Canary emitter (frozen snapshot @ f21ebd49e9)
int InstrEmit_stdux(PPCHIRBuilder& f, const InstrData& i) {
  // EA <- (RA) + (RB)
  // MEM(EA, 8) <- (RS)
  // RA <- EA
  Value* ea = CalculateEA(f, i.X.RA, i.X.RB);
  f.Store(ea, f.ByteSwap(f.LoadGPR(i.X.RT)));
  StoreEA(f, i.X.RA, ea);
  return 0;
}

stdx

Canary emitter (frozen snapshot @ f21ebd49e9)
int InstrEmit_stdx(PPCHIRBuilder& f, const InstrData& i) {
  // if RA = 0 then
  //   b <- 0
  // else
  //   b <- (RA)
  // EA <- b + (RB)
  // MEM(EA, 8) <- (RS)
  Value* ea = CalculateEA_0(f, i.X.RA, i.X.RB);
  f.Store(ea, f.ByteSwap(f.LoadGPR(i.X.RT)));
  return 0;
}

Special Cases & Edge Conditions

  • DS-form, not D-form. Like ld, std uses a 14-bit signed displacement scaled by 4 (EXTS(ds || 0b00)). Bits 3031 are the extended opcode used to distinguish std (XO=0) from stdu (XO=1). Assemblers verify the byte displacement is a multiple of 4.
  • Big-endian write. The 64-bit value of RS is written most-significant-byte-first: RS[0:7] to EA, RS[56:63] to EA+7. Canary byte-swaps RS before the host store.
  • RA0 for std and stdx. When RA = 0, base is the literal zero. Update forms stdu / stdux invoke RA = 0 as an invalid form (no RA = RS collision possible — RS and RA are independent encoding fields, and even if equal the store reads RS first).
  • Update-form post-write. stdu / stdux write EA to RA after the store. Order is store-then-update.
  • Alignment. Xenon tolerates unaligned doubleword stores. PowerISA permits implementations to raise alignment exceptions; portable code keeps doublewords 8-byte aligned. Cache-inhibited storage may force alignment.
  • Cache-line behaviour. A doubleword store fits inside one Xenon cache line (128 B), so it's a single line write. A doubleword store that straddles a line boundary triggers two line accesses — keep doublewords 8-byte aligned to avoid the cost.
  • 64-bit pointer / counter stores. Xbox 360 user code is 32-bit, but kernel structures, TOC entries, and 64-bit counters are stored with std.
  • stw, sth, stb — narrower integer stores.
  • stdbrx — byte-reversed doubleword store.
  • stdcx — store-conditional (the doubleword reservation pair end).
  • ld, ldu, ldx, ldux — corresponding loads.
  • stfd — FP doubleword store (same width, different register file).

IBM Reference