A64: Implement FMOV (scalar, immediate)
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a07c05ea51
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4be55b8b84
7 changed files with 78 additions and 1 deletions
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@ -75,6 +75,7 @@ add_library(dynarmic
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frontend/A64/translate/impl/data_processing_shift.cpp
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frontend/A64/translate/impl/exception_generating.cpp
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frontend/A64/translate/impl/floating_point_compare.cpp
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frontend/A64/translate/impl/floating_point_data_processing_one_register.cpp
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frontend/A64/translate/impl/floating_point_data_processing_two_register.cpp
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frontend/A64/translate/impl/impl.cpp
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frontend/A64/translate/impl/impl.h
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@ -933,7 +933,7 @@ INST(FCMP_float, "FCMP", "00011
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INST(FCMPE_float, "FCMPE", "00011110yy1mmmmm001000nnnnn1o000")
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// Data Processing - FP and SIMD - Floating point immediate
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//INST(FMOV_float_imm, "FMOV (scalar, immediate)", "00011110yy1iiiiiiii10000000ddddd")
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INST(FMOV_float_imm, "FMOV (scalar, immediate)", "00011110yy1iiiiiiii10000000ddddd")
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// Data Processing - FP and SIMD - Floating point conditional compare
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//INST(FCCMP_float, "FCCMP", "00011110yy1mmmmmcccc01nnnnn0ffff")
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@ -44,6 +44,12 @@ public:
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return Common::Bit<bit>(value);
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}
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template <size_t begin_bit, size_t end_bit, typename T = u32>
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T Bits() const {
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static_assert(Common::BitSize<T>() >= end_bit - begin_bit + 1);
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return static_cast<T>(Common::Bits<begin_bit, end_bit>(value));
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}
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bool operator==(const Imm<bit_size>& other) const {
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return value == other.value;
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}
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@ -0,0 +1,59 @@
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/* This file is part of the dynarmic project.
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* Copyright (c) 2018 MerryMage
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* This software may be used and distributed according to the terms of the GNU
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* General Public License version 2 or any later version.
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*/
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#include <boost/optional.hpp>
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#include "frontend/A64/translate/impl/impl.h"
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namespace Dynarmic::A64 {
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static boost::optional<size_t> GetDataSize(Imm<2> type) {
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switch (type.ZeroExtend()) {
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case 0b00:
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return 32;
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case 0b01:
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return 64;
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case 0b11:
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return 16;
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}
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return boost::none;
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}
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bool TranslatorVisitor::FMOV_float_imm(Imm<2> type, Imm<8> imm8, Vec Vd) {
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boost::optional<size_t> datasize = GetDataSize(type);
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if (!datasize) {
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return UnallocatedEncoding();
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}
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IR::UAny result = [&]() -> IR::UAny {
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switch (*datasize) {
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case 16: {
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const u16 sign = imm8.Bit<7>() ? 1 : 0;
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const u16 exp = (imm8.Bit<6>() ? 0b0'1100 : 0b1'0000) | imm8.Bits<4, 5, u16>();
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const u16 fract = imm8.Bits<0, 3, u16>() << 6;
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return ir.Imm16((sign << 15) | (exp << 10) | fract);
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}
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case 32: {
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const u32 sign = imm8.Bit<7>() ? 1 : 0;
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const u32 exp = (imm8.Bit<6>() ? 0b0111'1100 : 0b1000'0000) | imm8.Bits<4, 5, u32>();
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const u32 fract = imm8.Bits<0, 3, u32>() << 19;
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return ir.Imm32((sign << 31) | (exp << 23) | fract);
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}
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case 64:
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default: {
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const u64 sign = imm8.Bit<7>() ? 1 : 0;
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const u64 exp = (imm8.Bit<6>() ? 0b011'1111'1100 : 0b100'0000'0000) | imm8.Bits<4, 5, u64>();
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const u64 fract = imm8.Bits<0, 3, u64>() << 48;
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return ir.Imm64((sign << 63) | (exp << 52) | fract);
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}
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}
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}();
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V_scalar(*datasize, Vd, result);
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return true;
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}
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} // namespace Dynarmic::A64
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@ -18,6 +18,10 @@ U8 IREmitter::Imm8(u8 imm8) {
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return U8(Value(imm8));
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}
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U16 IREmitter::Imm16(u16 imm16) {
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return U16(Value(imm16));
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}
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U32 IREmitter::Imm32(u32 imm32) {
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return U32(Value(imm32));
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}
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@ -61,6 +61,7 @@ public:
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U1 Imm1(bool value);
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U8 Imm8(u8 value);
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U16 Imm16(u16 value);
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U32 Imm32(u32 value);
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U64 Imm64(u64 value);
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@ -39,6 +39,7 @@ static std::vector<InstructionGenerator> instruction_generators = []{
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};
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std::vector<InstructionGenerator> result;
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for (const auto& [fn, bitstring] : list) {
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if (std::strcmp(fn, "UnallocatedEncoding") == 0) {
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InstructionGenerator::AddInvalidInstruction(bitstring);
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@ -46,6 +47,11 @@ static std::vector<InstructionGenerator> instruction_generators = []{
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}
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result.emplace_back(InstructionGenerator{bitstring});
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}
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// Manually added exceptions:
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// FMOV_float_imm for half-precision floats (QEMU doesn't have half-precision support yet).
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InstructionGenerator::AddInvalidInstruction("00011110111iiiiiiii10000000ddddd");
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return result;
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}();
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