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Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
2026-09-16 22:37:12 +02:00

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lvsr — Load Vector for Shift Right Indexed

Category: VMX (Altivec) · Form: X · Opcode: 0x7c00004c

Assembler Mnemonics

Mnemonic XML entry Flags Description
lvsr lvsr Load Vector for Shift Right Indexed
lvsr128 lvsr128 Load Vector for Shift Right Indexed 128

Syntax

lvsr [VD], [RA0], [RB]
lvsr128 [VD], [RA0], [RB]

Encoding

lvsr — form X

  • Opcode word: 0x7c00004c
  • Primary opcode (bits 05): 31
  • Extended opcode: 38
  • 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

lvsr128 — form VX128_1

  • Opcode word: 0x10000043
  • Primary opcode (bits 05): 4
  • Extended opcode: 67
  • Synchronising: no
Bits Field Meaning
05 OPCD primary opcode (4)
610 VD128l destination low 5 bits
1115 RA address register
1620 RB offset register
2127 XO extended opcode
2829 VD128h destination high 2 bits
3031 reserved

Operands

Field Role Description
RA0 lvsr: read; lvsr128: read Source GPR; when the encoded register number is 0 the operand is the literal 64-bit zero, not r0.
RB lvsr: read; lvsr128: read Source GPR.
VD lvsr: write; lvsr128: write Destination vector register.

Register Effects

lvsr

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

lvsr128

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

Status-Register Effects

No condition-register or status-register effects.

Operation (pseudocode)

addr_lo <- ((RA|0) + (RB))[60:63]
for i in 0..15: VD[i] <- 16  addr_lo + i

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

lvsr

Canary emitter (frozen snapshot @ f21ebd49e9)
int InstrEmit_lvsr(PPCHIRBuilder& f, const InstrData& i) {
  return InstrEmit_lvsr_(f, i, i.X.RT, i.X.RA, i.X.RB);
}

// ── delegates to (src/xenia/cpu/ppc/ppc_emit_altivec.cc:118) ──
int InstrEmit_lvsr_(PPCHIRBuilder& f, const InstrData& i, uint32_t vd,
                    uint32_t ra, uint32_t rb) {
  Value* ea = CalculateEA_0(f, ra, rb);
  Value* sh = f.Truncate(f.And(ea, f.LoadConstantInt64(0xF)), INT8_TYPE);
  Value* v = f.LoadVectorShr(sh);
  f.StoreVR(vd, v);
  return 0;
}

lvsr128

Canary emitter (frozen snapshot @ f21ebd49e9)
int InstrEmit_lvsr128(PPCHIRBuilder& f, const InstrData& i) {
  return InstrEmit_lvsr_(f, i, VX128_1_VD128, i.VX128_1.RA, i.VX128_1.RB);
}

// ── delegates to (src/xenia/cpu/ppc/ppc_emit_altivec.cc:118) ──
int InstrEmit_lvsr_(PPCHIRBuilder& f, const InstrData& i, uint32_t vd,
                    uint32_t ra, uint32_t rb) {
  Value* ea = CalculateEA_0(f, ra, rb);
  Value* sh = f.Truncate(f.And(ea, f.LoadConstantInt64(0xF)), INT8_TYPE);
  Value* v = f.LoadVectorShr(sh);
  f.StoreVR(vd, v);
  return 0;
}

Special Cases & Edge Conditions

  • No memory access. Like lvsl, lvsr does not touch memory: the effective address is consumed solely to extract the low four bits, which then drive the synthesised permute mask in VD.
  • Mirror of lvsl. Where lvsl produces {sh, sh+1, …, sh+15}, lvsr produces {16sh, 17sh, …, 31sh}. When EA & 0xF == 0 the output is {16, 17, …, 31} — the identity permute that selects all of VB (in the vperm VD, VA, VB, VC orientation). When EA & 0xF == 3 the output is {13, 14, …, 28}, splitting the vperm between the high three bytes of VA and the low thirteen of VB.
  • Big-endian byte indexing. VD[0] is the most-significant byte (the byte at the lowest address after a stvx).
  • Right-shift unaligned-load idiom. Pair with two aligned lvx and a vperm when the source data is laid out so the wanted vector starts in the second aligned block:
    lvx   vAL, r0, rA           ; aligned block at EA & ~0xF
    lvx   vAH, r0, rA + 16      ; next aligned block
    lvsr  vC,  r0, rA           ; right-shift permute mask
    vperm vD,  vAH, vAL, vC     ; note: vAH then vAL — opposite of lvsl
    
    The argument flip versus the lvsl idiom is the whole reason both masks exist.
  • RA0 semantics. When RA = 0 the base is the literal zero, so lvsr vD, 0, rB derives the mask from rB & 0xF.
  • Selectors >15 are intentional. Inside vperm, byte selectors with bit 4 set (i.e. >= 16) index into the second source vector. lvsr deliberately produces values up to 31, since only the low five bits are honoured by vperm.
  • VMX128 sibling (lvsr128). Identical semantics; the extended VD128l ‖ VD128h encoding lets vD reach v0..v127.
  • No flags, no exceptions, trivially reorderable.
  • lvsl — the mirror: VD[i] = sh + i.
  • vperm — consumes the mask to perform arbitrary byte-level permutation across two vectors.
  • lvx, lvlx, lvrx — the actual memory loads that supply the two aligned halves.
  • vsldoi — when the misalignment is a compile-time constant, the static-offset shift is cheaper than the lvsr/vperm pair.

IBM Reference