Files
Xenia-Canary/src/alloy/frontend/ppc/ppc_emit_altivec.cc
2013-12-15 13:58:40 -08:00

2036 lines
72 KiB
C++

/*
******************************************************************************
* Xenia : Xbox 360 Emulator Research Project *
******************************************************************************
* Copyright 2013 Ben Vanik. All rights reserved. *
* Released under the BSD license - see LICENSE in the root for more details. *
******************************************************************************
*/
#include <alloy/frontend/ppc/ppc_emit-private.h>
#include <alloy/frontend/ppc/ppc_context.h>
#include <alloy/frontend/ppc/ppc_function_builder.h>
using namespace alloy::frontend::ppc;
using namespace alloy::hir;
using namespace alloy::runtime;
namespace alloy {
namespace frontend {
namespace ppc {
#define SHUFPS_SWAP_DWORDS 0x1B
// Most of this file comes from:
// http://biallas.net/doc/vmx128/vmx128.txt
// https://github.com/kakaroto/ps3ida/blob/master/plugins/PPCAltivec/src/main.cpp
#define OP(x) ((((uint32_t)(x)) & 0x3f) << 26)
#define VX128(op, xop) (OP(op) | (((uint32_t)(xop)) & 0x3d0))
#define VX128_1(op, xop) (OP(op) | (((uint32_t)(xop)) & 0x7f3))
#define VX128_2(op, xop) (OP(op) | (((uint32_t)(xop)) & 0x210))
#define VX128_3(op, xop) (OP(op) | (((uint32_t)(xop)) & 0x7f0))
#define VX128_4(op, xop) (OP(op) | (((uint32_t)(xop)) & 0x730))
#define VX128_5(op, xop) (OP(op) | (((uint32_t)(xop)) & 0x10))
#define VX128_P(op, xop) (OP(op) | (((uint32_t)(xop)) & 0x630))
#define VX128_VD128 (i.VX128.VD128l | (i.VX128.VD128h << 5))
#define VX128_VA128 (i.VX128.VA128l | (i.VX128.VA128h << 5) | (i.VX128.VA128H << 6))
#define VX128_VB128 (i.VX128.VB128l | (i.VX128.VB128h << 5))
#define VX128_1_VD128 (i.VX128_1.VD128l | (i.VX128_1.VD128h << 5))
#define VX128_2_VD128 (i.VX128_2.VD128l | (i.VX128_2.VD128h << 5))
#define VX128_2_VA128 (i.VX128_2.VA128l | (i.VX128_2.VA128h << 5) | (i.VX128_2.VA128H << 6))
#define VX128_2_VB128 (i.VX128_2.VB128l | (i.VX128_2.VD128h << 5))
#define VX128_2_VC (i.VX128_2.VC)
#define VX128_3_VD128 (i.VX128_3.VD128l | (i.VX128_3.VD128h << 5))
#define VX128_3_VB128 (i.VX128_3.VB128l | (i.VX128_3.VB128h << 5))
#define VX128_3_IMM (i.VX128_3.IMM)
#define VX128_5_VD128 (i.VX128_5.VD128l | (i.VX128_5.VD128h << 5))
#define VX128_5_VA128 (i.VX128_5.VA128l | (i.VX128_5.VA128h << 5))
#define VX128_5_VB128 (i.VX128_5.VB128l | (i.VX128_5.VB128h << 5))
#define VX128_5_SH (i.VX128_5.SH)
#define VX128_R_VD128 (i.VX128_R.VD128l | (i.VX128_R.VD128h << 5))
#define VX128_R_VA128 (i.VX128_R.VA128l | (i.VX128_R.VA128h << 5) | (i.VX128_R.VA128H << 6))
#define VX128_R_VB128 (i.VX128_R.VB128l | (i.VX128_R.VB128h << 5))
// namespace {
// // Shuffle masks to shift the values over and insert zeros from the low bits.
// static __m128i __shift_table_left[16] = {
// _mm_set_epi8(15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, 0), // unused
// _mm_set_epi8(14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, 0, 15),
// _mm_set_epi8(13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, 0, 15, 15),
// _mm_set_epi8(12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, 0, 15, 15, 15),
// _mm_set_epi8(11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, 0, 15, 15, 15, 15),
// _mm_set_epi8(10, 9, 8, 7, 6, 5, 4, 3, 2, 1, 0, 15, 15, 15, 15, 15),
// _mm_set_epi8( 9, 8, 7, 6, 5, 4, 3, 2, 1, 0, 15, 15, 15, 15, 15, 15),
// _mm_set_epi8( 8, 7, 6, 5, 4, 3, 2, 1, 0, 15, 15, 15, 15, 15, 15, 15),
// _mm_set_epi8( 7, 6, 5, 4, 3, 2, 1, 0, 15, 15, 15, 15, 15, 15, 15, 15),
// _mm_set_epi8( 6, 5, 4, 3, 2, 1, 0, 15, 15, 15, 15, 15, 15, 15, 15, 15),
// _mm_set_epi8( 5, 4, 3, 2, 1, 0, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15),
// _mm_set_epi8( 4, 3, 2, 1, 0, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15),
// _mm_set_epi8( 3, 2, 1, 0, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15),
// _mm_set_epi8( 2, 1, 0, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15),
// _mm_set_epi8( 1, 0, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15),
// _mm_set_epi8( 0, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15),
// };
// static __m128i __shift_table_right[16] = {
// _mm_set_epi8( 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0), // unused
// _mm_set_epi8( 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 15),
// _mm_set_epi8( 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 15, 14),
// _mm_set_epi8( 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 15, 14, 13),
// _mm_set_epi8( 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 15, 14, 13, 12),
// _mm_set_epi8( 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 15, 14, 13, 12, 11),
// _mm_set_epi8( 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 15, 14, 13, 12, 11, 10),
// _mm_set_epi8( 0, 0, 0, 0, 0, 0, 0, 0, 0, 15, 14, 13, 12, 11, 10, 9),
// _mm_set_epi8( 0, 0, 0, 0, 0, 0, 0, 0, 15, 14, 13, 12, 11, 10, 9, 8),
// _mm_set_epi8( 0, 0, 0, 0, 0, 0, 0, 15, 14, 13, 12, 11, 10, 9, 8, 7),
// _mm_set_epi8( 0, 0, 0, 0, 0, 0, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6),
// _mm_set_epi8( 0, 0, 0, 0, 0, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5),
// _mm_set_epi8( 0, 0, 0, 0, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4),
// _mm_set_epi8( 0, 0, 0, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3),
// _mm_set_epi8( 0, 0, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2),
// _mm_set_epi8( 0, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1),
// };
// }
XEEMITTER(dst, 0x7C0002AC, XDSS)(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(dstst, 0x7C0002EC, XDSS)(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(dss, 0x7C00066C, XDSS)(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(lvebx, 0x7C00000E, X )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(lvehx, 0x7C00004E, X )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
int InstrEmit_lvewx_(PPCFunctionBuilder& f, InstrData& i, uint32_t vd, uint32_t ra, uint32_t rb) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(lvewx, 0x7C00008E, X )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_lvewx_(f, i, i.X.RT, i.X.RA, i.X.RB);
}
XEEMITTER(lvewx128, VX128_1(4, 131), VX128_1)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_lvewx_(f, i, i.X.RT, i.X.RA, i.X.RB);
}
int InstrEmit_lvsl_(PPCFunctionBuilder& f, InstrData& i, uint32_t vd, uint32_t ra, uint32_t rb) {
Value* ea = ra ? f.Add(f.LoadGPR(ra), f.LoadGPR(rb)) : f.LoadGPR(rb);
Value* sh = f.Truncate(f.And(ea, f.LoadConstant((int64_t)0xF)), INT8_TYPE);
Value* v = f.LoadVectorShl(sh);
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(lvsl, 0x7C00000C, X )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_lvsl_(f, i, i.X.RT, i.X.RA, i.X.RB);
}
XEEMITTER(lvsl128, VX128_1(4, 3), VX128_1)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_lvsl_(f, i, i.X.RT, i.X.RA, i.X.RB);
}
int InstrEmit_lvsr_(PPCFunctionBuilder& f, InstrData& i, uint32_t vd, uint32_t ra, uint32_t rb) {
Value* ea = ra ? f.Add(f.LoadGPR(ra), f.LoadGPR(rb)) : f.LoadGPR(rb);
Value* sh = f.Truncate(f.And(ea, f.LoadConstant((int64_t)0xF)), INT8_TYPE);
Value* v = f.LoadVectorShr(sh);
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(lvsr, 0x7C00004C, X )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_lvsr_(f, i, i.X.RT, i.X.RA, i.X.RB);
}
XEEMITTER(lvsr128, VX128_1(4, 67), VX128_1)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_lvsr_(f, i, i.X.RT, i.X.RA, i.X.RB);
}
int InstrEmit_lvx_(PPCFunctionBuilder& f, InstrData& i, uint32_t vd, uint32_t ra, uint32_t rb) {
Value* ea = ra ? f.Add(f.LoadGPR(ra), f.LoadGPR(rb)) : f.LoadGPR(rb);
f.StoreVR(vd, f.ByteSwap(f.Load(ea, VEC128_TYPE)));
return 0;
}
XEEMITTER(lvx, 0x7C0000CE, X )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_lvx_(f, i, i.X.RT, i.X.RA, i.X.RB);
}
XEEMITTER(lvx128, VX128_1(4, 195), VX128_1)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_lvx_(f, i, VX128_1_VD128, i.VX128_1.RA, i.VX128_1.RB);
}
XEEMITTER(lvxl, 0x7C0002CE, X )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_lvx(f, i);
}
XEEMITTER(lvxl128, VX128_1(4, 707), VX128_1)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_lvx128(f, i);
}
XEEMITTER(stvebx, 0x7C00010E, X )(PPCFunctionBuilder& f, InstrData& i) {
Value* ea = i.X.RA ? f.Add(f.LoadGPR(i.X.RA), f.LoadGPR(i.X.RB)) : f.LoadGPR(i.X.RB);
Value* el = f.And(ea, f.LoadConstant(0xFull));
Value* v = f.Extract(f.LoadVR(i.X.RT), el, INT8_TYPE);
f.Store(ea, v);
return 0;
}
XEEMITTER(stvehx, 0x7C00014E, X )(PPCFunctionBuilder& f, InstrData& i) {
Value* ea = i.X.RA ? f.Add(f.LoadGPR(i.X.RA), f.LoadGPR(i.X.RB)) : f.LoadGPR(i.X.RB);
ea = f.And(ea, f.LoadConstant(~0x1ull));
Value* el = f.Shr(f.And(ea, f.LoadConstant(0xFull)), 1);
Value* v = f.Extract(f.LoadVR(i.X.RT), el, INT16_TYPE);
f.Store(ea, f.ByteSwap(v));
return 0;
}
int InstrEmit_stvewx_(PPCFunctionBuilder& f, InstrData& i, uint32_t vd, uint32_t ra, uint32_t rb) {
Value* ea = ra ? f.Add(f.LoadGPR(ra), f.LoadGPR(rb)) : f.LoadGPR(rb);
ea = f.And(ea, f.LoadConstant(~0x3ull));
Value* el = f.Shr(f.And(ea, f.LoadConstant(0xFull)), 2);
Value* v = f.Extract(f.LoadVR(vd), el, INT32_TYPE);
f.Store(ea, f.ByteSwap(v));
return 0;
}
XEEMITTER(stvewx, 0x7C00018E, X )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_stvewx_(f, i, i.X.RT, i.X.RA, i.X.RB);
}
XEEMITTER(stvewx128, VX128_1(4, 387), VX128_1)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_stvewx_(f, i, i.X.RT, i.X.RA, i.X.RB);
}
int InstrEmit_stvx_(PPCFunctionBuilder& f, InstrData& i, uint32_t vd, uint32_t ra, uint32_t rb) {
Value* ea = ra ? f.Add(f.LoadGPR(ra), f.LoadGPR(rb)) : f.LoadGPR(rb);
f.Store(ea, f.ByteSwap(f.LoadVR(vd)));
return 0;
}
XEEMITTER(stvx, 0x7C0001CE, X )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_stvx_(f, i, i.X.RT, i.X.RA, i.X.RB);
}
XEEMITTER(stvx128, VX128_1(4, 451), VX128_1)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_stvx_(f, i, VX128_1_VD128, i.VX128_1.RA, i.VX128_1.RB);
}
XEEMITTER(stvxl, 0x7C0003CE, X )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_stvx(f, i);
}
XEEMITTER(stvxl128, VX128_1(4, 963), VX128_1)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_stvx128(f, i);
}
// The lvlx/lvrx/etc instructions are in Cell docs only:
// https://www-01.ibm.com/chips/techlib/techlib.nsf/techdocs/C40E4C6133B31EE8872570B500791108/$file/vector_simd_pem_v_2.07c_26Oct2006_cell.pdf
int InstrEmit_lvlx_(PPCFunctionBuilder& f, InstrData& i, uint32_t vd, uint32_t ra, uint32_t rb) {
Value* ea = ra ? f.Add(f.LoadGPR(ra), f.LoadGPR(rb)) : f.LoadGPR(rb);
Value* eb = f.And(f.Truncate(ea, INT8_TYPE), f.LoadConstant((int8_t)0xF));
// ea &= ~0xF (load takes care of this)
// v = (new << eb)
Value* v = f.Permute(
f.LoadVectorShl(eb),
f.ByteSwap(f.Load(ea, VEC128_TYPE)),
f.LoadZero(VEC128_TYPE),
INT8_TYPE);
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(lvlx, 0x7C00040E, X )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_lvlx_(f, i, i.X.RT, i.X.RA, i.X.RB);
}
XEEMITTER(lvlx128, VX128_1(4, 1027), VX128_1)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_lvlx_(f, i, VX128_1_VD128, i.VX128_1.RA, i.VX128_1.RB);
}
XEEMITTER(lvlxl, 0x7C00060E, X )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_lvlx(f, i);
}
XEEMITTER(lvlxl128, VX128_1(4, 1539), VX128_1)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_lvlx128(f, i);
}
int InstrEmit_lvrx_(PPCFunctionBuilder& f, InstrData& i, uint32_t vd, uint32_t ra, uint32_t rb) {
Value* ea = ra ? f.Add(f.LoadGPR(ra), f.LoadGPR(rb)) : f.LoadGPR(rb);
Value* eb = f.And(f.Truncate(ea, INT8_TYPE), f.LoadConstant((int8_t)0xF));
// ea &= ~0xF (load takes care of this)
// v = (new >> (16 - eb))
Value* v = f.Permute(
f.LoadVectorShr(f.Sub(f.LoadConstant((int8_t)16), eb)),
f.LoadZero(VEC128_TYPE),
f.ByteSwap(f.Load(ea, VEC128_TYPE)),
INT8_TYPE);
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(lvrx, 0x7C00044E, X )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_lvrx_(f, i, i.X.RT, i.X.RA, i.X.RB);
}
XEEMITTER(lvrx128, VX128_1(4, 1091), VX128_1)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_lvrx_(f, i, VX128_1_VD128, i.VX128_1.RA, i.VX128_1.RB);
}
XEEMITTER(lvrxl, 0x7C00064E, X )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_lvrx(f, i);
}
XEEMITTER(lvrxl128, VX128_1(4, 1603), VX128_1)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_lvrx128(f, i);
}
int InstrEmit_stvlx_(PPCFunctionBuilder& f, InstrData& i, uint32_t vd, uint32_t ra, uint32_t rb) {
// NOTE: if eb == 0 (so 16b aligned) this equals new_value
// we could optimize this to prevent the other load/mask, in that case.
Value* ea = ra ? f.Add(f.LoadGPR(ra), f.LoadGPR(rb)) : f.LoadGPR(rb);
Value* eb = f.And(f.Truncate(ea, INT8_TYPE), f.LoadConstant((int8_t)0xF));
Value* new_value = f.LoadVR(vd);
// ea &= ~0xF (load takes care of this)
Value* old_value = f.ByteSwap(f.Load(ea, VEC128_TYPE));
// v = (new >> eb) | (old & (ONE << (16 - eb)))
Value* v = f.Permute(
f.LoadVectorShr(eb),
f.LoadZero(VEC128_TYPE),
new_value,
INT8_TYPE);
v = f.Or(
v,
f.And(
old_value,
f.Permute(
f.LoadVectorShl(f.Sub(f.LoadConstant((int8_t)16), eb)),
f.Not(f.LoadZero(VEC128_TYPE)),
f.LoadZero(VEC128_TYPE),
INT8_TYPE)));
// ea &= ~0xF (store takes care of this)
f.Store(ea, f.ByteSwap(v));
return 0;
}
XEEMITTER(stvlx, 0x7C00050E, X )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_stvlx_(f, i, i.X.RT, i.X.RA, i.X.RB);
}
XEEMITTER(stvlx128, VX128_1(4, 1283), VX128_1)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_stvlx_(f, i, VX128_1_VD128, i.VX128_1.RA, i.VX128_1.RB);
}
XEEMITTER(stvlxl, 0x7C00070E, X )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_stvlx(f, i);
}
XEEMITTER(stvlxl128, VX128_1(4, 1795), VX128_1)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_stvlx128(f, i);
}
int InstrEmit_stvrx_(PPCFunctionBuilder& f, InstrData& i, uint32_t vd, uint32_t ra, uint32_t rb) {
// NOTE: if eb == 0 (so 16b aligned) this equals new_value
// we could optimize this to prevent the other load/mask, in that case.
Value* ea = ra ? f.Add(f.LoadGPR(ra), f.LoadGPR(rb)) : f.LoadGPR(rb);
Value* eb = f.And(f.Truncate(ea, INT8_TYPE), f.LoadConstant((int8_t)0xF));
Value* ebits = f.Mul(eb, f.LoadConstant((int8_t)8));
Value* new_value = f.LoadVR(vd);
// ea &= ~0xF (load takes care of this)
Value* old_value = f.ByteSwap(f.Load(ea, VEC128_TYPE));
// v = (new << (16 - eb)) | (old & (ONE >> eb))
Value* v = f.Permute(
f.LoadVectorShl(f.Sub(f.LoadConstant((int8_t)16), eb)),
new_value,
f.LoadZero(VEC128_TYPE),
INT8_TYPE);
v = f.Or(
v,
f.And(
old_value,
f.Permute(
f.LoadVectorShr(eb),
f.LoadZero(VEC128_TYPE),
f.Not(f.LoadZero(VEC128_TYPE)),
INT8_TYPE)));
// ea &= ~0xF (store takes care of this)
f.Store(ea, f.ByteSwap(v));
return 0;
}
XEEMITTER(stvrx, 0x7C00054E, X )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_stvrx_(f, i, i.X.RT, i.X.RA, i.X.RB);
}
XEEMITTER(stvrx128, VX128_1(4, 1347), VX128_1)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_stvrx_(f, i, VX128_1_VD128, i.VX128_1.RA, i.VX128_1.RB);
}
XEEMITTER(stvrxl, 0x7C00074E, X )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_stvrx(f, i);
}
XEEMITTER(stvrxl128, VX128_1(4, 1859), VX128_1)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_stvrx128(f, i);
}
XEEMITTER(mfvscr, 0x10000604, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(mtvscr, 0x10000644, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vaddcuw, 0x10000180, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
int InstrEmit_vaddfp_(PPCFunctionBuilder& f, uint32_t vd, uint32_t va, uint32_t vb) {
// (VD) <- (VA) + (VB) (4 x fp)
Value* v = f.Add(f.LoadVR(va), f.LoadVR(vb));
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vaddfp, 0x1000000A, VX )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vaddfp_(f, i.VX.VD, i.VX.VA, i.VX.VB);
}
XEEMITTER(vaddfp128, VX128(5, 16), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vaddfp_(f, VX128_VD128, VX128_VA128, VX128_VB128);
}
XEEMITTER(vaddsbs, 0x10000300, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vaddshs, 0x10000340, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vaddsws, 0x10000380, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vaddubm, 0x10000000, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vaddubs, 0x10000200, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vadduhm, 0x10000040, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vadduhs, 0x10000240, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vadduwm, 0x10000080, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vadduws, 0x10000280, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
int InstrEmit_vand_(PPCFunctionBuilder& f, uint32_t vd, uint32_t va, uint32_t vb) {
// VD <- (VA) & (VB)
Value* v = f.And(f.LoadVR(va), f.LoadVR(vb));
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vand, 0x10000404, VX )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vand_(f, i.VX.VD, i.VX.VA, i.VX.VB);
}
XEEMITTER(vand128, VX128(5, 528), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vand_(f, VX128_VD128, VX128_VA128, VX128_VB128);
}
int InstrEmit_vandc_(PPCFunctionBuilder& f, uint32_t vd, uint32_t va, uint32_t vb) {
// VD <- (VA) & ¬(VB)
Value* v = f.And(f.LoadVR(va), f.Not(f.LoadVR(vb)));
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vandc, 0x10000444, VX )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vandc_(f, i.VX.VD, i.VX.VA, i.VX.VB);
}
XEEMITTER(vandc128, VX128(5, 592), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vandc_(f, VX128_VD128, VX128_VA128, VX128_VB128);
}
XEEMITTER(vavgsb, 0x10000502, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vavgsh, 0x10000542, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vavgsw, 0x10000582, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vavgub, 0x10000402, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vavguh, 0x10000442, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vavguw, 0x10000482, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vcfsx, 0x1000034A, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vcsxwfp128, VX128_3(6, 688), VX128_3)(PPCFunctionBuilder& f, InstrData& i) {
// (VD) <- float(VB) / 2^uimm
uint32_t uimm = VX128_3_IMM;
uimm = uimm ? (2 << (uimm - 1)) : 1;
Value* v = f.Div(
f.VectorConvertI2F(f.LoadVR(VX128_3_VB128)),
f.Splat(f.LoadConstant((float)uimm), VEC128_TYPE));
f.StoreVR(VX128_3_VD128, v);
return 0;
}
XEEMITTER(vcfpsxws128, VX128_3(6, 560), VX128_3)(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vcfux, 0x1000030A, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vcuxwfp128, VX128_3(6, 752), VX128_3)(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vcfpuxws128, VX128_3(6, 624), VX128_3)(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
int InstrEmit_vcmpbfp_(PPCFunctionBuilder& f, InstrData& i, uint32_t vd, uint32_t va, uint32_t vb, uint32_t rc) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vcmpbfp, 0x100003C6, VXR )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vcmpbfp_(f, i, i.VXR.VD, i.VXR.VA, i.VXR.VB, i.VXR.Rc);
}
XEEMITTER(vcmpbfp128, VX128(6, 384), VX128_R)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vcmpbfp_(f, i, VX128_R_VD128, VX128_R_VA128, VX128_R_VB128, i.VX128_R.Rc);
}
enum vcmpxxfp_op {
vcmpxxfp_eq,
vcmpxxfp_gt,
vcmpxxfp_ge,
};
int InstrEmit_vcmpxxfp_(PPCFunctionBuilder& f, InstrData& i, vcmpxxfp_op cmpop, uint32_t vd, uint32_t va, uint32_t vb, uint32_t rc) {
// (VD.xyzw) = (VA.xyzw) OP (VB.xyzw) ? 0xFFFFFFFF : 0x00000000
// if (Rc) CR6 = all_equal | 0 | none_equal | 0
// If an element in either VA or VB is NaN the result will be 0x00000000
Value* v;
switch (cmpop) {
case vcmpxxfp_eq:
v = f.VectorCompareEQ(f.LoadVR(va), f.LoadVR(vb), FLOAT32_TYPE);
break;
case vcmpxxfp_gt:
v = f.VectorCompareSGT(f.LoadVR(va), f.LoadVR(vb), FLOAT32_TYPE);
break;
case vcmpxxfp_ge:
v = f.VectorCompareSGE(f.LoadVR(va), f.LoadVR(vb), FLOAT32_TYPE);
break;
default:
XEASSERTALWAYS();
break;
}
if (rc) {
f.UpdateCR6(v);
}
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vcmpeqfp, 0x100000C6, VXR )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vcmpxxfp_(f, i, vcmpxxfp_eq, i.VXR.VD, i.VXR.VA, i.VXR.VB, i.VXR.Rc);
}
XEEMITTER(vcmpeqfp128, VX128(6, 0), VX128_R)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vcmpxxfp_(f, i, vcmpxxfp_eq, VX128_R_VD128, VX128_R_VA128, VX128_R_VB128, i.VX128_R.Rc);
}
XEEMITTER(vcmpgefp, 0x100001C6, VXR )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vcmpxxfp_(f, i, vcmpxxfp_ge, i.VXR.VD, i.VXR.VA, i.VXR.VB, i.VXR.Rc);
}
XEEMITTER(vcmpgefp128, VX128(6, 128), VX128_R)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vcmpxxfp_(f, i, vcmpxxfp_ge, VX128_R_VD128, VX128_R_VA128, VX128_R_VB128, i.VX128_R.Rc);
}
XEEMITTER(vcmpgtfp, 0x100002C6, VXR )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vcmpxxfp_(f, i, vcmpxxfp_gt, i.VXR.VD, i.VXR.VA, i.VXR.VB, i.VXR.Rc);
}
XEEMITTER(vcmpgtfp128, VX128(6, 256), VX128_R)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vcmpxxfp_(f, i, vcmpxxfp_gt, VX128_R_VD128, VX128_R_VA128, VX128_R_VB128, i.VX128_R.Rc);
}
enum vcmpxxi_op {
vcmpxxi_eq,
vcmpxxi_gt_signed,
vcmpxxi_gt_unsigned,
};
int InstrEmit_vcmpxxi_(PPCFunctionBuilder& f, InstrData& i, vcmpxxi_op cmpop, uint32_t width, uint32_t vd, uint32_t va, uint32_t vb, uint32_t rc) {
// (VD.xyzw) = (VA.xyzw) OP (VB.xyzw) ? 0xFFFFFFFF : 0x00000000
// if (Rc) CR6 = all_equal | 0 | none_equal | 0
// If an element in either VA or VB is NaN the result will be 0x00000000
Value* v;
switch (cmpop) {
case vcmpxxi_eq:
switch (width) {
case 1:
v = f.VectorCompareEQ(f.LoadVR(va), f.LoadVR(vb), INT8_TYPE);
break;
case 2:
v = f.VectorCompareEQ(f.LoadVR(va), f.LoadVR(vb), INT16_TYPE);
break;
case 4:
v = f.VectorCompareEQ(f.LoadVR(va), f.LoadVR(vb), INT32_TYPE);
break;
default: XEASSERTALWAYS(); return 1;
}
break;
case vcmpxxi_gt_signed:
switch (width) {
case 1:
v = f.VectorCompareSGT(f.LoadVR(va), f.LoadVR(vb), INT8_TYPE);
break;
case 2:
v = f.VectorCompareSGT(f.LoadVR(va), f.LoadVR(vb), INT16_TYPE);
break;
case 4:
v = f.VectorCompareSGT(f.LoadVR(va), f.LoadVR(vb), INT32_TYPE);
break;
default: XEASSERTALWAYS(); return 1;
}
break;
case vcmpxxi_gt_unsigned:
switch (width) {
case 1:
v = f.VectorCompareUGT(f.LoadVR(va), f.LoadVR(vb), INT8_TYPE);
break;
case 2:
v = f.VectorCompareUGT(f.LoadVR(va), f.LoadVR(vb), INT16_TYPE);
break;
case 4:
v = f.VectorCompareUGT(f.LoadVR(va), f.LoadVR(vb), INT32_TYPE);
break;
default: XEASSERTALWAYS(); return 1;
}
break;
default: XEASSERTALWAYS(); return 1;
}
if (rc) {
f.UpdateCR6(v);
}
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vcmpequb, 0x10000006, VXR )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vcmpxxi_(f, i, vcmpxxi_eq, 1, i.VXR.VD, i.VXR.VA, i.VXR.VB, i.VXR.Rc);
}
XEEMITTER(vcmpequh, 0x10000046, VXR )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vcmpxxi_(f, i, vcmpxxi_eq, 2, i.VXR.VD, i.VXR.VA, i.VXR.VB, i.VXR.Rc);
}
XEEMITTER(vcmpequw, 0x10000086, VXR )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vcmpxxi_(f, i, vcmpxxi_eq, 4, i.VXR.VD, i.VXR.VA, i.VXR.VB, i.VXR.Rc);
}
XEEMITTER(vcmpequw128, VX128(6, 512), VX128_R)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vcmpxxi_(f, i, vcmpxxi_eq, 4, VX128_R_VD128, VX128_R_VA128, VX128_R_VB128, i.VX128_R.Rc);
}
XEEMITTER(vcmpgtsb, 0x10000306, VXR )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vcmpxxi_(f, i, vcmpxxi_gt_signed, 1, i.VXR.VD, i.VXR.VA, i.VXR.VB, i.VXR.Rc);
}
XEEMITTER(vcmpgtsh, 0x10000346, VXR )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vcmpxxi_(f, i, vcmpxxi_gt_signed, 2, i.VXR.VD, i.VXR.VA, i.VXR.VB, i.VXR.Rc);
}
XEEMITTER(vcmpgtsw, 0x10000386, VXR )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vcmpxxi_(f, i, vcmpxxi_gt_signed, 4, i.VXR.VD, i.VXR.VA, i.VXR.VB, i.VXR.Rc);
}
XEEMITTER(vcmpgtub, 0x10000206, VXR )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vcmpxxi_(f, i, vcmpxxi_gt_unsigned, 1, i.VXR.VD, i.VXR.VA, i.VXR.VB, i.VXR.Rc);
}
XEEMITTER(vcmpgtuh, 0x10000246, VXR )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vcmpxxi_(f, i, vcmpxxi_gt_unsigned, 2, i.VXR.VD, i.VXR.VA, i.VXR.VB, i.VXR.Rc);
}
XEEMITTER(vcmpgtuw, 0x10000286, VXR )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vcmpxxi_(f, i, vcmpxxi_gt_unsigned, 4, i.VXR.VD, i.VXR.VA, i.VXR.VB, i.VXR.Rc);
}
XEEMITTER(vctsxs, 0x100003CA, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vctuxs, 0x1000038A, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vexptefp, 0x1000018A, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vexptefp128, VX128_3(6, 1712), VX128_3)(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vlogefp, 0x100001CA, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vlogefp128, VX128_3(6, 1776), VX128_3)(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
int InstrEmit_vmaddfp_(PPCFunctionBuilder& f, uint32_t vd, uint32_t va, uint32_t vb, uint32_t vc) {
// (VD) <- ((VA) * (VC)) + (VB)
Value* v = f.MulAdd(
f.LoadVR(va), f.LoadVR(vc), f.LoadVR(vb));
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vmaddfp, 0x1000002E, VXA )(PPCFunctionBuilder& f, InstrData& i) {
// (VD) <- ((VA) * (VC)) + (VB)
return InstrEmit_vmaddfp_(f, i.VXA.VD, i.VXA.VA, i.VXA.VB, i.VXA.VC);
}
XEEMITTER(vmaddfp128, VX128(5, 208), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
// (VD) <- ((VA) * (VB)) + (VD)
// NOTE: this resuses VD and swaps the arg order!
return InstrEmit_vmaddfp_(f, VX128_VD128, VX128_VA128, VX128_VD128, VX128_VB128);
}
XEEMITTER(vmaddcfp128, VX128(5, 272), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
// (VD) <- ((VA) * (VD)) + (VB)
Value* v = f.MulAdd(
f.LoadVR(VX128_VA128), f.LoadVR(VX128_VD128), f.LoadVR(VX128_VB128));
f.StoreVR(VX128_VD128, v);
return 0;
}
int InstrEmit_vmaxfp_(PPCFunctionBuilder& f, uint32_t vd, uint32_t va, uint32_t vb) {
// (VD) <- max((VA), (VB))
Value* v = f.Max(f.LoadVR(va), f.LoadVR(vb));
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vmaxfp, 0x1000040A, VX )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vmaxfp_(f, i.VX.VD, i.VX.VA, i.VX.VB);
}
XEEMITTER(vmaxfp128, VX128(6, 640), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vmaxfp_(f, VX128_VD128, VX128_VA128, VX128_VB128);
}
XEEMITTER(vmaxsb, 0x10000102, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmaxsh, 0x10000142, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmaxsw, 0x10000182, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmaxub, 0x10000002, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmaxuh, 0x10000042, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmaxuw, 0x10000082, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmhaddshs, 0x10000020, VXA )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmhraddshs, 0x10000021, VXA )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
int InstrEmit_vminfp_(PPCFunctionBuilder& f, uint32_t vd, uint32_t va, uint32_t vb) {
// (VD) <- min((VA), (VB))
Value* v = f.Min(f.LoadVR(va), f.LoadVR(vb));
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vminfp, 0x1000044A, VX )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vminfp_(f, i.VX.VD, i.VX.VA, i.VX.VB);
}
XEEMITTER(vminfp128, VX128(6, 704), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vminfp_(f, VX128_VD128, VX128_VA128, VX128_VB128);
}
XEEMITTER(vminsb, 0x10000302, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vminsh, 0x10000342, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vminsw, 0x10000382, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vminub, 0x10000202, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vminuh, 0x10000242, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vminuw, 0x10000282, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmladduhm, 0x10000022, VXA )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmrghb, 0x1000000C, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmrghh, 0x1000004C, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
int InstrEmit_vmrghw_(PPCFunctionBuilder& f, uint32_t vd, uint32_t va, uint32_t vb) {
// (VD.x) = (VA.x)
// (VD.y) = (VB.x)
// (VD.z) = (VA.y)
// (VD.w) = (VB.y)
Value* v = f.Permute(
f.LoadConstant(0x00040105),
f.LoadVR(va),
f.LoadVR(vb),
INT32_TYPE);
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vmrghw, 0x1000008C, VX )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vmrghw_(f, i.VX.VD, i.VX.VA, i.VX.VB);
}
XEEMITTER(vmrghw128, VX128(6, 768), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vmrghw_(f, VX128_VD128, VX128_VA128, VX128_VB128);
}
XEEMITTER(vmrglb, 0x1000010C, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmrglh, 0x1000014C, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
int InstrEmit_vmrglw_(PPCFunctionBuilder& f, uint32_t vd, uint32_t va, uint32_t vb) {
// (VD.x) = (VA.z)
// (VD.y) = (VB.z)
// (VD.z) = (VA.w)
// (VD.w) = (VB.w)
Value* v = f.Permute(
f.LoadConstant(0x02060307),
f.LoadVR(va),
f.LoadVR(vb),
INT32_TYPE);
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vmrglw, 0x1000018C, VX )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vmrglw_(f, i.VX.VD, i.VX.VA, i.VX.VB);
}
XEEMITTER(vmrglw128, VX128(6, 832), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vmrglw_(f, VX128_VD128, VX128_VA128, VX128_VB128);
}
XEEMITTER(vmsummbm, 0x10000025, VXA )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmsumshm, 0x10000028, VXA )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmsumshs, 0x10000029, VXA )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmsumubm, 0x10000024, VXA )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmsumuhm, 0x10000026, VXA )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmsumuhs, 0x10000027, VXA )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmsum3fp128, VX128(5, 400), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
// Dot product XYZ.
// (VD.xyzw) = (VA.x * VB.x) + (VA.y * VB.y) + (VA.z * VB.z)
Value* v = f.DotProduct3(f.LoadVR(VX128_VA128), f.LoadVR(VX128_VB128));
v = f.Splat(v, VEC128_TYPE);
f.StoreVR(VX128_VD128, v);
return 0;
}
XEEMITTER(vmsum4fp128, VX128(5, 464), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
// Dot product XYZW.
// (VD.xyzw) = (VA.x * VB.x) + (VA.y * VB.y) + (VA.z * VB.z) + (VA.w * VB.w)
Value* v = f.DotProduct4(f.LoadVR(VX128_VA128), f.LoadVR(VX128_VB128));
v = f.Splat(v, VEC128_TYPE);
f.StoreVR(VX128_VD128, v);
return 0;
}
XEEMITTER(vmulesb, 0x10000308, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmulesh, 0x10000348, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmuleub, 0x10000208, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmuleuh, 0x10000248, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmulosb, 0x10000108, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmulosh, 0x10000148, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmuloub, 0x10000008, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmulouh, 0x10000048, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vmulfp128, VX128(5, 144), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
// (VD) <- (VA) * (VB) (4 x fp)
Value* v = f.Mul(f.LoadVR(VX128_VA128), f.LoadVR(VX128_VB128));
f.StoreVR(VX128_VD128, v);
return 0;
}
int InstrEmit_vnmsubfp_(PPCFunctionBuilder& f, uint32_t vd, uint32_t va, uint32_t vb, uint32_t vc) {
// (VD) <- -(((VA) * (VC)) - (VB))
// NOTE: only one rounding should take place, but that's hard...
// This really needs VFNMSUB132PS/VFNMSUB213PS/VFNMSUB231PS but that's AVX.
Value* v = f.Neg(f.MulSub(f.LoadVR(va), f.LoadVR(vc), f.LoadVR(vb)));
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vnmsubfp, 0x1000002F, VXA )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vnmsubfp_(f, i.VXA.VD, i.VXA.VA, i.VXA.VB, i.VXA.VC);
}
XEEMITTER(vnmsubfp128, VX128(5, 336), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vnmsubfp_(f, VX128_VD128, VX128_VA128, VX128_VB128, VX128_VD128);
}
int InstrEmit_vnor_(PPCFunctionBuilder& f, uint32_t vd, uint32_t va, uint32_t vb) {
// VD <- ¬((VA) | (VB))
Value* v = f.Not(f.Or(f.LoadVR(va), f.LoadVR(vb)));
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vnor, 0x10000504, VX )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vnor_(f, i.VX.VD, i.VX.VA, i.VX.VB);
}
XEEMITTER(vnor128, VX128(5, 656), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vnor_(f, VX128_VD128, VX128_VA128, VX128_VB128);
}
int InstrEmit_vor_(PPCFunctionBuilder& f, uint32_t vd, uint32_t va, uint32_t vb) {
// VD <- (VA) | (VB)
if (va == vb) {
// Copy VA==VB into VD.
f.StoreVR(vd, f.LoadVR(va));
} else {
Value* v = f.Or(f.LoadVR(va), f.LoadVR(vb));
f.StoreVR(vd, v);
}
return 0;
}
XEEMITTER(vor, 0x10000484, VX )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vor_(f, i.VX.VD, i.VX.VA, i.VX.VB);
}
XEEMITTER(vor128, VX128(5, 720), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vor_(f, VX128_VD128, VX128_VA128, VX128_VB128);
}
int InstrEmit_vperm_(PPCFunctionBuilder& f, uint32_t vd, uint32_t va, uint32_t vb, uint32_t vc) {
Value* v = f.Permute(f.LoadVR(vc), f.LoadVR(va), f.LoadVR(vb), INT8_TYPE);
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vperm, 0x1000002B, VXA )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vperm_(f, i.VXA.VD, i.VXA.VA, i.VXA.VB, i.VXA.VC);
}
XEEMITTER(vperm128, VX128_2(5, 0), VX128_2)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vperm_(f, VX128_2_VD128, VX128_2_VA128, VX128_2_VB128, VX128_2_VC);
}
XEEMITTER(vpermwi128, VX128_P(6, 528), VX128_P)(PPCFunctionBuilder& f, InstrData& i) {
// (VD.x) = (VB.uimm[6-7])
// (VD.y) = (VB.uimm[4-5])
// (VD.z) = (VB.uimm[2-3])
// (VD.w) = (VB.uimm[0-1])
const uint32_t vd = i.VX128_P.VD128l | (i.VX128_P.VD128h << 5);
const uint32_t vb = i.VX128_P.VB128l | (i.VX128_P.VB128h << 5);
uint32_t uimm = i.VX128_P.PERMl | (i.VX128_P.PERMh << 5);
Value* v = f.Swizzle(f.LoadVR(vb), INT32_TYPE, uimm);
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vpkpx, 0x1000030E, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vpkshss, 0x1000018E, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vpkshss128, VX128(5, 512), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vpkswss, 0x100001CE, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vpkswss128, VX128(5, 640), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vpkswus, 0x1000014E, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vpkswus128, VX128(5, 704), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vpkuhum, 0x1000000E, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vpkuhum128, VX128(5, 768), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vpkuhus, 0x1000008E, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vpkuhus128, VX128(5, 832), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vpkshus, 0x1000010E, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vpkshus128, VX128(5, 576), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vpkuwum, 0x1000004E, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vpkuwum128, VX128(5, 896), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vpkuwus, 0x100000CE, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vpkuwus128, VX128(5, 960), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vpkd3d128, VX128_4(6, 1552), VX128_4)(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vrefp, 0x1000010A, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vrefp128, VX128_3(6, 1584), VX128_3)(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vrfim, 0x100002CA, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vrfim128, VX128_3(6, 816), VX128_3)(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
int InstrEmit_vrfin_(PPCFunctionBuilder& f, uint32_t vd, uint32_t vb) {
// (VD) <- RoundToNearest(VB)
Value* v = f.Round(f.LoadVR(vd), ROUND_TO_NEAREST);
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vrfin, 0x1000020A, VX )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vrfin_(f, i.VX.VD, i.VX.VB);
}
XEEMITTER(vrfin128, VX128_3(6, 880), VX128_3)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vrfin_(f, VX128_3_VD128, VX128_3_VB128);
}
XEEMITTER(vrfip, 0x1000028A, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vrfip128, VX128_3(6, 944), VX128_3)(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vrfiz, 0x1000024A, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vrfiz128, VX128_3(6, 1008), VX128_3)(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vrlb, 0x10000004, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vrlh, 0x10000044, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vrlw, 0x10000084, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vrlw128, VX128(6, 80), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vrlimi128, VX128_4(6, 1808), VX128_4)(PPCFunctionBuilder& f, InstrData& i) {
const uint32_t vd = i.VX128_4.VD128l | (i.VX128_4.VD128h << 5);
const uint32_t vb = i.VX128_4.VB128l | (i.VX128_4.VB128h << 5);
uint32_t blend_mask_src = i.VX128_4.IMM;
uint32_t blend_mask = 0;
for (int n = 3; n >= 0; n--) {
blend_mask |= ((blend_mask_src & 0x1) ? n : (4 + n)) << ((3 - n) * 8);
blend_mask_src >>= 1;
}
uint32_t rotate = i.VX128_4.z;
// This is just a fancy permute.
// X Y Z W, rotated left by 2 = Z W X Y
// Then mask select the results into the dest.
// Sometimes rotation is zero, so fast path.
Value* v;
if (rotate) {
// TODO(benvanik): constants need conversion.
uint32_t swizzle_mask;
switch (rotate) {
case 1:
// X Y Z W -> Y Z W X
swizzle_mask = SWIZZLE_XYZW_TO_YZWX;
break;
case 2:
// X Y Z W -> Z W X Y
swizzle_mask = SWIZZLE_XYZW_TO_ZWXY;
break;
case 3:
// X Y Z W -> W X Y Z
swizzle_mask = SWIZZLE_XYZW_TO_WXYZ;
break;
default: XEASSERTALWAYS(); return 1;
}
v = f.Swizzle(f.LoadVR(vb), FLOAT32_TYPE, swizzle_mask);
} else {
v = f.LoadVR(vb);
}
if (blend_mask != 0x00010203) {
v = f.Permute(
f.LoadConstant(blend_mask), v, f.LoadVR(vd), INT32_TYPE);
}
f.StoreVR(vd, v);
return 0;
}
int InstrEmit_vrsqrtefp_(PPCFunctionBuilder& f, uint32_t vd, uint32_t vb) {
// (VD) <- 1 / sqrt(VB)
// There are a lot of rules in the Altivec_PEM docs for handlings that
// result in nan/infinity/etc. They are ignored here. I hope games would
// never rely on them.
Value* v = f.RSqrt(f.LoadVR(vb));
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vrsqrtefp, 0x1000014A, VX )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vrsqrtefp_(f, i.VX.VD, i.VX.VB);
}
XEEMITTER(vrsqrtefp128, VX128_3(6, 1648), VX128_3)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vrsqrtefp_(f, VX128_3_VD128, VX128_3_VB128);
}
int InstrEmit_vsel_(PPCFunctionBuilder& f, uint32_t vd, uint32_t va, uint32_t vb, uint32_t vc) {
Value* a = f.LoadVR(va);
Value* v = f.Xor(f.And(f.Xor(a, f.LoadVR(vb)), f.LoadVR(vc)), a);
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vsel, 0x1000002A, VXA )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vsel_(f, i.VXA.VD, i.VXA.VA, i.VXA.VB, i.VXA.VC);
}
XEEMITTER(vsel128, VX128(5, 848), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vsel_(f, VX128_VD128, VX128_VA128, VX128_VB128, VX128_VD128);
}
XEEMITTER(vsl, 0x100001C4, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vslb, 0x10000104, VX )(PPCFunctionBuilder& f, InstrData& i) {
Value* v = f.VectorShl(f.LoadVR(i.VX.VA), f.LoadVR(i.VX.VB), INT8_TYPE);
f.StoreVR(i.VX.VD, v);
return 0;
}
XEEMITTER(vslh, 0x10000144, VX )(PPCFunctionBuilder& f, InstrData& i) {
Value* v = f.VectorShl(f.LoadVR(i.VX.VA), f.LoadVR(i.VX.VB), INT16_TYPE);
f.StoreVR(i.VX.VD, v);
return 0;
}
int InstrEmit_vslw_(PPCFunctionBuilder& f, uint32_t vd, uint32_t va, uint32_t vb) {
// VA = |xxxxx|yyyyy|zzzzz|wwwww|
// VB = |...sh|...sh|...sh|...sh|
// VD = |x<<sh|y<<sh|z<<sh|w<<sh|
Value* v = f.VectorShl(f.LoadVR(va), f.LoadVR(vb), INT32_TYPE);
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vslw, 0x10000184, VX )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vslw_(f, i.VX.VD, i.VX.VA, i.VX.VB);
}
XEEMITTER(vslw128, VX128(6, 208), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vslw_(f, VX128_VD128, VX128_VA128, VX128_VB128);
}
static uint8_t __vsldoi_table[16][16] = {
{15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, 0}, // unused
{16, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1},
{17, 16, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2},
{18, 17, 16, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3},
{19, 18, 17, 16, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4},
{20, 19, 18, 17, 16, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5},
{21, 20, 19, 18, 17, 16, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6},
{22, 21, 20, 19, 18, 17, 16, 15, 14, 13, 12, 11, 10, 9, 8, 7},
{23, 22, 21, 20, 19, 18, 17, 16, 15, 14, 13, 12, 11, 10, 9, 8},
{24, 23, 22, 21, 20, 19, 18, 17, 16, 15, 14, 13, 12, 11, 10, 9},
{25, 24, 23, 22, 21, 20, 19, 18, 17, 16, 15, 14, 13, 12, 11, 10},
{26, 25, 24, 23, 22, 21, 20, 19, 18, 17, 16, 15, 14, 13, 12, 11},
{27, 26, 25, 24, 23, 22, 21, 20, 19, 18, 17, 16, 15, 14, 13, 12},
{28, 27, 26, 25, 24, 23, 22, 21, 20, 19, 18, 17, 16, 15, 14, 13},
{29, 28, 27, 26, 25, 24, 23, 22, 21, 20, 19, 18, 17, 16, 15, 14},
{30, 29, 28, 27, 26, 25, 24, 23, 22, 21, 20, 19, 18, 17, 16, 15},
};
int InstrEmit_vsldoi_(PPCFunctionBuilder& f, uint32_t vd, uint32_t va, uint32_t vb, uint32_t sh) {
// (VD) <- ((VA) || (VB)) << (SH << 3)
if (!sh) {
f.StoreVR(vd, f.LoadVR(va));
return 0;
} else if (sh == 16) {
f.StoreVR(vd, f.LoadVR(vb));
return 0;
}
// TODO(benvanik): optimize for the rotation case:
// vsldoi128 vr63,vr63,vr63,4
// (ABCD ABCD) << 4b = (BCDA)
// (VA << SH) OR (VB >> (16 - SH))
Value* control = f.LoadConstant(*((vec128_t*)(__vsldoi_table[sh])));
Value* v = f.Permute(
control,
f.LoadVR(va),
f.LoadVR(vb), INT8_TYPE);
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vsldoi, 0x1000002C, VXA )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vsldoi_(f, i.VXA.VD, i.VXA.VA, i.VXA.VB, i.VXA.VC & 0xF);
}
XEEMITTER(vsldoi128, VX128_5(4, 16), VX128_5)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vsldoi_(f, VX128_5_VD128, VX128_5_VA128, VX128_5_VB128, VX128_5_SH);
}
XEEMITTER(vslo, 0x1000040C, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vslo128, VX128(5, 912), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vspltb, 0x1000020C, VX )(PPCFunctionBuilder& f, InstrData& i) {
// b <- UIMM*8
// do i = 0 to 127 by 8
// (VD)[i:i+7] <- (VB)[b:b+7]
Value* b = f.Extract(f.LoadVR(i.VX.VB), (i.VX.VA & 0xF), INT8_TYPE);
Value* v = f.Splat(b, VEC128_TYPE);
f.StoreVR(i.VX.VD, v);
return 0;
}
XEEMITTER(vsplth, 0x1000024C, VX )(PPCFunctionBuilder& f, InstrData& i) {
// (VD.xyzw) <- (VB.uimm)
Value* h = f.Extract(f.LoadVR(i.VX.VB), (i.VX.VA & 0x7), INT16_TYPE);
Value* v = f.Splat(h, VEC128_TYPE);
f.StoreVR(i.VX.VD, v);
return 0;
}
int InstrEmit_vspltw_(PPCFunctionBuilder& f, uint32_t vd, uint32_t vb, uint32_t uimm) {
// (VD.xyzw) <- (VB.uimm)
Value* w = f.Extract(f.LoadVR(vb), (uimm & 0x3), INT32_TYPE);
Value* v = f.Splat(w, VEC128_TYPE);
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vspltw, 0x1000028C, VX )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vspltw_(f, i.VX.VD, i.VX.VB, i.VX.VA);
}
XEEMITTER(vspltw128, VX128_3(6, 1840), VX128_3)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vspltw_(f, VX128_3_VD128, VX128_3_VB128, VX128_3_IMM);
}
XEEMITTER(vspltisb, 0x1000030C, VX )(PPCFunctionBuilder& f, InstrData& i) {
// (VD.xyzw) <- sign_extend(uimm)
Value* v;
if (i.VX.VA) {
// Sign extend from 5bits -> 8 and load.
int8_t simm = (i.VX.VA & 0x10) ? (i.VX.VA | 0xF0) : i.VX.VA;
v = f.Splat(f.LoadConstant(simm), VEC128_TYPE);
} else {
// Zero out the register.
v = f.LoadZero(VEC128_TYPE);
}
f.StoreVR(i.VX.VD, v);
return 0;
}
XEEMITTER(vspltish, 0x1000034C, VX )(PPCFunctionBuilder& f, InstrData& i) {
// (VD.xyzw) <- sign_extend(uimm)
Value* v;
if (i.VX.VA) {
// Sign extend from 5bits -> 16 and load.
int16_t simm = (i.VX.VA & 0x10) ? (i.VX.VA | 0xFFF0) : i.VX.VA;
v = f.Splat(f.LoadConstant(simm), VEC128_TYPE);
} else {
// Zero out the register.
v = f.LoadZero(VEC128_TYPE);
}
f.StoreVR(i.VX.VD, v);
return 0;
}
int InstrEmit_vspltisw_(PPCFunctionBuilder& f, uint32_t vd, uint32_t uimm) {
// (VD.xyzw) <- sign_extend(uimm)
Value* v;
if (uimm) {
// Sign extend from 5bits -> 32 and load.
int32_t simm = (uimm & 0x10) ? (uimm | 0xFFFFFFF0) : uimm;
v = f.Splat(f.LoadConstant(simm), VEC128_TYPE);
} else {
// Zero out the register.
v = f.LoadZero(VEC128_TYPE);
}
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vspltisw, 0x1000038C, VX )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vspltisw_(f, i.VX.VD, i.VX.VA);
}
XEEMITTER(vspltisw128, VX128_3(6, 1904), VX128_3)(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vspltisw_(f, VX128_3_VD128, VX128_3_IMM);
}
XEEMITTER(vsr, 0x100002C4, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsrab, 0x10000304, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsrah, 0x10000344, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsraw, 0x10000384, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsraw128, VX128(6, 336), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsrb, 0x10000204, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsrh, 0x10000244, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsro, 0x1000044C, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsro128, VX128(5, 976), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsrw, 0x10000284, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsrw128, VX128(6, 464), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsubcuw, 0x10000580, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
int InstrEmit_vsubfp_(PPCFunctionBuilder& f, uint32_t vd, uint32_t va, uint32_t vb) {
// (VD) <- (VA) - (VB) (4 x fp)
Value* v = f.Sub(f.LoadVR(va), f.LoadVR(vb));
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vsubfp, 0x1000004A, VX )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vsubfp_(f, i.VX.VD, i.VX.VA, i.VX.VB);
}
XEEMITTER(vsubfp128, VX128(5, 80), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vsubfp_(f, VX128_VD128, VX128_VA128, VX128_VB128);
}
XEEMITTER(vsubsbs, 0x10000700, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsubshs, 0x10000740, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsubsws, 0x10000780, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsububm, 0x10000400, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsububs, 0x10000600, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsubuhm, 0x10000440, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsubuhs, 0x10000640, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsubuwm, 0x10000480, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsubuws, 0x10000680, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsumsws, 0x10000788, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsum2sws, 0x10000688, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsum4sbs, 0x10000708, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsum4shs, 0x10000648, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vsum4ubs, 0x10000608, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vupkhpx, 0x1000034E, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vupkhsb, 0x1000020E, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vupkhsb128, VX128(6, 896), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vupkhsh, 0x1000024E, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vupklpx, 0x100003CE, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vupklsb, 0x1000028E, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vupklsb128, VX128(6, 960), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
XEEMITTER(vupklsh, 0x100002CE, VX )(PPCFunctionBuilder& f, InstrData& i) {
XEINSTRNOTIMPLEMENTED();
return 1;
}
// __m128 half_to_float5_SSE2(__m128i h) {
// #define SSE_CONST4(name, val) static const __declspec(align(16)) uint name[4] = { (val), (val), (val), (val) }
// #define SSE_CONST(name) *(const __m128i *)&name
// #define SSE_CONSTF(name) *(const __m128 *)&name
// SSE_CONST4(mask_nosign, 0x7fff);
// SSE_CONST4(magic, (254 - 15) << 23);
// SSE_CONST4(was_infnan, 0x7bff);
// SSE_CONST4(exp_infnan, 255 << 23);
// __m128i mnosign = SSE_CONST(mask_nosign);
// __m128i expmant = _mm_and_si128(mnosign, h);
// __m128i justsign = _mm_xor_si128(h, expmant);
// __m128i expmant2 = expmant; // copy (just here for counting purposes)
// __m128i shifted = _mm_slli_epi32(expmant, 13);
// __m128 scaled = _mm_mul_ps(_mm_castsi128_ps(shifted), *(const __m128 *)&magic);
// __m128i b_wasinfnan = _mm_cmpgt_epi32(expmant2, SSE_CONST(was_infnan));
// __m128i sign = _mm_slli_epi32(justsign, 16);
// __m128 infnanexp = _mm_and_ps(_mm_castsi128_ps(b_wasinfnan), SSE_CONSTF(exp_infnan));
// __m128 sign_inf = _mm_or_ps(_mm_castsi128_ps(sign), infnanexp);
// __m128 final = _mm_or_ps(scaled, sign_inf);
// // ~11 SSE2 ops.
// return final;
// #undef SSE_CONST4
// #undef CONST
// #undef CONSTF
// }
XEEMITTER(vupkd3d128, VX128_3(6, 2032), VX128_3)(PPCFunctionBuilder& f, InstrData& i) {
// Can't find many docs on this. Best reference is
// http://worldcraft.googlecode.com/svn/trunk/src/qylib/math/xmmatrix.inl,
// which shows how it's used in some cases. Since it's all intrinsics,
// finding it in code is pretty easy.
const uint32_t vd = i.VX128_3.VD128l | (i.VX128_3.VD128h << 5);
const uint32_t vb = i.VX128_3.VB128l | (i.VX128_3.VB128h << 5);
const uint32_t type = i.VX128_3.IMM >> 2;
Value* v;
switch (type) {
case 0: // VPACK_D3DCOLOR
{
// http://hlssmod.net/he_code/public/pixelwriter.h
// ARGB (WXYZ) -> RGBA (XYZW)
// zzzzZZZZzzzzARGB
v = f.LoadVR(vb);
// 0zzzZZZZzzzzARGB
v = f.Insert(v, 0ull, f.LoadConstant((int8_t)0));
// 000R000G000B000A
vec128_t shuf_v = { 0 };
shuf_v.b16[3] = 13;
shuf_v.b16[7] = 14;
shuf_v.b16[11] = 15;
shuf_v.b16[15] = 12;
Value* shuf = f.LoadConstant(shuf_v);
v = f.Permute(shuf, v, v, INT8_TYPE);
// {256*R.0, 256*G.0, 256*B.0, 256*A.0}
v = f.VectorConvertI2F(v);
// {R.0, G.0, B.0 A.0}
// 1/256 = 0.00390625 = 0x3B800000
v = f.Mul(
v,
f.Splat(f.LoadConstant((uint32_t)0x3B800000), VEC128_TYPE));
}
break;
case 1: // VPACK_NORMSHORT2
{
// (VD.x) = 3.0 + (VB.x)*2^-22
// (VD.y) = 3.0 + (VB.y)*2^-22
// (VD.z) = 0.0
// (VD.w) = 1.0
// v = VB.x|VB.y|0|0
v = f.Permute(
f.LoadConstant(PERMUTE_XY_ZW),
f.LoadVR(vb),
f.LoadZero(VEC128_TYPE),
INT32_TYPE);
// *= 2^-22 + {3.0, 3.0, 0, 1.0}
vec128_t v3301 = { 3.0, 3.0, 0, 1.0 };
v = f.MulAdd(
v,
f.Splat(f.LoadConstant(0x34800000), VEC128_TYPE),
f.LoadConstant(v3301));
}
break;
case 3: // VPACK_... 2 FLOAT16s
{
// (VD.x) = fixed_16_to_32(VB.x (low))
// (VD.y) = fixed_16_to_32(VB.x (high))
// (VD.z) = 0.0
// (VD.w) = 1.0
v = f.LoadZero(VEC128_TYPE);
f.DebugBreak();
// 1 bit sign, 5 bit exponent, 10 bit mantissa
// D3D10 half float format
// TODO(benvanik): fixed_16_to_32 in SSE?
// TODO(benvanik): http://blogs.msdn.com/b/chuckw/archive/2012/09/11/directxmath-f16c-and-fma.aspx
// Use _mm_cvtph_ps -- requires very modern processors (SSE5+)
// Unpacking half floats: http://fgiesen.wordpress.com/2012/03/28/half-to-float-done-quic/
// Packing half floats: https://gist.github.com/rygorous/2156668
// Load source, move from tight pack of X16Y16.... to X16...Y16...
// Also zero out the high end.
//c.int3();
//c.movaps(vt, f.LoadVR(vb));
//c.save(vt);
//c.lea(gt, vt.m128());
//X86CompilerFuncCall* call = c.call(half_to_float5_SSE2);
//uint32_t args[] = {kX86VarTypeGpq};
//call->setPrototype(kX86FuncConvDefault, kX86VarTypeXmm, args, XECOUNT(args));
//call->setArgument(0, gt);
//call->setReturn(v);
//// Select XY00.
//c.xorps(vt, vt);
//c.shufps(v, vt, imm(0x04));
//// {0.0, 0.0, 0.0, 1.0}
//c.mov(gt, imm(0x3F800000));
//c.pinsrd(v, gt.r32(), imm(3));
}
break;
default:
XEASSERTALWAYS();
return 1;
}
f.StoreVR(vd, v);
return 0;
}
int InstrEmit_vxor_(PPCFunctionBuilder& f, uint32_t vd, uint32_t va, uint32_t vb) {
// VD <- (VA) ^ (VB)
Value* v;
if (va == vb) {
// Fast clear.
v = f.LoadZero(VEC128_TYPE);
} else {
v = f.Xor(f.LoadVR(va), f.LoadVR(vb));
}
f.StoreVR(vd, v);
return 0;
}
XEEMITTER(vxor, 0x100004C4, VX )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vxor_(f, i.VX.VD, i.VX.VA, i.VX.VB);
}
XEEMITTER(vxor128, VX128(5, 784), VX128 )(PPCFunctionBuilder& f, InstrData& i) {
return InstrEmit_vxor_(f, VX128_VD128, VX128_VA128, VX128_VB128);
}
void RegisterEmitCategoryAltivec() {
XEREGISTERINSTR(dst, 0x7C0002AC);
XEREGISTERINSTR(dstst, 0x7C0002EC);
XEREGISTERINSTR(dss, 0x7C00066C);
XEREGISTERINSTR(lvebx, 0x7C00000E);
XEREGISTERINSTR(lvehx, 0x7C00004E);
XEREGISTERINSTR(lvewx, 0x7C00008E);
XEREGISTERINSTR(lvewx128, VX128_1(4, 131));
XEREGISTERINSTR(lvsl, 0x7C00000C);
XEREGISTERINSTR(lvsl128, VX128_1(4, 3));
XEREGISTERINSTR(lvsr, 0x7C00004C);
XEREGISTERINSTR(lvsr128, VX128_1(4, 67));
XEREGISTERINSTR(lvx, 0x7C0000CE);
XEREGISTERINSTR(lvx128, VX128_1(4, 195));
XEREGISTERINSTR(lvxl, 0x7C0002CE);
XEREGISTERINSTR(lvxl128, VX128_1(4, 707));
XEREGISTERINSTR(stvebx, 0x7C00010E);
XEREGISTERINSTR(stvehx, 0x7C00014E);
XEREGISTERINSTR(stvewx, 0x7C00018E);
XEREGISTERINSTR(stvewx128, VX128_1(4, 387));
XEREGISTERINSTR(stvx, 0x7C0001CE);
XEREGISTERINSTR(stvx128, VX128_1(4, 451));
XEREGISTERINSTR(stvxl, 0x7C0003CE);
XEREGISTERINSTR(stvxl128, VX128_1(4, 963));
XEREGISTERINSTR(lvlx, 0x7C00040E);
XEREGISTERINSTR(lvlx128, VX128_1(4, 1027));
XEREGISTERINSTR(lvlxl, 0x7C00060E);
XEREGISTERINSTR(lvlxl128, VX128_1(4, 1539));
XEREGISTERINSTR(lvrx, 0x7C00044E);
XEREGISTERINSTR(lvrx128, VX128_1(4, 1091));
XEREGISTERINSTR(lvrxl, 0x7C00064E);
XEREGISTERINSTR(lvrxl128, VX128_1(4, 1603));
XEREGISTERINSTR(stvlx, 0x7C00050E);
XEREGISTERINSTR(stvlx128, VX128_1(4, 1283));
XEREGISTERINSTR(stvlxl, 0x7C00070E);
XEREGISTERINSTR(stvlxl128, VX128_1(4, 1795));
XEREGISTERINSTR(stvrx, 0x7C00054E);
XEREGISTERINSTR(stvrx128, VX128_1(4, 1347));
XEREGISTERINSTR(stvrxl, 0x7C00074E);
XEREGISTERINSTR(stvrxl128, VX128_1(4, 1859));
XEREGISTERINSTR(mfvscr, 0x10000604);
XEREGISTERINSTR(mtvscr, 0x10000644);
XEREGISTERINSTR(vaddcuw, 0x10000180);
XEREGISTERINSTR(vaddfp, 0x1000000A);
XEREGISTERINSTR(vaddfp128, VX128(5, 16));
XEREGISTERINSTR(vaddsbs, 0x10000300);
XEREGISTERINSTR(vaddshs, 0x10000340);
XEREGISTERINSTR(vaddsws, 0x10000380);
XEREGISTERINSTR(vaddubm, 0x10000000);
XEREGISTERINSTR(vaddubs, 0x10000200);
XEREGISTERINSTR(vadduhm, 0x10000040);
XEREGISTERINSTR(vadduhs, 0x10000240);
XEREGISTERINSTR(vadduwm, 0x10000080);
XEREGISTERINSTR(vadduws, 0x10000280);
XEREGISTERINSTR(vand, 0x10000404);
XEREGISTERINSTR(vand128, VX128(5, 528));
XEREGISTERINSTR(vandc, 0x10000444);
XEREGISTERINSTR(vandc128, VX128(5, 592));
XEREGISTERINSTR(vavgsb, 0x10000502);
XEREGISTERINSTR(vavgsh, 0x10000542);
XEREGISTERINSTR(vavgsw, 0x10000582);
XEREGISTERINSTR(vavgub, 0x10000402);
XEREGISTERINSTR(vavguh, 0x10000442);
XEREGISTERINSTR(vavguw, 0x10000482);
XEREGISTERINSTR(vcfsx, 0x1000034A);
XEREGISTERINSTR(vcsxwfp128, VX128_3(6, 688));
XEREGISTERINSTR(vcfpsxws128, VX128_3(6, 560));
XEREGISTERINSTR(vcfux, 0x1000030A);
XEREGISTERINSTR(vcuxwfp128, VX128_3(6, 752));
XEREGISTERINSTR(vcfpuxws128, VX128_3(6, 624));
XEREGISTERINSTR(vcmpbfp, 0x100003C6);
XEREGISTERINSTR(vcmpbfp128, VX128(6, 384));
XEREGISTERINSTR(vcmpeqfp, 0x100000C6);
XEREGISTERINSTR(vcmpeqfp128, VX128(6, 0));
XEREGISTERINSTR(vcmpgefp, 0x100001C6);
XEREGISTERINSTR(vcmpgefp128, VX128(6, 128));
XEREGISTERINSTR(vcmpgtfp, 0x100002C6);
XEREGISTERINSTR(vcmpgtfp128, VX128(6, 256));
XEREGISTERINSTR(vcmpgtsb, 0x10000306);
XEREGISTERINSTR(vcmpgtsh, 0x10000346);
XEREGISTERINSTR(vcmpgtsw, 0x10000386);
XEREGISTERINSTR(vcmpequb, 0x10000006);
XEREGISTERINSTR(vcmpgtub, 0x10000206);
XEREGISTERINSTR(vcmpequh, 0x10000046);
XEREGISTERINSTR(vcmpgtuh, 0x10000246);
XEREGISTERINSTR(vcmpequw, 0x10000086);
XEREGISTERINSTR(vcmpequw128, VX128(6, 512));
XEREGISTERINSTR(vcmpgtuw, 0x10000286);
XEREGISTERINSTR(vctsxs, 0x100003CA);
XEREGISTERINSTR(vctuxs, 0x1000038A);
XEREGISTERINSTR(vexptefp, 0x1000018A);
XEREGISTERINSTR(vexptefp128, VX128_3(6, 1712));
XEREGISTERINSTR(vlogefp, 0x100001CA);
XEREGISTERINSTR(vlogefp128, VX128_3(6, 1776));
XEREGISTERINSTR(vmaddfp, 0x1000002E);
XEREGISTERINSTR(vmaddfp128, VX128(5, 208));
XEREGISTERINSTR(vmaddcfp128, VX128(5, 272));
XEREGISTERINSTR(vmaxfp, 0x1000040A);
XEREGISTERINSTR(vmaxfp128, VX128(6, 640));
XEREGISTERINSTR(vmaxsb, 0x10000102);
XEREGISTERINSTR(vmaxsh, 0x10000142);
XEREGISTERINSTR(vmaxsw, 0x10000182);
XEREGISTERINSTR(vmaxub, 0x10000002);
XEREGISTERINSTR(vmaxuh, 0x10000042);
XEREGISTERINSTR(vmaxuw, 0x10000082);
XEREGISTERINSTR(vmhaddshs, 0x10000020);
XEREGISTERINSTR(vmhraddshs, 0x10000021);
XEREGISTERINSTR(vminfp, 0x1000044A);
XEREGISTERINSTR(vminfp128, VX128(6, 704));
XEREGISTERINSTR(vminsb, 0x10000302);
XEREGISTERINSTR(vminsh, 0x10000342);
XEREGISTERINSTR(vminsw, 0x10000382);
XEREGISTERINSTR(vminub, 0x10000202);
XEREGISTERINSTR(vminuh, 0x10000242);
XEREGISTERINSTR(vminuw, 0x10000282);
XEREGISTERINSTR(vmladduhm, 0x10000022);
XEREGISTERINSTR(vmrghb, 0x1000000C);
XEREGISTERINSTR(vmrghh, 0x1000004C);
XEREGISTERINSTR(vmrghw, 0x1000008C);
XEREGISTERINSTR(vmrghw128, VX128(6, 768));
XEREGISTERINSTR(vmrglb, 0x1000010C);
XEREGISTERINSTR(vmrglh, 0x1000014C);
XEREGISTERINSTR(vmrglw, 0x1000018C);
XEREGISTERINSTR(vmrglw128, VX128(6, 832));
XEREGISTERINSTR(vmsummbm, 0x10000025);
XEREGISTERINSTR(vmsumshm, 0x10000028);
XEREGISTERINSTR(vmsumshs, 0x10000029);
XEREGISTERINSTR(vmsumubm, 0x10000024);
XEREGISTERINSTR(vmsumuhm, 0x10000026);
XEREGISTERINSTR(vmsumuhs, 0x10000027);
XEREGISTERINSTR(vmsum3fp128, VX128(5, 400));
XEREGISTERINSTR(vmsum4fp128, VX128(5, 464));
XEREGISTERINSTR(vmulesb, 0x10000308);
XEREGISTERINSTR(vmulesh, 0x10000348);
XEREGISTERINSTR(vmuleub, 0x10000208);
XEREGISTERINSTR(vmuleuh, 0x10000248);
XEREGISTERINSTR(vmulosb, 0x10000108);
XEREGISTERINSTR(vmulosh, 0x10000148);
XEREGISTERINSTR(vmuloub, 0x10000008);
XEREGISTERINSTR(vmulouh, 0x10000048);
XEREGISTERINSTR(vmulfp128, VX128(5, 144));
XEREGISTERINSTR(vnmsubfp, 0x1000002F);
XEREGISTERINSTR(vnmsubfp128, VX128(5, 336));
XEREGISTERINSTR(vnor, 0x10000504);
XEREGISTERINSTR(vnor128, VX128(5, 656));
XEREGISTERINSTR(vor, 0x10000484);
XEREGISTERINSTR(vor128, VX128(5, 720));
XEREGISTERINSTR(vperm, 0x1000002B);
XEREGISTERINSTR(vperm128, VX128_2(5, 0));
XEREGISTERINSTR(vpermwi128, VX128_P(6, 528));
XEREGISTERINSTR(vpkpx, 0x1000030E);
XEREGISTERINSTR(vpkshss, 0x1000018E);
XEREGISTERINSTR(vpkshss128, VX128(5, 512));
XEREGISTERINSTR(vpkshus, 0x1000010E);
XEREGISTERINSTR(vpkshus128, VX128(5, 576));
XEREGISTERINSTR(vpkswss, 0x100001CE);
XEREGISTERINSTR(vpkswss128, VX128(5, 640));
XEREGISTERINSTR(vpkswus, 0x1000014E);
XEREGISTERINSTR(vpkswus128, VX128(5, 704));
XEREGISTERINSTR(vpkuhum, 0x1000000E);
XEREGISTERINSTR(vpkuhum128, VX128(5, 768));
XEREGISTERINSTR(vpkuhus, 0x1000008E);
XEREGISTERINSTR(vpkuhus128, VX128(5, 832));
XEREGISTERINSTR(vpkuwum, 0x1000004E);
XEREGISTERINSTR(vpkuwum128, VX128(5, 896));
XEREGISTERINSTR(vpkuwus, 0x100000CE);
XEREGISTERINSTR(vpkuwus128, VX128(5, 960));
XEREGISTERINSTR(vpkd3d128, VX128_4(6, 1552));
XEREGISTERINSTR(vrefp, 0x1000010A);
XEREGISTERINSTR(vrefp128, VX128_3(6, 1584));
XEREGISTERINSTR(vrfim, 0x100002CA);
XEREGISTERINSTR(vrfim128, VX128_3(6, 816));
XEREGISTERINSTR(vrfin, 0x1000020A);
XEREGISTERINSTR(vrfin128, VX128_3(6, 880));
XEREGISTERINSTR(vrfip, 0x1000028A);
XEREGISTERINSTR(vrfip128, VX128_3(6, 944));
XEREGISTERINSTR(vrfiz, 0x1000024A);
XEREGISTERINSTR(vrfiz128, VX128_3(6, 1008));
XEREGISTERINSTR(vrlb, 0x10000004);
XEREGISTERINSTR(vrlh, 0x10000044);
XEREGISTERINSTR(vrlw, 0x10000084);
XEREGISTERINSTR(vrlw128, VX128(6, 80));
XEREGISTERINSTR(vrlimi128, VX128_4(6, 1808));
XEREGISTERINSTR(vrsqrtefp, 0x1000014A);
XEREGISTERINSTR(vrsqrtefp128, VX128_3(6, 1648));
XEREGISTERINSTR(vsel, 0x1000002A);
XEREGISTERINSTR(vsel128, VX128(5, 848));
XEREGISTERINSTR(vsl, 0x100001C4);
XEREGISTERINSTR(vslb, 0x10000104);
XEREGISTERINSTR(vslh, 0x10000144);
XEREGISTERINSTR(vslo, 0x1000040C);
XEREGISTERINSTR(vslo128, VX128(5, 912));
XEREGISTERINSTR(vslw, 0x10000184);
XEREGISTERINSTR(vslw128, VX128(6, 208));
XEREGISTERINSTR(vsldoi, 0x1000002C);
XEREGISTERINSTR(vsldoi128, VX128_5(4, 16));
XEREGISTERINSTR(vspltb, 0x1000020C);
XEREGISTERINSTR(vsplth, 0x1000024C);
XEREGISTERINSTR(vspltw, 0x1000028C);
XEREGISTERINSTR(vspltw128, VX128_3(6, 1840));
XEREGISTERINSTR(vspltisb, 0x1000030C);
XEREGISTERINSTR(vspltish, 0x1000034C);
XEREGISTERINSTR(vspltisw, 0x1000038C);
XEREGISTERINSTR(vspltisw128, VX128_3(6, 1904));
XEREGISTERINSTR(vsr, 0x100002C4);
XEREGISTERINSTR(vsrab, 0x10000304);
XEREGISTERINSTR(vsrah, 0x10000344);
XEREGISTERINSTR(vsraw, 0x10000384);
XEREGISTERINSTR(vsraw128, VX128(6, 336));
XEREGISTERINSTR(vsrb, 0x10000204);
XEREGISTERINSTR(vsrh, 0x10000244);
XEREGISTERINSTR(vsro, 0x1000044C);
XEREGISTERINSTR(vsro128, VX128(5, 976));
XEREGISTERINSTR(vsrw, 0x10000284);
XEREGISTERINSTR(vsrw128, VX128(6, 464));
XEREGISTERINSTR(vsubcuw, 0x10000580);
XEREGISTERINSTR(vsubfp, 0x1000004A);
XEREGISTERINSTR(vsubfp128, VX128(5, 80));
XEREGISTERINSTR(vsubsbs, 0x10000700);
XEREGISTERINSTR(vsubshs, 0x10000740);
XEREGISTERINSTR(vsubsws, 0x10000780);
XEREGISTERINSTR(vsububm, 0x10000400);
XEREGISTERINSTR(vsububs, 0x10000600);
XEREGISTERINSTR(vsubuhm, 0x10000440);
XEREGISTERINSTR(vsubuhs, 0x10000640);
XEREGISTERINSTR(vsubuwm, 0x10000480);
XEREGISTERINSTR(vsubuws, 0x10000680);
XEREGISTERINSTR(vsumsws, 0x10000788);
XEREGISTERINSTR(vsum2sws, 0x10000688);
XEREGISTERINSTR(vsum4sbs, 0x10000708);
XEREGISTERINSTR(vsum4shs, 0x10000648);
XEREGISTERINSTR(vsum4ubs, 0x10000608);
XEREGISTERINSTR(vupkhpx, 0x1000034E);
XEREGISTERINSTR(vupkhsb, 0x1000020E);
XEREGISTERINSTR(vupkhsb128, VX128(6, 896));
XEREGISTERINSTR(vupkhsh, 0x1000024E);
XEREGISTERINSTR(vupklpx, 0x100003CE);
XEREGISTERINSTR(vupklsb, 0x1000028E);
XEREGISTERINSTR(vupklsb128, VX128(6, 960));
XEREGISTERINSTR(vupklsh, 0x100002CE);
XEREGISTERINSTR(vupkd3d128, VX128_3(6, 2032));
XEREGISTERINSTR(vxor, 0x100004C4);
XEREGISTERINSTR(vxor128, VX128(5, 784));
}
} // namespace ppc
} // namespace frontend
} // namespace alloy