// This file is part of AsmJit project // // See or LICENSE.md for license and copyright information // SPDX-License-Identifier: Zlib #include #if !defined(ASMJIT_NO_AARCH64) #include #include #include #include #include #include #include #include #include #include #include #include ASMJIT_BEGIN_SUB_NAMESPACE(a64) // a64::Assembler - Utils // ====================== static ASMJIT_INLINE_CONSTEXPR uint32_t diff(RegType a, RegType b) noexcept { return uint32_t(a) - uint32_t(b); } static ASMJIT_INLINE_CONSTEXPR uint32_t diff(VecElementType element_type, VecElementType base_type) noexcept { return uint32_t(element_type) - uint32_t(base_type); } // a64::Assembler - Cond // ===================== static inline uint32_t cond_code_to_opcode_field(uint32_t cond) noexcept { return (uint32_t(cond) - 2u) & 0xFu; } // a64::Assembler - Bits // ===================== template static inline constexpr uint32_t B(const T& index) noexcept { return uint32_t(1u) << uint32_t(index); } static constexpr uint32_t kSP = Gp::kIdSp; static constexpr uint32_t kZR = Gp::kIdZr; static constexpr uint32_t kWX = InstDB::kWX; // a64::Assembler - ShiftOpToLdStOptMap // ==================================== // Table that maps ShiftOp to OPT part in LD/ST (register) opcode. #define VALUE(index) index == uint32_t(ShiftOp::kUXTW) ? 2u : \ index == uint32_t(ShiftOp::kLSL) ? 3u : \ index == uint32_t(ShiftOp::kSXTW) ? 6u : \ index == uint32_t(ShiftOp::kSXTX) ? 7u : 0xFF static const uint8_t shift_op_to_ld_st_opt_map[] = { ASMJIT_LOOKUP_TABLE_16(VALUE, 0) }; #undef VALUE // a64::Assembler - ExtendOpToRegType // ================================== static inline RegType extend_option_to_reg_type(uint32_t option) noexcept { uint32_t pred = (uint32_t(RegType::kGp32) << (0x0 * 4)) | // 0b000 - UXTB. (uint32_t(RegType::kGp32) << (0x1 * 4)) | // 0b001 - UXTH. (uint32_t(RegType::kGp32) << (0x2 * 4)) | // 0b010 - UXTW. (uint32_t(RegType::kGp64) << (0x3 * 4)) | // 0b011 - UXTX|LSL. (uint32_t(RegType::kGp32) << (0x4 * 4)) | // 0b100 - SXTB. (uint32_t(RegType::kGp32) << (0x5 * 4)) | // 0b101 - SXTH. (uint32_t(RegType::kGp32) << (0x6 * 4)) | // 0b110 - SXTW. (uint32_t(RegType::kGp64) << (0x7 * 4)) ; // 0b111 - SXTX. return RegType((pred >> (option * 4u)) & 0xFu); } // asmjit::a64::Assembler - SizeOp // =============================== //! Struct that contains Size (2 bits), Q flag, and S (scalar) flag. These values //! are used to encode Q, Size, and Scalar fields in an opcode. struct SizeOp { //! \name Constants //! \{ static inline constexpr uint8_t k128BitShift = 0; static inline constexpr uint8_t kScalarShift = 1; static inline constexpr uint8_t kSizeShift = 2; static inline constexpr uint8_t kQ = uint8_t(1u << k128BitShift); static inline constexpr uint8_t kS = uint8_t(1u << kScalarShift); static inline constexpr uint8_t k00 = uint8_t(0 << kSizeShift); static inline constexpr uint8_t k01 = uint8_t(1 << kSizeShift); static inline constexpr uint8_t k10 = uint8_t(2 << kSizeShift); static inline constexpr uint8_t k11 = uint8_t(3 << kSizeShift); static inline constexpr uint8_t k00Q = k00 | kQ; static inline constexpr uint8_t k01Q = k01 | kQ; static inline constexpr uint8_t k10Q = k10 | kQ; static inline constexpr uint8_t k11Q = k11 | kQ; static inline constexpr uint8_t k00S = k00 | kS; static inline constexpr uint8_t k01S = k01 | kS; static inline constexpr uint8_t k10S = k10 | kS; static inline constexpr uint8_t k11S = k11 | kS; static inline constexpr uint8_t kInvalid = 0xFFu; // Masks used by SizeOpMap. static inline constexpr uint8_t kSzQ = (0x3u << kSizeShift) | kQ; static inline constexpr uint8_t kSzS = (0x3u << kSizeShift) | kS; static inline constexpr uint8_t kSzQS = (0x3u << kSizeShift) | kQ | kS; //! \} //! \name Members //! \{ uint8_t value; //! \} //! \name Accessors //! \{ inline bool is_valid() const noexcept { return value != kInvalid; } inline void make_invalid() noexcept { value = kInvalid; } inline uint32_t q() const noexcept { return (value >> k128BitShift) & 0x1u; } inline uint32_t qs() const noexcept { return ((value >> k128BitShift) | (value >> kScalarShift)) & 0x1u; } inline uint32_t scalar() const noexcept { return (value >> kScalarShift) & 0x1u; } inline uint32_t size() const noexcept { return (value >> kSizeShift) & 0x3u; } inline void decrement_size() noexcept { ASMJIT_ASSERT(size() > 0); value = uint8_t(value - (1u << kSizeShift)); } //! \} }; struct SizeOpTable { enum TableId : uint8_t { kTableBin = 0, kTableAny, kCount }; // 40 elements for each combination. SizeOp array[(uint32_t(RegType::kVec128) - uint32_t(RegType::kVec8) + 1) * 8]; }; #define VALUE_BIN(x) { \ x == (((uint32_t(RegType::kVec64 ) - uint32_t(RegType::kVec8)) << 3) | uint32_t(VecElementType::kNone)) ? SizeOp::k00 : \ x == (((uint32_t(RegType::kVec128) - uint32_t(RegType::kVec8)) << 3) | uint32_t(VecElementType::kNone)) ? SizeOp::k00Q : \ x == (((uint32_t(RegType::kVec64 ) - uint32_t(RegType::kVec8)) << 3) | uint32_t(VecElementType::kB )) ? SizeOp::k00 : \ x == (((uint32_t(RegType::kVec128) - uint32_t(RegType::kVec8)) << 3) | uint32_t(VecElementType::kB )) ? SizeOp::k00Q : SizeOp::kInvalid \ } #define VALUE_ANY(x) { \ x == (((uint32_t(RegType::kVec8) - uint32_t(RegType::kVec8)) << 3) | uint32_t(VecElementType::kNone)) ? SizeOp::k00S : \ x == (((uint32_t(RegType::kVec16) - uint32_t(RegType::kVec8)) << 3) | uint32_t(VecElementType::kNone)) ? SizeOp::k01S : \ x == (((uint32_t(RegType::kVec32) - uint32_t(RegType::kVec8)) << 3) | uint32_t(VecElementType::kNone)) ? SizeOp::k10S : \ x == (((uint32_t(RegType::kVec64) - uint32_t(RegType::kVec8)) << 3) | uint32_t(VecElementType::kNone)) ? SizeOp::k11S : \ x == (((uint32_t(RegType::kVec64) - uint32_t(RegType::kVec8)) << 3) | uint32_t(VecElementType::kB )) ? SizeOp::k00 : \ x == (((uint32_t(RegType::kVec128) - uint32_t(RegType::kVec8)) << 3) | uint32_t(VecElementType::kB )) ? SizeOp::k00Q : \ x == (((uint32_t(RegType::kVec64) - uint32_t(RegType::kVec8)) << 3) | uint32_t(VecElementType::kH )) ? SizeOp::k01 : \ x == (((uint32_t(RegType::kVec128) - uint32_t(RegType::kVec8)) << 3) | uint32_t(VecElementType::kH )) ? SizeOp::k01Q : \ x == (((uint32_t(RegType::kVec64) - uint32_t(RegType::kVec8)) << 3) | uint32_t(VecElementType::kS )) ? SizeOp::k10 : \ x == (((uint32_t(RegType::kVec128) - uint32_t(RegType::kVec8)) << 3) | uint32_t(VecElementType::kS )) ? SizeOp::k10Q : \ x == (((uint32_t(RegType::kVec64) - uint32_t(RegType::kVec8)) << 3) | uint32_t(VecElementType::kD )) ? SizeOp::k11S : \ x == (((uint32_t(RegType::kVec128) - uint32_t(RegType::kVec8)) << 3) | uint32_t(VecElementType::kD )) ? SizeOp::k11Q : SizeOp::kInvalid \ } static const SizeOpTable size_op_table[SizeOpTable::kCount] = { {{ ASMJIT_LOOKUP_TABLE_40(VALUE_BIN, 0) }}, {{ ASMJIT_LOOKUP_TABLE_40(VALUE_ANY, 0) }} }; #undef VALUE_ANY #undef VALUE_BIN struct SizeOpMap { uint8_t table_id; uint8_t size_op_mask; uint16_t accept_mask; }; static const constexpr SizeOpMap size_op_map[InstDB::kVO_Count] = { { // kVO_V_B: SizeOpTable::kTableBin, SizeOp::kQ , uint16_t(B(SizeOp::k00) | B(SizeOp::k00Q)) }, { // kVO_V_BH: SizeOpTable::kTableAny, SizeOp::kSzQS, uint16_t(B(SizeOp::k00) | B(SizeOp::k00Q) | B(SizeOp::k01) | B(SizeOp::k01Q)) }, { // kVO_V_BH_4S: SizeOpTable::kTableAny, SizeOp::kSzQS, uint16_t(B(SizeOp::k00) | B(SizeOp::k00Q) | B(SizeOp::k01) | B(SizeOp::k01Q) | B(SizeOp::k10Q)) }, { // kVO_V_BHS: SizeOpTable::kTableAny, SizeOp::kSzQS, uint16_t(B(SizeOp::k00) | B(SizeOp::k00Q) | B(SizeOp::k01) | B(SizeOp::k01Q) | B(SizeOp::k10) | B(SizeOp::k10Q)) }, { // kVO_V_BHS_D2: SizeOpTable::kTableAny, SizeOp::kSzQS, uint16_t(B(SizeOp::k00) | B(SizeOp::k00Q) | B(SizeOp::k01) | B(SizeOp::k01Q) | B(SizeOp::k10) | B(SizeOp::k10Q) | B(SizeOp::k11Q)) }, { // kVO_V_HS: SizeOpTable::kTableAny, SizeOp::kSzQS, uint16_t(B(SizeOp::k01) | B(SizeOp::k01Q) | B(SizeOp::k10) | B(SizeOp::k10Q)) }, { // kVO_V_S: SizeOpTable::kTableAny, SizeOp::kQ , uint16_t(B(SizeOp::k10) | B(SizeOp::k10Q)) }, { // kVO_V_B8H4: SizeOpTable::kTableAny, SizeOp::kSzQS, uint16_t(B(SizeOp::k00) | B(SizeOp::k01)) }, { // kVO_V_B8H4S2: SizeOpTable::kTableAny, SizeOp::kSzQS, uint16_t(B(SizeOp::k00) | B(SizeOp::k01) | B(SizeOp::k10)) }, { // kVO_V_B8D1: SizeOpTable::kTableAny, SizeOp::kSzQ , uint16_t(B(SizeOp::k00) | B(SizeOp::k11S)) }, { // kVO_V_H4S2: SizeOpTable::kTableAny, SizeOp::kSzQS, uint16_t(B(SizeOp::k01) | B(SizeOp::k10)) }, { // kVO_V_B16: SizeOpTable::kTableBin, SizeOp::kQ , uint16_t(B(SizeOp::k00Q)) }, { // kVO_V_B16H8: SizeOpTable::kTableAny, SizeOp::kSzQS, uint16_t(B(SizeOp::k00Q) | B(SizeOp::k01Q)) }, { // kVO_V_B16H8S4: SizeOpTable::kTableAny, SizeOp::kSzQS, uint16_t(B(SizeOp::k00Q) | B(SizeOp::k01Q) | B(SizeOp::k10Q)) }, { // kVO_V_B16D2: SizeOpTable::kTableAny, SizeOp::kSzQS, uint16_t(B(SizeOp::k00Q) | B(SizeOp::k11Q)) }, { // kVO_V_H8S4: SizeOpTable::kTableAny, SizeOp::kSzQS, uint16_t(B(SizeOp::k01Q) | B(SizeOp::k10Q)) }, { // kVO_V_S4: SizeOpTable::kTableAny, 0 , uint16_t(B(SizeOp::k10Q)) }, { // kVO_V_D2: SizeOpTable::kTableAny, 0 , uint16_t(B(SizeOp::k11Q)) }, { // kVO_SV_BHS: SizeOpTable::kTableAny, SizeOp::kSzQS, uint16_t(B(SizeOp::k00) | B(SizeOp::k00Q) | B(SizeOp::k00S) | B(SizeOp::k01) | B(SizeOp::k01Q) | B(SizeOp::k01S) | B(SizeOp::k10) | B(SizeOp::k10Q) | B(SizeOp::k10S)) }, { // kVO_SV_B8H4S2: SizeOpTable::kTableAny, SizeOp::kSzQS, uint16_t(B(SizeOp::k00) | B(SizeOp::k00S) | B(SizeOp::k01) | B(SizeOp::k01S) | B(SizeOp::k10) | B(SizeOp::k10S)) }, { // kVO_SV_HS: SizeOpTable::kTableAny, SizeOp::kSzQS, uint16_t(B(SizeOp::k01) | B(SizeOp::k01Q) | B(SizeOp::k01S) | B(SizeOp::k10) | B(SizeOp::k10Q) | B(SizeOp::k10S)) }, { // kVO_V_Any: SizeOpTable::kTableAny, SizeOp::kSzQS, uint16_t(B(SizeOp::k00) | B(SizeOp::k00Q) | B(SizeOp::k01) | B(SizeOp::k01Q) | B(SizeOp::k10) | B(SizeOp::k10Q) | B(SizeOp::k11S) | B(SizeOp::k11Q)) }, { // kVO_SV_Any: SizeOpTable::kTableAny, SizeOp::kSzQS, uint16_t(B(SizeOp::k00) | B(SizeOp::k00Q) | B(SizeOp::k00S) | B(SizeOp::k01) | B(SizeOp::k01Q) | B(SizeOp::k01S) | B(SizeOp::k10) | B(SizeOp::k10Q) | B(SizeOp::k10S) | B(SizeOp::k11) | B(SizeOp::k11Q) | B(SizeOp::k11S)) } }; static const Operand_& significant_simd_op(const Operand_& o0, const Operand_& o1, uint32_t inst_flags) noexcept { return !(inst_flags & InstDB::kInstFlagLong) ? o0 : o1; } static inline SizeOp element_type_to_size_op(uint32_t vec_op_type, RegType reg_type, VecElementType element_type) noexcept { // Instruction data or Assembler is wrong if this triggers an assertion failure. ASMJIT_ASSERT(vec_op_type < InstDB::kVO_Count); // ElementType uses 3 bits in the operand signature, it should never overflow. ASMJIT_ASSERT(uint32_t(element_type) <= 0x7u); const SizeOpMap& map = size_op_map[vec_op_type]; const SizeOpTable& table = size_op_table[map.table_id]; size_t index = (Support::min(diff(reg_type, RegType::kVec8), diff(RegType::kVec128, RegType::kVec8) + 1) << 3) | uint32_t(element_type); SizeOp op = table.array[index]; SizeOp modified_op { uint8_t(op.value & map.size_op_mask) }; if (!Support::bit_test(map.accept_mask, op.value)) { modified_op.make_invalid(); } return modified_op; } // a64::Assembler - Immediate Encoding Utilities (Integral) // ======================================================== using Utils::LogicalImm; struct HalfWordImm { uint32_t hw; uint32_t inv; uint32_t imm; }; struct LMHImm { uint32_t lm; uint32_t h; uint32_t max_rm_id; }; static inline uint32_t count_zero_half_words_64(uint64_t imm) noexcept { return uint32_t((imm & 0x000000000000FFFFu) == 0) + uint32_t((imm & 0x00000000FFFF0000u) == 0) + uint32_t((imm & 0x0000FFFF00000000u) == 0) + uint32_t((imm & 0xFFFF000000000000u) == 0) ; } static uint32_t encode_mov_sequence_32(uint32_t out[2], uint32_t imm, uint32_t rd, uint32_t x) noexcept { ASMJIT_ASSERT(rd <= 31); uint32_t kMovZ = 0b01010010100000000000000000000000 | (x << 31); uint32_t kMovN = 0b00010010100000000000000000000000; uint32_t kMovK = 0b01110010100000000000000000000000; if ((imm & 0xFFFF0000u) == 0x00000000u) { out[0] = kMovZ | (0 << 21) | ((imm & 0xFFFFu) << 5) | rd; return 1; } if ((imm & 0xFFFF0000u) == 0xFFFF0000u) { out[0] = kMovN | (0 << 21) | ((~imm & 0xFFFFu) << 5) | rd; return 1; } if ((imm & 0x0000FFFFu) == 0x00000000u) { out[0] = kMovZ | (1 << 21) | ((imm >> 16) << 5) | rd; return 1; } if ((imm & 0x0000FFFFu) == 0x0000FFFFu) { out[0] = kMovN | (1 << 21) | ((~imm >> 16) << 5) | rd; return 1; } out[0] = kMovZ | (0 << 21) | ((imm & 0xFFFFu) << 5) | rd; out[1] = kMovK | (1 << 21) | ((imm >> 16) << 5) | rd; return 2; } static uint32_t encode_mov_sequence_64(uint32_t out[4], uint64_t imm, uint32_t rd, uint32_t x) noexcept { ASMJIT_ASSERT(rd <= 31); uint32_t kMovZ = 0b11010010100000000000000000000000; uint32_t kMovN = 0b10010010100000000000000000000000; uint32_t kMovK = 0b11110010100000000000000000000000; if (imm <= 0xFFFFFFFFu) return encode_mov_sequence_32(out, uint32_t(imm), rd, x); uint32_t zhw = count_zero_half_words_64( imm); uint32_t ohw = count_zero_half_words_64(~imm); if (zhw >= ohw) { uint32_t op = kMovZ; uint32_t count = 0; for (uint32_t hw_index = 0; hw_index < 4; hw_index++, imm >>= 16) { uint32_t hw_imm = uint32_t(imm & 0xFFFFu); if (hw_imm == 0) { continue; } out[count++] = op | (hw_index << 21) | (hw_imm << 5) | rd; op = kMovK; } // This should not happen - zero should be handled by encode_mov_sequence_32(). ASMJIT_ASSERT(count > 0); return count; } else { uint32_t op = kMovN; uint32_t count = 0; uint32_t neg_mask = 0xFFFFu; for (uint32_t hw_index = 0; hw_index < 4; hw_index++, imm >>= 16) { uint32_t hw_imm = uint32_t(imm & 0xFFFFu); if (hw_imm == 0xFFFFu) { continue; } out[count++] = op | (hw_index << 21) | ((hw_imm ^ neg_mask) << 5) | rd; op = kMovK; neg_mask = 0; } if (count == 0) { out[count++] = kMovN | ((0xFFFF ^ neg_mask) << 5) | rd; } return count; } } static inline bool encode_lmh(uint32_t size_field, uint32_t element_index, Out out) noexcept { if (size_field != 1 && size_field != 2) return false; uint32_t h_shift = 3u - size_field; uint32_t lm_shift = size_field - 1u; uint32_t max_element_index = 15u >> size_field; out->h = element_index >> h_shift; out->lm = (element_index << lm_shift) & 0x3u; out->max_rm_id = (8u << size_field) - 1; return element_index <= max_element_index; } // a64::Assembler - Opcode // ======================= //! Helper class to store and manipulate ARM opcode. struct Opcode { uint32_t v; enum Bits : uint32_t { kN = (1u << 22), kQ = (1u << 30), kX = (1u << 31) }; // -------------------------------------------------------------------------- // [Opcode Builder] // -------------------------------------------------------------------------- inline uint32_t get() const noexcept { return v; } inline void reset(uint32_t value) noexcept { v = value; } inline bool has_q() const noexcept { return (v & kQ) != 0; } inline bool has_x() const noexcept { return (v & kX) != 0; } template inline Opcode& add_imm(T value, uint32_t bit_index) noexcept { return operator|=(uint32_t(value) << bit_index); } template inline Opcode& xor_imm(T value, uint32_t bit_index) noexcept { return operator^=(uint32_t(value) << bit_index); } template inline Opcode& add_if(T value, const Condition& condition) noexcept { return operator|=(condition ? uint32_t(value) : uint32_t(0)); } inline Opcode& add_logical_imm(const LogicalImm& logical_imm) noexcept { add_imm(logical_imm.n, 22); add_imm(logical_imm.r, 16); add_imm(logical_imm.s, 10); return *this; } inline Opcode& add_reg(uint32_t id, uint32_t bit_index) noexcept { return operator|=((id & 31u) << bit_index); } inline Opcode& add_reg(const Operand_& op, uint32_t bit_index) noexcept { return add_reg(op.id(), bit_index); } inline Opcode& operator=(uint32_t x) noexcept { v = x; return *this; } inline Opcode& operator&=(uint32_t x) noexcept { v &= x; return *this; } inline Opcode& operator|=(uint32_t x) noexcept { v |= x; return *this; } inline Opcode& operator^=(uint32_t x) noexcept { v ^= x; return *this; } inline uint32_t operator&(uint32_t x) const noexcept { return v & x; } inline uint32_t operator|(uint32_t x) const noexcept { return v | x; } inline uint32_t operator^(uint32_t x) const noexcept { return v ^ x; } }; // a64::Assembler - Signature Utilities // ==================================== // TODO: [ARM] Deprecate match_signature. static inline bool match_signature(const Operand_& o0, const Operand_& o1, uint32_t inst_flags) noexcept { if (!(inst_flags & (InstDB::kInstFlagLong | InstDB::kInstFlagNarrow))) return o0.signature() == o1.signature(); // TODO: [ARM] Something smart to validate this. return true; } static inline bool match_signature(const Operand_& o0, const Operand_& o1, const Operand_& o2, uint32_t inst_flags) noexcept { return match_signature(o0, o1, inst_flags) && o1.signature() == o2.signature(); } static inline bool match_signature(const Operand_& o0, const Operand_& o1, const Operand_& o2, const Operand_& o3, uint32_t inst_flags) noexcept { return match_signature(o0, o1, inst_flags) && o1.signature() == o2.signature() && o2.signature() == o3.signature(); } // Memory must be either: // 1. Absolute address, which will be converted to relative. // 2. Relative displacement (Label). // 3. Base register + either offset or index. static inline bool check_mem_base_index_rel(const Mem& mem) noexcept { // Allowed base types (Nothing, Label, and Gp64). constexpr uint32_t kBaseMask = B(0) | B(RegType::kLabelTag) | B(RegType::kGp64); // Allowed index types (Nothing, Gp32, and Gp64). constexpr uint32_t kIndexMask = B(0) | B(RegType::kGp32) | B(RegType::kGp64) ; RegType base_type = mem.base_type(); RegType index_type = mem.index_type(); if (!Support::bit_test(kBaseMask, base_type)) { return false; } if (base_type > RegType::kLabelTag) { // Index allows either Gp32 or Gp64. if (!Support::bit_test(kIndexMask, index_type)) { return false; } if (index_type == RegType::kNone) { return true; } else { return !mem.has_offset(); } } else { // No index register allowed if this is a PC relative address (literal). return index_type == RegType::kNone; } } struct EncodeFpOpcodeBits { uint32_t size_mask; uint32_t mask[3]; }; static inline bool pick_fp_opcode(const Vec& reg, uint32_t s_op, uint32_t s_hf, uint32_t v_op, uint32_t v_hf, Opcode* opcode, uint32_t* sz_out) noexcept { static constexpr uint32_t kQBitIndex = 30; static const EncodeFpOpcodeBits sz_bits_table[InstDB::kHF_Count] = { { B(2) | B(1) , { 0u , 0u, B(22) } }, { B(2) | B(1) | B(0), { 0u , 0u, 0u } }, { B(2) | B(1) | B(0), { B(23) | B(22) , 0u, B(22) } }, { B(2) | B(1) | B(0), { B(22) | B(20) | B(19) , 0u, B(22) } }, { B(2) | B(1) | B(0), { B(22) | B(21) | B(15) | B(14), 0u, B(22) } }, { B(2) | B(1) | B(0), { B(23) , 0u, B(22) } } }; if (!reg.has_element_type()) { // Scalar operation [HSD]. uint32_t sz = diff(reg.reg_type(), RegType::kVec16); if (sz > 2u || !Support::bit_test(sz_bits_table[s_hf].size_mask, sz)) { return false; } opcode->reset(sz_bits_table[s_hf].mask[sz] ^ s_op); *sz_out = sz; return s_op != 0; } else { // Vector operation [HSD]. uint32_t q = diff(reg.reg_type(), RegType::kVec64); uint32_t sz = diff(reg.element_type(), VecElementType::kH); if (q > 1u || sz > 2u || !Support::bit_test(sz_bits_table[v_hf].size_mask, sz)) { return false; } opcode->reset(sz_bits_table[v_hf].mask[sz] ^ (v_op | (q << kQBitIndex))); *sz_out = sz; return v_op != 0; } } static inline bool pick_fp_opcode(const Vec& reg, uint32_t s_op, uint32_t s_hf, uint32_t v_op, uint32_t v_hf, Opcode* opcode) noexcept { uint32_t sz; return pick_fp_opcode(reg, s_op, s_hf, v_op, v_hf, opcode, &sz); } // a64::Assembler - Operand Checks // =============================== // Checks whether all operands have the same signature. static inline bool check_signature(const Operand_& o0, const Operand_& o1) noexcept { return o0.signature() == o1.signature(); } static inline bool check_signature(const Operand_& o0, const Operand_& o1, const Operand_& o2) noexcept { return o0.signature() == o1.signature() && o1.signature() == o2.signature(); } static inline bool check_signature(const Operand_& o0, const Operand_& o1, const Operand_& o2, const Operand_& o3) noexcept { return o0.signature() == o1.signature() && o1.signature() == o2.signature() && o2.signature() == o3.signature(); } // Checks whether the register is GP register of the allowed types. // // Allowed is a 2-bit mask, where the first bits allows Gp32 and the second bit allows Gp64. These bits are usually // stored within the instruction, but could be also hardcoded in the assembler for instructions where GP types are // not selectable. static inline bool check_gp_type(const Operand_& op, uint32_t allowed) noexcept { RegType type = op.as().reg_type(); return Support::bit_test(allowed << uint32_t(RegType::kGp32), type); } static inline bool check_gp_type(const Operand_& op, uint32_t allowed, uint32_t* x) noexcept { // NOTE: We set 'x' to one only when Gp32 is allowed, otherwise the X is part // of the opcode and we cannot set it. This is why this works without requiring // additional logic. RegType type = op.as().reg_type(); *x = diff(type, RegType::kGp32) & allowed; return Support::bit_test(allowed << uint32_t(RegType::kGp32), type); } static inline bool check_gp_type(const Operand_& o0, const Operand_& o1, uint32_t allowed, uint32_t* x) noexcept { return check_gp_type(o0, allowed, x) && check_signature(o0, o1); } static inline bool check_gp_type(const Operand_& o0, const Operand_& o1, const Operand_& o2, uint32_t allowed, uint32_t* x) noexcept { return check_gp_type(o0, allowed, x) && check_signature(o0, o1, o2); } static inline bool check_gp_id(const Operand_& op, uint32_t hi_id = kZR) noexcept { uint32_t id = op.as().id(); return id < 31u || id == hi_id; } static inline bool check_gp_id(const Operand_& o0, const Operand_& o1, uint32_t hi_id = kZR) noexcept { uint32_t id0 = o0.as().id(); uint32_t id1 = o1.as().id(); return (id0 < 31u || id0 == hi_id) && (id1 < 31u || id1 == hi_id); } static inline bool check_gp_id(const Operand_& o0, const Operand_& o1, const Operand_& o2, uint32_t hi_id = kZR) noexcept { uint32_t id0 = o0.as().id(); uint32_t id1 = o1.as().id(); uint32_t id2 = o2.as().id(); return (id0 < 31u || id0 == hi_id) && (id1 < 31u || id1 == hi_id) && (id2 < 31u || id2 == hi_id); } static inline bool check_vec_id(const Operand_& op) noexcept { uint32_t id = op.as().id(); return id <= 31u; } static inline bool check_vec_id(const Operand_& o0, const Operand_& o1) noexcept { uint32_t id0 = o0.as().id(); uint32_t id1 = o1.as().id(); return (id0 | id1) <= 31u; } /* Unused at the moment. static inline bool check_vec_id(const Operand_& o0, const Operand_& o1, const Operand_& o2) noexcept { uint32_t id0 = o0.as().id(); uint32_t id1 = o1.as().id(); uint32_t id2 = o2.as().id(); return (id0 | id1 | id2) <= 31u; } static inline bool check_vec_id(const Operand_& o0, const Operand_& o1, const Operand_& o2, const Operand_& o3) noexcept { uint32_t id0 = o0.as().id(); uint32_t id1 = o1.as().id(); uint32_t id2 = o2.as().id(); uint32_t id3 = o3.as().id(); return (id0 | id1 | id2 | id3) <= 31u; } */ static inline bool check_mem_base(const Mem& mem) noexcept { return mem.base_type() == RegType::kGp64 && mem.base_id() <= 31; } static inline bool check_even(const Operand_& o0, const Operand_& o1) noexcept { return ((o0.id() | o1.id()) & 1) == 0; } static inline bool check_consecutive(const Operand_& o0, const Operand_& o1) noexcept { return ((o0.id() + 1u) & 0x1Fu) == o1.id(); } static inline bool check_consecutive(const Operand_& o0, const Operand_& o1, const Operand_& o2) noexcept { return ((o0.id() + 1u) & 0x1Fu) == o1.id() && ((o0.id() + 2u) & 0x1Fu) == o2.id(); } static inline bool check_consecutive(const Operand_& o0, const Operand_& o1, const Operand_& o2, const Operand_& o3) noexcept { return ((o0.id() + 1u) & 0x1Fu) == o1.id() && ((o0.id() + 2u) & 0x1Fu) == o2.id() && ((o0.id() + 3u) & 0x1Fu) == o3.id(); } // a64::Assembler - CheckReg // ========================= #define V(index) (index == uint32_t(RegType::kGp32) ? Gp::kIdZr : \ index == uint32_t(RegType::kGp64) ? Gp::kIdZr : \ index == uint32_t(RegType::kVec8) ? 31u : \ index == uint32_t(RegType::kVec16) ? 31u : \ index == uint32_t(RegType::kVec32) ? 31u : \ index == uint32_t(RegType::kVec64) ? 31u : \ index == uint32_t(RegType::kVec128) ? 31u : 0) static const Support::Array common_hi_reg_id_of_type_table = {{ ASMJIT_LOOKUP_TABLE_32(V, 0) }}; #undef V static inline bool check_valid_regs(const Operand_& o0) noexcept { return bool(unsigned(o0.id() < 31) | unsigned(o0.id() == common_hi_reg_id_of_type_table[o0.as().reg_type()])); } static inline bool check_valid_regs(const Operand_& o0, const Operand_& o1) noexcept { return bool((unsigned(o0.id() < 31) | unsigned(o0.id() == common_hi_reg_id_of_type_table[o0.as().reg_type()])) & (unsigned(o1.id() < 31) | unsigned(o1.id() == common_hi_reg_id_of_type_table[o1.as().reg_type()]))); } static inline bool check_valid_regs(const Operand_& o0, const Operand_& o1, const Operand_& o2) noexcept { return bool((unsigned(o0.id() < 31) | unsigned(o0.id() == common_hi_reg_id_of_type_table[o0.as().reg_type()])) & (unsigned(o1.id() < 31) | unsigned(o1.id() == common_hi_reg_id_of_type_table[o1.as().reg_type()])) & (unsigned(o2.id() < 31) | unsigned(o2.id() == common_hi_reg_id_of_type_table[o2.as().reg_type()]))); } static inline bool check_valid_regs(const Operand_& o0, const Operand_& o1, const Operand_& o2, const Operand_& o3) noexcept { return bool((unsigned(o0.id() < 31) | unsigned(o0.id() == common_hi_reg_id_of_type_table[o0.as().reg_type()])) & (unsigned(o1.id() < 31) | unsigned(o1.id() == common_hi_reg_id_of_type_table[o1.as().reg_type()])) & (unsigned(o2.id() < 31) | unsigned(o2.id() == common_hi_reg_id_of_type_table[o2.as().reg_type()])) & (unsigned(o3.id() < 31) | unsigned(o3.id() == common_hi_reg_id_of_type_table[o3.as().reg_type()]))); } // a64::Assembler - Construction & Destruction // =========================================== Assembler::Assembler(CodeHolder* code) noexcept : BaseAssembler() { _arch_mask = uint64_t(1) << uint32_t(Arch::kAArch64); init_emitter_funcs(this); if (code) { code->attach(this); } } Assembler::~Assembler() noexcept {} // a64::Assembler - Emit // ===================== #define ENC_OPS1(OP0) \ (uint32_t(OperandType::k##OP0)) #define ENC_OPS2(OP0, OP1) \ (uint32_t(OperandType::k##OP0) + \ (uint32_t(OperandType::k##OP1) << 3)) #define ENC_OPS3(OP0, OP1, OP2) \ (uint32_t(OperandType::k##OP0) + \ (uint32_t(OperandType::k##OP1) << 3) + \ (uint32_t(OperandType::k##OP2) << 6)) #define ENC_OPS4(OP0, OP1, OP2, OP3) \ (uint32_t(OperandType::k##OP0) + \ (uint32_t(OperandType::k##OP1) << 3) + \ (uint32_t(OperandType::k##OP2) << 6) + \ (uint32_t(OperandType::k##OP3) << 9)) Error Assembler::_emit(InstId inst_id, const Operand_& o0, const Operand_& o1, const Operand_& o2, const Operand_* op_ext) { // Logging/Validation/Error. constexpr InstOptions kRequiresSpecialHandling = InstOptions::kReserved; Error err; CodeWriter writer(this); // Combine all instruction options and also check whether the instruction // is valid. All options that require special handling (including invalid // instruction) are handled by the next branch. InstOptions options = InstOptions(inst_id - 1 >= Inst::_kIdCount - 1) | InstOptions((size_t)(_buffer_end - writer.cursor()) < 4) | inst_options() | forced_inst_options(); CondCode inst_cc = BaseInst::extract_arm_cond_code(inst_id); inst_id = inst_id & uint32_t(InstIdParts::kRealId); if (inst_id >= Inst::_kIdCount) { inst_id = 0; } const InstDB::InstInfo* inst_info = &InstDB::_inst_info_table[inst_id]; uint32_t encoding_index = inst_info->_encoding_data_index; Opcode opcode; uint32_t isign4; uint32_t inst_flags; const Operand_& o3 = op_ext[EmitterUtils::kOp3]; const Operand_* rm_rel = nullptr; uint32_t multiple_op_data[4]; uint32_t multiple_op_count; // These are only used when instruction uses a relative displacement. OffsetFormat offset_format; // Offset format. uint64_t offset_value; // Offset value (if known). if (ASMJIT_UNLIKELY(Support::test(options, kRequiresSpecialHandling))) { if (ASMJIT_UNLIKELY(!_code)) { return report_error(make_error(Error::kNotInitialized)); } // Unknown instruction. if (ASMJIT_UNLIKELY(inst_id == 0)) { goto InvalidInstruction; } // Condition code can only be used with 'B' instruction. if (ASMJIT_UNLIKELY(inst_cc != CondCode::kAL && inst_id != Inst::kIdB)) { goto InvalidInstruction; } // Grow request, happens rarely. err = writer.ensure_space(this, 4); if (ASMJIT_UNLIKELY(err != Error::kOk)) { goto Failed; } #ifndef ASMJIT_NO_INTROSPECTION // Strict validation. if (has_diagnostic_option(DiagnosticOptions::kValidateAssembler)) { Operand_ op_array[Globals::kMaxOpCount]; EmitterUtils::op_array_from_emit_args(op_array, o0, o1, o2, op_ext); err = _funcs.validate(BaseInst(inst_id, options, _extra_reg), op_array, Globals::kMaxOpCount, ValidationFlags::kNone); if (ASMJIT_UNLIKELY(err != Error::kOk)) { goto Failed; } } #endif } // Signature of the first 4 operands. isign4 = (uint32_t(o0.op_type()) ) + (uint32_t(o1.op_type()) << 3) + (uint32_t(o2.op_type()) << 6) + (uint32_t(o3.op_type()) << 9); inst_flags = inst_info->flags(); switch (inst_info->_encoding) { // ------------------------------------------------------------------------ // [Base - Universal] // ------------------------------------------------------------------------ case InstDB::kEncodingBaseOp: { const InstDB::EncodingData::BaseOp& op_data = InstDB::EncodingData::baseOp[encoding_index]; if (isign4 == 0) { opcode.reset(op_data.opcode); goto EmitOp; } break; } case InstDB::kEncodingBaseOpX16: { const InstDB::EncodingData::BaseOpX16& op_data = InstDB::EncodingData::baseOpX16[encoding_index]; if (isign4 == ENC_OPS1(Reg) && o0.as().is_gp64(16)) { opcode.reset(op_data.opcode); goto EmitOp; } break; } case InstDB::kEncodingBaseOpImm: { const InstDB::EncodingData::BaseOpImm& op_data = InstDB::EncodingData::baseOpImm[encoding_index]; if (isign4 == ENC_OPS1(Imm)) { uint64_t imm = o0.as().value_as(); uint32_t immMax = 1u << op_data.imm_bits; if (imm >= immMax) goto InvalidImmediate; opcode.reset(op_data.opcode); opcode.add_imm(imm, op_data.imm_offset); goto EmitOp; } break; } case InstDB::kEncodingBaseR: { const InstDB::EncodingData::BaseR& op_data = InstDB::EncodingData::baseR[encoding_index]; if (isign4 == ENC_OPS1(Reg)) { if (!check_gp_type(o0, op_data.reg_type)) goto InvalidInstruction; if (!check_gp_id(o0, op_data.reg_hi_id)) goto InvalidPhysId; opcode.reset(op_data.opcode); opcode.add_reg(o0, op_data.r_shift); goto EmitOp; } break; } case InstDB::kEncodingBaseRR: { const InstDB::EncodingData::BaseRR& op_data = InstDB::EncodingData::baseRR[encoding_index]; if (isign4 == ENC_OPS2(Reg, Reg)) { uint32_t x; if (!check_gp_type(o0, op_data.a_type, &x)) goto InvalidInstruction; if (!check_gp_type(o1, op_data.b_type)) goto InvalidInstruction; if (op_data.uniform && !check_signature(o0, o1)) goto InvalidInstruction; if (!check_gp_id(o0, op_data.a_hi_id)) goto InvalidPhysId; if (!check_gp_id(o1, op_data.b_hi_id)) goto InvalidPhysId; opcode.reset(op_data.opcode); opcode.add_imm(x, 31); opcode.add_reg(o1, op_data.b_shift); opcode.add_reg(o0, op_data.a_shift); goto EmitOp; } break; } case InstDB::kEncodingBaseRRR: { const InstDB::EncodingData::BaseRRR& op_data = InstDB::EncodingData::baseRRR[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Reg)) { uint32_t x; if (!check_gp_type(o0, op_data.a_type, &x)) goto InvalidInstruction; if (!check_gp_type(o1, op_data.b_type)) goto InvalidInstruction; if (!check_gp_type(o2, op_data.c_type)) goto InvalidInstruction; if (op_data.uniform && !check_signature(o0, o1, o2)) goto InvalidInstruction; if (!check_gp_id(o0, op_data.a_hi_id)) goto InvalidPhysId; if (!check_gp_id(o1, op_data.b_hi_id)) goto InvalidPhysId; if (!check_gp_id(o2, op_data.c_hi_id)) goto InvalidPhysId; opcode.reset(op_data.opcode()); opcode.add_imm(x, 31); opcode.add_reg(o2, 16); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } break; } case InstDB::kEncodingBaseRRRR: { const InstDB::EncodingData::BaseRRRR& op_data = InstDB::EncodingData::baseRRRR[encoding_index]; if (isign4 == ENC_OPS4(Reg, Reg, Reg, Reg)) { uint32_t x; if (!check_gp_type(o0, op_data.a_type, &x)) goto InvalidInstruction; if (!check_gp_type(o1, op_data.b_type)) goto InvalidInstruction; if (!check_gp_type(o2, op_data.c_type)) goto InvalidInstruction; if (!check_gp_type(o3, op_data.d_type)) goto InvalidInstruction; if (op_data.uniform && !check_signature(o0, o1, o2, o3)) goto InvalidInstruction; if (!check_gp_id(o0, op_data.a_hi_id)) goto InvalidPhysId; if (!check_gp_id(o1, op_data.b_hi_id)) goto InvalidPhysId; if (!check_gp_id(o2, op_data.c_hi_id)) goto InvalidPhysId; if (!check_gp_id(o3, op_data.d_hi_id)) goto InvalidPhysId; opcode.reset(op_data.opcode()); opcode.add_imm(x, 31); opcode.add_reg(o2, 16); opcode.add_reg(o3, 10); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } break; } case InstDB::kEncodingBaseRRII: { const InstDB::EncodingData::BaseRRII& op_data = InstDB::EncodingData::baseRRII[encoding_index]; if (isign4 == ENC_OPS4(Reg, Reg, Imm, Imm)) { if (!check_gp_type(o0, op_data.a_type)) goto InvalidInstruction; if (!check_gp_type(o1, op_data.b_type)) goto InvalidInstruction; if (!check_gp_id(o0, op_data.a_hi_id)) goto InvalidPhysId; if (!check_gp_id(o1, op_data.b_hi_id)) goto InvalidPhysId; if (o2.as().value_as() >= Support::bit_mask(op_data.a_imm_size + op_data.a_imm_discard_lsb) || o3.as().value_as() >= Support::bit_mask(op_data.b_imm_size + op_data.b_imm_discard_lsb)) goto InvalidImmediate; uint32_t a_imm = o2.as().value_as() >> op_data.a_imm_discard_lsb; uint32_t b_imm = o3.as().value_as() >> op_data.b_imm_discard_lsb; if ((a_imm << op_data.a_imm_discard_lsb) != o2.as().value_as() || (b_imm << op_data.b_imm_discard_lsb) != o3.as().value_as()) goto InvalidImmediate; opcode.reset(op_data.opcode()); opcode.add_imm(a_imm, op_data.a_imm_offset); opcode.add_imm(b_imm, op_data.b_imm_offset); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } break; } // ------------------------------------------------------------------------ // [Base - Mov] // ------------------------------------------------------------------------ case InstDB::kEncodingBaseMov: { // MOV is a pseudo instruction that uses various instructions depending on its signature. uint32_t x = diff(o0.as().reg_type(), RegType::kGp32); if (x > 1) goto InvalidInstruction; if (isign4 == ENC_OPS2(Reg, Reg)) { if (!o0.as().is_gp()) goto InvalidInstruction; if (!check_signature(o0, o1)) goto InvalidInstruction; bool has_sp = o0.as().is_sp() || o1.as().is_sp(); if (has_sp) { // Cannot be combined with ZR. if (!check_gp_id(o0, o1, kSP)) goto InvalidPhysId; // MOV Rd, Rm -> ADD Rd, Rn, #0. opcode.reset(0b00010001000000000000000000000000); opcode.add_imm(x, 31); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } else { if (!check_gp_id(o0, o1, kZR)) goto InvalidPhysId; // MOV Rd, Rm -> ORR Rd, , Rm. opcode.reset(0b00101010000000000000001111100000); opcode.add_imm(x, 31); opcode.add_reg(o1, 16); opcode.add_reg(o0, 0); goto EmitOp; } } if (isign4 == ENC_OPS2(Reg, Imm)) { if (!o0.as().is_gp()) goto InvalidInstruction; uint64_t imm_value = o1.as().value_as(); if (!x) imm_value &= 0xFFFFFFFFu; // Prefer a single MOVN/MOVZ instruction over a logical instruction. multiple_op_count = encode_mov_sequence_64(multiple_op_data, imm_value, o0.id() & 31, x); if (multiple_op_count == 1 && !o0.as().is_sp()) { opcode.reset(multiple_op_data[0]); goto EmitOp; } // Logical instructions use 13-bit immediate pattern encoded as N:ImmR:ImmS. LogicalImm logical_imm; if (!o0.as().is_zr()) { if (Utils::encode_logical_imm(imm_value, x ? 64 : 32, Out(logical_imm))) { if (!check_gp_id(o0, kSP)) goto InvalidPhysId; opcode.reset(0b00110010000000000000001111100000); opcode.add_imm(x, 31); opcode.add_logical_imm(logical_imm); opcode.add_reg(o0, 0); goto EmitOp; } } if (!check_gp_id(o0, kZR)) goto InvalidPhysId; goto EmitOp_Multiple; } break; } case InstDB::kEncodingBaseMovKNZ: { const InstDB::EncodingData::BaseMovKNZ& op_data = InstDB::EncodingData::baseMovKNZ[encoding_index]; uint32_t x = diff(o0.as().reg_type(), RegType::kGp32); if (x > 1) goto InvalidInstruction; if (!check_gp_id(o0, kZR)) goto InvalidPhysId; opcode.reset(op_data.opcode); opcode.add_imm(x, 31); if (isign4 == ENC_OPS2(Reg, Imm)) { uint64_t imm16 = o1.as().value_as(); if (imm16 > 0xFFFFu) goto InvalidImmediate; opcode.add_imm(imm16, 5); opcode.add_reg(o0, 0); goto EmitOp; } if (isign4 == ENC_OPS3(Reg, Imm, Imm)) { uint64_t imm16 = o1.as().value_as(); uint32_t shift_type = o2.as().predicate(); uint64_t shiftValue = o2.as().value_as(); if (imm16 > 0xFFFFu || shiftValue > 48 || shift_type != uint32_t(ShiftOp::kLSL)) goto InvalidImmediate; // Convert shift value to 'hw' field. uint32_t hw = uint32_t(shiftValue) >> 4; if ((hw << 4) != uint32_t(shiftValue)) goto InvalidImmediate; opcode.add_imm(hw, 21); opcode.add_imm(imm16, 5); opcode.add_reg(o0, 0); if (!x && hw > 1u) goto InvalidImmediate; goto EmitOp; } break; } // ------------------------------------------------------------------------ // [Base - Adr] // ------------------------------------------------------------------------ case InstDB::kEncodingBaseAdr: { const InstDB::EncodingData::BaseAdr& op_data = InstDB::EncodingData::baseAdr[encoding_index]; if (isign4 == ENC_OPS2(Reg, Label) || isign4 == ENC_OPS2(Reg, Imm)) { if (!o0.as().is_gp64()) goto InvalidInstruction; if (!check_gp_id(o0, kZR)) goto InvalidPhysId; opcode.reset(op_data.opcode()); opcode.add_reg(o0, 0); offset_format.reset_to_imm_value(op_data.offset_type, 4, 5, 21, 0); if (inst_id == Inst::kIdAdrp) offset_format._imm_discard_lsb = 12; rm_rel = &o1; goto EmitOp_Rel; } break; } // ------------------------------------------------------------------------ // [Base - Arithmetic and Logical] // ------------------------------------------------------------------------ case InstDB::kEncodingBaseAddSub: { const InstDB::EncodingData::BaseAddSub& op_data = InstDB::EncodingData::baseAddSub[encoding_index]; uint32_t x; if (!check_gp_type(o0, o1, kWX, &x)) goto InvalidInstruction; if (isign4 == ENC_OPS3(Reg, Reg, Imm) || isign4 == ENC_OPS4(Reg, Reg, Imm, Imm)) { opcode.reset(uint32_t(op_data.immediate_op) << 24); // ADD | SUB (immediate) - ZR is not allowed. // ADDS|SUBS (immediate) - ZR allowed in Rd, SP allowed in Rn. uint32_t a_hi_id = opcode.get() & B(29) ? kZR : kSP; uint32_t b_hi_id = kSP; if (!check_gp_id(o0, a_hi_id) || !check_gp_id(o1, b_hi_id)) goto InvalidPhysId; // ADD|SUB (immediate) use 12-bit immediate optionally shifted by 'LSL #12'. uint64_t imm = o2.as().value_as(); uint32_t shift = 0; if (isign4 == ENC_OPS4(Reg, Reg, Imm, Imm)) { if (o3.as().predicate() != uint32_t(ShiftOp::kLSL)) goto InvalidImmediate; if (o3.as().value() != 0 && o3.as().value() != 12) goto InvalidImmediate; shift = uint32_t(o3.as().value() != 0); } // Accept immediate value of '0x00XXX000' by setting 'shift' to 12. if (imm > 0xFFFu) { if (shift || (imm & ~uint64_t(0xFFFu << 12)) != 0) goto InvalidImmediate; shift = 1; imm >>= 12; } opcode.add_imm(x, 31); opcode.add_imm(shift, 22); opcode.add_imm(imm, 10); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } if (isign4 == ENC_OPS3(Reg, Reg, Reg) || isign4 == ENC_OPS4(Reg, Reg, Reg, Imm)) { uint32_t op_size = x ? 64 : 32; uint64_t shift = 0; uint32_t shift_type = uint32_t(ShiftOp::kLSL); if (isign4 == ENC_OPS4(Reg, Reg, Reg, Imm)) { shift_type = o3.as().predicate(); shift = o3.as().value_as(); } if (!check_gp_id(o2, kZR)) goto InvalidPhysId; // Shift operation - LSL, LSR, ASR. if (shift_type <= uint32_t(ShiftOp::kASR)) { bool has_sp = o0.as().is_sp() || o1.as().is_sp(); if (!has_sp) { if (!check_signature(o1, o2)) { goto InvalidInstruction; } if (!check_gp_id(o0, o1, kZR)) { goto InvalidPhysId; } if (shift >= op_size) { goto InvalidImmediate; } opcode.reset(uint32_t(op_data.shifted_op) << 21); opcode.add_imm(x, 31); opcode.add_imm(shift_type, 22); opcode.add_reg(o2, 16); opcode.add_imm(shift, 10); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } // SP register can only be used with LSL or Extend. if (shift_type != uint32_t(ShiftOp::kLSL)) { goto InvalidImmediate; } shift_type = x ? uint32_t(ShiftOp::kUXTX) : uint32_t(ShiftOp::kUXTW); } // Extend operation - UXTB, UXTH, UXTW, UXTX, SXTB, SXTH, SXTW, SXTX. opcode.reset(uint32_t(op_data.extended_op) << 21); shift_type -= uint32_t(ShiftOp::kUXTB); if (shift_type > 7 || shift > 4) { goto InvalidImmediate; } if (!(opcode.get() & B(29))) { // ADD|SUB (extend) - ZR is not allowed. if (!check_gp_id(o0, o1, kSP)) goto InvalidPhysId; } else { // ADDS|SUBS (extend) - ZR allowed in Rd, SP allowed in Rn. if (!check_gp_id(o0, kZR) || !check_gp_id(o1, kSP)) goto InvalidPhysId; } // Validate whether the register operands match extend option. if (o2.as().reg_type() != extend_option_to_reg_type(shift_type) || o1.as().reg_type() < o2.as().reg_type()) { goto InvalidInstruction; } opcode.add_imm(x, 31); opcode.add_reg(o2, 16); opcode.add_imm(shift_type, 13); opcode.add_imm(shift, 10); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } break; } case InstDB::kEncodingBaseLogical: { const InstDB::EncodingData::BaseLogical& op_data = InstDB::EncodingData::baseLogical[encoding_index]; uint32_t x; if (!check_gp_type(o0, o1, kWX, &x)) goto InvalidInstruction; if (!check_signature(o0, o1)) goto InvalidInstruction; uint32_t op_size = x ? 64 : 32; if (isign4 == ENC_OPS3(Reg, Reg, Imm) && op_data.immediate_op != 0) { opcode.reset(uint32_t(op_data.immediate_op) << 23); // AND|ANDS|BIC|BICS|ORR|EOR (immediate) uses a LogicalImm format described by N:R:S values. uint64_t imm_mask = Support::lsb_mask(op_size); uint64_t imm_value = o2.as().value_as(); if (op_data.negate_imm) imm_value ^= imm_mask; // Logical instructions use 13-bit immediate pattern encoded as N:ImmS:ImmR. LogicalImm logical_imm; if (!Utils::encode_logical_imm(imm_value & imm_mask, op_size, Out(logical_imm))) goto InvalidImmediate; // AND|BIC|ORR|EOR (immediate) can have SP on destination, but ANDS|BICS (immediate) cannot. uint32_t kOpANDS = 0x3 << 29; bool isANDS = (opcode.get() & kOpANDS) == kOpANDS; if (!check_gp_id(o0, isANDS ? kZR : kSP) || !check_gp_id(o1, kZR)) goto InvalidPhysId; opcode.add_imm(x, 31); opcode.add_logical_imm(logical_imm); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } if (!check_signature(o1, o2)) goto InvalidInstruction; if (isign4 == ENC_OPS3(Reg, Reg, Reg)) { if (!check_gp_id(o0, o1, o2, kZR)) goto InvalidPhysId; opcode.reset(uint32_t(op_data.shifted_op) << 21); opcode.add_imm(x, 31); opcode.add_reg(o2, 16); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } if (isign4 == ENC_OPS4(Reg, Reg, Reg, Imm)) { if (!check_gp_id(o0, o1, o2, kZR)) goto InvalidPhysId; uint32_t shift_type = o3.as().predicate(); uint64_t op_shift = o3.as().value_as(); if (shift_type > 0x3 || op_shift >= op_size) goto InvalidImmediate; opcode.reset(uint32_t(op_data.shifted_op) << 21); opcode.add_imm(x, 31); opcode.add_imm(shift_type, 22); opcode.add_reg(o2, 16); opcode.add_imm(op_shift, 10); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } break; } case InstDB::kEncodingBaseCmpCmn: { const InstDB::EncodingData::BaseCmpCmn& op_data = InstDB::EncodingData::baseCmpCmn[encoding_index]; uint32_t x; if (!check_gp_type(o0, kWX, &x)) goto InvalidInstruction; if (isign4 == ENC_OPS2(Reg, Imm)) { // CMN|CMP (immediate) - ZR is not allowed. if (!check_gp_id(o0, kSP)) goto InvalidPhysId; // CMN|CMP (immediate) use 12-bit immediate optionally shifted by 'LSL #12'. const Imm& imm12 = o1.as(); uint32_t imm_shift = 0; uint64_t imm_value = imm12.value_as(); if (imm_value > 0xFFFu) { if ((imm_value & ~uint64_t(0xFFFu << 12)) != 0) goto InvalidImmediate; imm_shift = 1; imm_value >>= 12; } opcode.reset(uint32_t(op_data.immediate_op) << 24); opcode.add_imm(x, 31); opcode.add_imm(imm_shift, 22); opcode.add_imm(imm_value, 10); opcode.add_reg(o0, 5); opcode.add_reg(Gp::kIdZr, 0); goto EmitOp; } if (isign4 == ENC_OPS2(Reg, Reg) || isign4 == ENC_OPS3(Reg, Reg, Imm)) { uint32_t op_size = x ? 64 : 32; uint32_t shift_type = 0; uint64_t shift_value = 0; if (isign4 == ENC_OPS3(Reg, Reg, Imm)) { shift_type = o2.as().predicate(); shift_value = o2.as().value_as(); } bool has_sp = o0.as().is_sp() || o1.as().is_sp(); // Shift operation - LSL, LSR, ASR. if (shift_type <= uint32_t(ShiftOp::kASR)) { if (!has_sp) { if (!check_signature(o0, o1)) { goto InvalidInstruction; } if (shift_value >= op_size) { goto InvalidImmediate; } opcode.reset(uint32_t(op_data.shifted_op) << 21); opcode.add_imm(x, 31); opcode.add_imm(shift_type, 22); opcode.add_reg(o1, 16); opcode.add_imm(shift_value, 10); opcode.add_reg(o0, 5); opcode.add_reg(Gp::kIdZr, 0); goto EmitOp; } // SP register can only be used with LSL or Extend. if (shift_type != uint32_t(ShiftOp::kLSL)) goto InvalidImmediate; shift_type = x ? uint32_t(ShiftOp::kUXTX) : uint32_t(ShiftOp::kUXTW); } // Extend operation - UXTB, UXTH, UXTW, UXTX, SXTB, SXTH, SXTW, SXTX. shift_type -= uint32_t(ShiftOp::kUXTB); if (shift_type > 7 || shift_value > 4) { goto InvalidImmediate; } // Validate whether the register operands match extend option. if (o1.as().reg_type() != extend_option_to_reg_type(shift_type) || o0.as().reg_type() < o1.as().reg_type()) { goto InvalidInstruction; } opcode.reset(uint32_t(op_data.extended_op) << 21); opcode.add_imm(x, 31); opcode.add_reg(o1, 16); opcode.add_imm(shift_type, 13); opcode.add_imm(shift_value, 10); opcode.add_reg(o0, 5); opcode.add_reg(Gp::kIdZr, 0); goto EmitOp; } break; } case InstDB::kEncodingBaseMvnNeg: { const InstDB::EncodingData::BaseMvnNeg& op_data = InstDB::EncodingData::baseMvnNeg[encoding_index]; uint32_t x; if (!check_gp_type(o0, o1, kWX, &x)) goto InvalidInstruction; opcode.reset(op_data.opcode); opcode.add_imm(x, 31); opcode.add_reg(o1, 16); opcode.add_reg(o0, 0); if (isign4 == ENC_OPS2(Reg, Reg)) { if (!check_gp_id(o0, o1, kZR)) goto InvalidPhysId; goto EmitOp; } if (isign4 == ENC_OPS3(Reg, Reg, Imm)) { if (!check_gp_id(o0, o1, kZR)) goto InvalidPhysId; uint32_t op_size = x ? 64 : 32; uint32_t shift_type = o2.as().predicate(); uint64_t shift_value = o2.as().value_as(); if (shift_type > uint32_t(ShiftOp::kROR) || shift_value >= op_size) goto InvalidImmediate; opcode.add_imm(shift_type, 22); opcode.add_imm(shift_value, 10); goto EmitOp; } break; } case InstDB::kEncodingBaseTst: { const InstDB::EncodingData::BaseTst& op_data = InstDB::EncodingData::baseTst[encoding_index]; uint32_t x; if (!check_gp_type(o0, kWX, &x)) goto InvalidInstruction; uint32_t op_size = x ? 64 : 32; if (isign4 == ENC_OPS2(Reg, Imm) && op_data.immediate_op != 0) { if (!check_gp_id(o0, kZR)) goto InvalidPhysId; // TST (immediate) uses a LogicalImm format described by N:R:S values. uint64_t imm_mask = Support::lsb_mask(op_size); uint64_t imm_value = o1.as().value_as(); // Logical instructions use 13-bit immediate pattern encoded as N:ImmS:ImmR. LogicalImm logical_imm; if (!Utils::encode_logical_imm(imm_value & imm_mask, op_size, Out(logical_imm))) goto InvalidImmediate; opcode.reset(uint32_t(op_data.immediate_op) << 22); opcode.add_logical_imm(logical_imm); opcode.add_imm(x, 31); opcode.add_reg(o0, 5); opcode.add_reg(Gp::kIdZr, 0); goto EmitOp; } opcode.reset(uint32_t(op_data.shifted_op) << 21); opcode.add_imm(x, 31); opcode.add_reg(o1, 16); opcode.add_reg(o0, 5); opcode.add_reg(Gp::kIdZr, 0); if (isign4 == ENC_OPS2(Reg, Reg)) { if (!check_gp_id(o0, o1, kZR)) goto InvalidPhysId; goto EmitOp; } if (isign4 == ENC_OPS3(Reg, Reg, Imm)) { if (!check_gp_id(o0, o1, kZR)) goto InvalidPhysId; uint32_t shift_type = o2.as().predicate(); uint64_t op_shift = o2.as().value_as(); if (shift_type > 0x3 || op_shift >= op_size) goto InvalidImmediate; opcode.add_imm(shift_type, 22); opcode.add_imm(op_shift, 10); goto EmitOp; } break; } // ------------------------------------------------------------------------ // [Base - Bit Manipulation] // ------------------------------------------------------------------------ case InstDB::kEncodingBaseBfc: { const InstDB::EncodingData::BaseBfc& op_data = InstDB::EncodingData::baseBfc[encoding_index]; if (isign4 == ENC_OPS3(Reg, Imm, Imm)) { uint32_t x; if (!check_gp_type(o0, InstDB::kWX, &x)) goto InvalidInstruction; if (!check_gp_id(o0)) goto InvalidPhysId; uint64_t lsb = o1.as().value_as(); uint64_t width = o2.as().value_as(); uint32_t op_size = x ? 64 : 32; if (lsb >= op_size || width == 0 || width > op_size) goto InvalidImmediate; uint32_t lsb32 = Support::neg(uint32_t(lsb)) & (op_size - 1); uint32_t width32 = uint32_t(width) - 1; opcode.reset(op_data.opcode); opcode.add_imm(x, 31); opcode.add_imm(x, 22); opcode.add_imm(lsb32, 16); opcode.add_imm(width32, 10); opcode.add_reg(o0, 0); goto EmitOp; } break; } case InstDB::kEncodingBaseBfi: { const InstDB::EncodingData::BaseBfi& op_data = InstDB::EncodingData::baseBfi[encoding_index]; if (isign4 == ENC_OPS4(Reg, Reg, Imm, Imm)) { uint32_t x; if (!check_gp_type(o0, InstDB::kWX, &x)) goto InvalidInstruction; if (!check_signature(o0, o1)) goto InvalidInstruction; if (!check_gp_id(o0, o1)) goto InvalidPhysId; uint64_t lsb = o2.as().value_as(); uint64_t width = o3.as().value_as(); uint32_t op_size = x ? 64 : 32; if (lsb >= op_size || width == 0 || width > op_size) goto InvalidImmediate; uint32_t imm_l = Support::neg(uint32_t(lsb)) & (op_size - 1); uint32_t imm_w = uint32_t(width) - 1; opcode.reset(op_data.opcode); opcode.add_imm(x, 31); opcode.add_imm(x, 22); opcode.add_imm(imm_l, 16); opcode.add_imm(imm_w, 10); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } break; } case InstDB::kEncodingBaseBfm: { const InstDB::EncodingData::BaseBfm& op_data = InstDB::EncodingData::baseBfm[encoding_index]; if (isign4 == ENC_OPS4(Reg, Reg, Imm, Imm)) { uint32_t x; if (!check_gp_type(o0, InstDB::kWX, &x)) goto InvalidInstruction; if (!check_signature(o0, o1)) goto InvalidInstruction; if (!check_gp_id(o0, o1)) goto InvalidPhysId; uint64_t imm_r = o2.as().value_as(); uint64_t imm_s = o3.as().value_as(); uint32_t op_size = x ? 64 : 32; if ((imm_r | imm_s) >= op_size) goto InvalidImmediate; opcode.reset(op_data.opcode); opcode.add_imm(x, 31); opcode.add_imm(x, 22); opcode.add_imm(imm_r, 16); opcode.add_imm(imm_s, 10); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } break; } case InstDB::kEncodingBaseBfx: { const InstDB::EncodingData::BaseBfx& op_data = InstDB::EncodingData::baseBfx[encoding_index]; if (isign4 == ENC_OPS4(Reg, Reg, Imm, Imm)) { uint32_t x; if (!check_gp_type(o0, InstDB::kWX, &x)) goto InvalidInstruction; if (!check_signature(o0, o1)) goto InvalidInstruction; if (!check_gp_id(o0, o1)) goto InvalidPhysId; uint64_t lsb = o2.as().value_as(); uint64_t width = o3.as().value_as(); uint32_t op_size = x ? 64 : 32; if (lsb >= op_size || width == 0 || width > op_size) goto InvalidImmediate; uint32_t lsb32 = uint32_t(lsb); uint32_t width32 = lsb32 + uint32_t(width) - 1u; if (width32 >= op_size) goto InvalidImmediate; opcode.reset(op_data.opcode); opcode.add_imm(x, 31); opcode.add_imm(x, 22); opcode.add_imm(lsb32, 16); opcode.add_imm(width32, 10); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } break; } case InstDB::kEncodingBaseExtend: { const InstDB::EncodingData::BaseExtend& op_data = InstDB::EncodingData::baseExtend[encoding_index]; if (isign4 == ENC_OPS2(Reg, Reg)) { uint32_t x; if (!check_gp_type(o0, op_data.reg_type, &x)) goto InvalidInstruction; if (!o1.as().is_gp32()) goto InvalidInstruction; if (!check_gp_id(o0, o1)) goto InvalidPhysId; opcode.reset(op_data.opcode()); opcode.add_imm(x, 31); opcode.add_imm(x, 22); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } break; } case InstDB::kEncodingBaseExtract: { const InstDB::EncodingData::BaseExtract& op_data = InstDB::EncodingData::baseExtract[encoding_index]; if (isign4 == ENC_OPS4(Reg, Reg, Reg, Imm)) { uint32_t x; if (!check_gp_type(o0, kWX, &x)) goto InvalidInstruction; if (!check_signature(o0, o1, o2)) goto InvalidInstruction; if (!check_gp_id(o0, o1, o2)) goto InvalidPhysId; uint64_t lsb = o3.as().value_as(); uint32_t op_size = x ? 64 : 32; if (lsb >= op_size) goto InvalidImmediate; opcode.reset(op_data.opcode); opcode.add_imm(x, 31); opcode.add_imm(x, 22); opcode.add_reg(o2, 16); opcode.add_imm(lsb, 10); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } break; } case InstDB::kEncodingBaseRev: { if (isign4 == ENC_OPS2(Reg, Reg)) { uint32_t x; if (!check_gp_type(o0, InstDB::kWX, &x)) goto InvalidInstruction; if (!check_signature(o0, o1)) goto InvalidInstruction; if (!check_gp_id(o0, o1)) goto InvalidPhysId; opcode.reset(0b01011010110000000000100000000000); opcode.add_imm(x, 31); opcode.add_imm(x, 10); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } break; } case InstDB::kEncodingBaseShift: { const InstDB::EncodingData::BaseShift& op_data = InstDB::EncodingData::baseShift[encoding_index]; uint32_t x; if (!check_gp_type(o0, kWX, &x)) goto InvalidInstruction; if (isign4 == ENC_OPS3(Reg, Reg, Reg)) { if (!check_signature(o0, o1, o2)) goto InvalidInstruction; if (!check_gp_id(o0, o1, o2, kZR)) goto InvalidPhysId; opcode.reset(op_data.register_op()); opcode.add_imm(x, 31); opcode.add_reg(o2, 16); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } if (isign4 == ENC_OPS3(Reg, Reg, Imm) && op_data.immediate_op()) { if (!check_signature(o0, o1)) goto InvalidInstruction; if (!check_gp_id(o0, o1, kZR)) goto InvalidPhysId; uint64_t imm_r = o2.as().value_as(); uint32_t op_size = x ? 64 : 32; if (imm_r >= op_size) goto InvalidImmediate; opcode.reset(op_data.immediate_op()); opcode.add_imm(x, 31); opcode.add_imm(x, 22); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); if (opcode.get() & B(10)) { // ASR and LSR (immediate) has the same logic. opcode.add_imm(x, 15); opcode.add_imm(imm_r, 16); goto EmitOp; } if (op_data.ror == 0) { // LSL (immediate) is an alias to UBFM uint32_t ubfm_imm_r = Support::neg(uint32_t(imm_r)) & (op_size - 1); uint32_t ubfm_imm_s = op_size - 1 - uint32_t(imm_r); opcode.add_imm(ubfm_imm_r, 16); opcode.add_imm(ubfm_imm_s, 10); goto EmitOp; } else { // ROR (immediate) is an alias to EXTR. opcode.add_imm(imm_r, 10); opcode.add_reg(o1, 16); goto EmitOp; } } break; } // ------------------------------------------------------------------------ // [Base - Conditionals] // ------------------------------------------------------------------------ case InstDB::kEncodingBaseCCmp: { const InstDB::EncodingData::BaseCCmp& op_data = InstDB::EncodingData::baseCCmp[encoding_index]; if (isign4 == ENC_OPS4(Reg, Reg, Imm, Imm) || isign4 == ENC_OPS4(Reg, Imm, Imm, Imm)) { uint32_t x; if (!check_gp_type(o0, InstDB::kWX, &x)) goto InvalidInstruction; if (!check_gp_id(o0, kZR)) goto InvalidPhysId; uint64_t nzcv = o2.as().value_as(); uint64_t cond = o3.as().value_as(); if ((nzcv | cond) > 0xFu) goto InvalidImmediate; opcode.reset(op_data.opcode); opcode.add_imm(x, 31); opcode.add_imm(cond_code_to_opcode_field(uint32_t(cond)), 12); opcode.add_imm(nzcv, 0); if (isign4 == ENC_OPS4(Reg, Reg, Imm, Imm)) { // CCMN|CCMP (register) form. if (!check_signature(o0, o1)) goto InvalidInstruction; if (!check_gp_id(o1, kZR)) goto InvalidPhysId; opcode.add_reg(o1, 16); opcode.add_reg(o0, 5); goto EmitOp; } else { // CCMN|CCMP (immediate) form. uint64_t imm5 = o1.as().value_as(); if (imm5 > 0x1F) goto InvalidImmediate; opcode.add_imm(1, 11); opcode.add_imm(imm5, 16); opcode.add_reg(o0, 5); goto EmitOp; } } break; } case InstDB::kEncodingBaseCInc: { const InstDB::EncodingData::BaseCInc& op_data = InstDB::EncodingData::baseCInc[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Imm)) { uint32_t x; if (!check_gp_type(o0, o1, InstDB::kWX, &x)) goto InvalidInstruction; if (!check_gp_id(o0, o1, kZR)) goto InvalidPhysId; uint64_t cond = o2.as().value_as(); if (cond - 2u > 0xEu) goto InvalidImmediate; opcode.reset(op_data.opcode); opcode.add_imm(x, 31); opcode.add_reg(o1, 16); opcode.add_imm(cond_code_to_opcode_field(uint32_t(cond)) ^ 1u, 12); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } break; } case InstDB::kEncodingBaseCSel: { const InstDB::EncodingData::BaseCSel& op_data = InstDB::EncodingData::baseCSel[encoding_index]; if (isign4 == ENC_OPS4(Reg, Reg, Reg, Imm)) { uint32_t x; if (!check_gp_type(o0, o1, o2, InstDB::kWX, &x)) goto InvalidInstruction; if (!check_gp_id(o0, o1, o2, kZR)) goto InvalidPhysId; uint64_t cond = o3.as().value_as(); if (cond > 0xFu) goto InvalidImmediate; opcode.reset(op_data.opcode); opcode.add_imm(x, 31); opcode.add_reg(o2, 16); opcode.add_imm(cond_code_to_opcode_field(uint32_t(cond)), 12); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } break; } case InstDB::kEncodingBaseCSet: { const InstDB::EncodingData::BaseCSet& op_data = InstDB::EncodingData::baseCSet[encoding_index]; if (isign4 == ENC_OPS2(Reg, Imm)) { uint32_t x; if (!check_gp_type(o0, InstDB::kWX, &x)) goto InvalidInstruction; if (!check_gp_id(o0, kZR)) goto InvalidPhysId; uint64_t cond = o1.as().value_as(); if (cond - 2u >= 0xEu) goto InvalidImmediate; opcode.reset(op_data.opcode); opcode.add_imm(x, 31); opcode.add_imm(cond_code_to_opcode_field(uint32_t(cond)) ^ 1u, 12); opcode.add_reg(o0, 0); goto EmitOp; } break; } // ------------------------------------------------------------------------ // [Base - Min/Max] // ------------------------------------------------------------------------ case InstDB::kEncodingBaseMinMax: { const InstDB::EncodingData::BaseMinMax& op_data = InstDB::EncodingData::baseMinMax[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Reg)) { uint32_t x; if (!check_gp_type(o0, InstDB::kWX, &x)) goto InvalidInstruction; if (!check_signature(o0, o1, o2)) goto InvalidInstruction; opcode.reset(op_data.register_op); opcode.add_imm(x, 31); opcode.add_reg(o2, 16); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } if (isign4 == ENC_OPS3(Reg, Reg, Imm)) { uint32_t x; if (!check_gp_type(o0, InstDB::kWX, &x)) goto InvalidInstruction; if (!check_signature(o0, o1)) goto InvalidInstruction; uint64_t imm = o2.as().value_as(); if (op_data.immediate_op & (1u << 18)) { // Zero extend imm. if (!Support::is_uint_n<8>(imm)) { goto InvalidImmediate; } } else { // Sign extend imm. if (!Support::is_int_n<8>(int64_t(imm))) { goto InvalidImmediate; } } opcode.reset(op_data.immediate_op); opcode.add_imm(x, 31); opcode.add_imm(uint32_t(imm & 0xFFu), 10); opcode.add_reg(o1, 5); opcode.add_reg(o0, 0); goto EmitOp; } break; } // ------------------------------------------------------------------------ // [Base - Special] // ------------------------------------------------------------------------ case InstDB::kEncodingBaseAtDcIcTlbi: { const InstDB::EncodingData::BaseAtDcIcTlbi& op_data = InstDB::EncodingData::baseAtDcIcTlbi[encoding_index]; if (isign4 == ENC_OPS1(Imm) || isign4 == ENC_OPS2(Imm, Reg)) { if (op_data.mandatory_reg && isign4 != ENC_OPS2(Imm, Reg)) goto InvalidInstruction; if (o0.as().value_as() > 0x7FFFu) goto InvalidImmediate; uint32_t imm = o0.as().value_as(); if ((imm & op_data.imm_verify_mask) != op_data.imm_verify_data) goto InvalidImmediate; uint32_t rt = 31; if (o1.is_reg()) { if (!o1.as().is_gp64()) goto InvalidInstruction; if (!check_gp_id(o1, kZR)) goto InvalidPhysId; rt = o1.id() & 31; } opcode.reset(0b11010101000010000000000000000000); opcode.add_imm(imm, 5); opcode.add_reg(rt, 0); goto EmitOp; } break; } case InstDB::kEncodingBaseMrs: { if (isign4 == ENC_OPS2(Reg, Imm)) { if (!o0.as().is_gp64()) goto InvalidInstruction; if (!check_gp_id(o0, kZR)) goto InvalidPhysId; if (o1.as().value_as() > 0xFFFFu) goto InvalidImmediate; uint32_t imm = o1.as().value_as(); if (!(imm & B(15))) goto InvalidImmediate; opcode.reset(0b11010101001100000000000000000000); opcode.add_imm(imm, 5); opcode.add_reg(o0, 0); goto EmitOp; } break; } case InstDB::kEncodingBaseMsr: { if (isign4 == ENC_OPS2(Imm, Reg)) { if (!o1.as().is_gp64()) goto InvalidInstruction; if (o0.as().value_as() > 0xFFFFu) goto InvalidImmediate; uint32_t imm = o0.as().value_as(); if (!(imm & B(15))) goto InvalidImmediate; if (!check_gp_id(o1, kZR)) goto InvalidPhysId; opcode.reset(0b11010101000100000000000000000000); opcode.add_imm(imm, 5); opcode.add_reg(o1, 0); goto EmitOp; } if (isign4 == ENC_OPS2(Imm, Imm)) { if (o0.as().value_as() > 0x1Fu) goto InvalidImmediate; if (o1.as().value_as() > 0xFu) goto InvalidImmediate; uint32_t op = o0.as().value_as(); uint32_t crm = o1.as().value_as(); uint32_t op1 = uint32_t(op) >> 3; uint32_t op2 = uint32_t(op) & 0x7u; opcode.reset(0b11010101000000000100000000011111); opcode.add_imm(op1, 16); opcode.add_imm(crm, 8); opcode.add_imm(op2, 5); goto EmitOp; } break; } case InstDB::kEncodingBaseSys: { if (isign4 == ENC_OPS4(Imm, Imm, Imm, Imm)) { if (o0.as().value_as() > 0x7u || o1.as().value_as() > 0xFu || o2.as().value_as() > 0xFu || o3.as().value_as() > 0x7u) goto InvalidImmediate; uint32_t op1 = o0.as().value_as(); uint32_t crn = o1.as().value_as(); uint32_t crm = o2.as().value_as(); uint32_t op2 = o3.as().value_as(); uint32_t rt = 31; const Operand_& o4 = op_ext[EmitterUtils::kOp4]; if (o4.is_reg()) { if (!o4.as().is_gp64()) goto InvalidInstruction; if (!check_gp_id(o4, kZR)) goto InvalidPhysId; rt = o4.id() & 31; } else if (!o4.is_none()) { goto InvalidInstruction; } opcode.reset(0b11010101000010000000000000000000); opcode.add_imm(op1, 16); opcode.add_imm(crn, 12); opcode.add_imm(crm, 8); opcode.add_imm(op2, 5); opcode.add_imm(rt, 0); goto EmitOp; } break; } // ------------------------------------------------------------------------ // [Base - Branch] // ------------------------------------------------------------------------ case InstDB::kEncodingBaseBranchReg: { const InstDB::EncodingData::BaseBranchReg& op_data = InstDB::EncodingData::baseBranchReg[encoding_index]; if (isign4 == ENC_OPS1(Reg)) { if (!o0.as().is_gp64()) goto InvalidInstruction; if (!check_gp_id(o0, kZR)) goto InvalidPhysId; opcode.reset(op_data.opcode); opcode.add_reg(o0, 5); goto EmitOp; } break; } case InstDB::kEncodingBaseBranchRel: { const InstDB::EncodingData::BaseBranchRel& op_data = InstDB::EncodingData::baseBranchRel[encoding_index]; if (isign4 == ENC_OPS1(Label) || isign4 == ENC_OPS1(Imm)) { opcode.reset(op_data.opcode); rm_rel = &o0; // A variation that uses Cond code (or where Cond code is forced like BC.). if (inst_cc != CondCode::kAL || Support::bit_test(opcode.v, 30)) { if (opcode.has_x()) { // Condition code cannot be applied when the instruction has X bit set (this would be BL instruction). goto InvalidInstruction; } opcode |= B(30); opcode.add_imm(cond_code_to_opcode_field(uint32_t(inst_cc)), 0); offset_format.reset_to_imm_value(OffsetType::kSignedOffset, 4, 5, 19, 2); goto EmitOp_Rel; } offset_format.reset_to_imm_value(OffsetType::kSignedOffset, 4, 0, 26, 2); goto EmitOp_Rel; } break; } case InstDB::kEncodingBaseBranchCmp: { const InstDB::EncodingData::BaseBranchCmp& op_data = InstDB::EncodingData::baseBranchCmp[encoding_index]; if (isign4 == ENC_OPS2(Reg, Label) || isign4 == ENC_OPS2(Reg, Imm)) { uint32_t x; if (!check_gp_type(o0, kWX, &x)) goto InvalidInstruction; if (!check_gp_id(o0, kZR)) goto InvalidPhysId; opcode.reset(op_data.opcode); opcode.add_imm(x, 31); opcode.add_reg(o0, 0); offset_format.reset_to_imm_value(OffsetType::kSignedOffset, 4, 5, 19, 2); rm_rel = &o1; goto EmitOp_Rel; } break; } case InstDB::kEncodingBaseBranchTst: { const InstDB::EncodingData::BaseBranchTst& op_data = InstDB::EncodingData::baseBranchTst[encoding_index]; if (isign4 == ENC_OPS3(Reg, Imm, Label) || isign4 == ENC_OPS3(Reg, Imm, Imm)) { uint32_t x; if (!check_gp_type(o0, kWX, &x)) goto InvalidInstruction; if (!check_gp_id(o0, kZR)) goto InvalidPhysId; uint64_t imm = o1.as().value_as(); opcode.reset(op_data.opcode); if (imm >= 32) { if (!x) goto InvalidImmediate; opcode.add_imm(x, 31); imm &= 0x1F; } opcode.add_reg(o0, 0); opcode.add_imm(imm, 19); offset_format.reset_to_imm_value(OffsetType::kSignedOffset, 4, 5, 14, 2); rm_rel = &o2; goto EmitOp_Rel; } break; } // ------------------------------------------------------------------------ // [Base - Prefetch] // ------------------------------------------------------------------------ case InstDB::kEncodingBasePrfm: { const InstDB::EncodingData::BasePrfm& op_data = InstDB::EncodingData::basePrfm[encoding_index]; if (isign4 == ENC_OPS2(Imm, Mem)) { const Mem& m = o1.as(); rm_rel = &m; uint32_t imm_shift = 3u; if (o0.as().value_as() > 0x1Fu) goto InvalidImmediate; if (!check_mem_base_index_rel(m)) goto InvalidAddress; int64_t offset = m.offset(); uint32_t prfop = o0.as().value_as(); if (m.has_base_reg()) { // [Base {Offset | Index}] if (m.has_index()) { uint32_t opt = shift_op_to_ld_st_opt_map[size_t(m.shift_op())]; if (opt == 0xFF) goto InvalidAddress; uint32_t shift = m.shift(); uint32_t s = shift != 0; if (s && shift != imm_shift) goto InvalidAddressScale; opcode.reset(uint32_t(op_data.register_op) << 21); opcode.add_imm(opt, 13); opcode.add_imm(s, 12); opcode |= B(11); opcode.add_imm(prfop, 0); goto EmitOp_MemBaseIndex_Rn5_Rm16; } if (!Support::is_int_n<32>(offset)) goto InvalidDisplacement; int32_t offset32 = int32_t(offset); if (m.is_pre_or_post()) goto InvalidAddress; uint32_t imm12 = uint32_t(offset32) >> imm_shift; if (Support::is_uint_n<12>(imm12) && (imm12 << imm_shift) == uint32_t(offset32)) { opcode.reset(uint32_t(op_data.s_offset_op) << 22); opcode.add_imm(imm12, 10); opcode.add_imm(prfop, 0); goto EmitOp_MemBase_Rn5; } if (Support::is_int_n<9>(offset32)) { opcode.reset(uint32_t(op_data.u_offset_op) << 21); opcode.add_imm(uint32_t(offset32) & 0x1FFu, 12); opcode.add_imm(prfop, 0); goto EmitOp_MemBase_Rn5; } goto InvalidAddress; } else { opcode.reset(uint32_t(op_data.literal_op) << 24); opcode.add_imm(prfop, 0); offset_format.reset_to_imm_value(OffsetType::kSignedOffset, 4, 5, 19, 2); goto EmitOp_Rel; } } break; } // ------------------------------------------------------------------------ // [Base - Load / Store] // ------------------------------------------------------------------------ case InstDB::kEncodingBaseLdSt: { const InstDB::EncodingData::BaseLdSt& op_data = InstDB::EncodingData::baseLdSt[encoding_index]; if (isign4 == ENC_OPS2(Reg, Mem)) { const Mem& m = o1.as(); rm_rel = &m; uint32_t x; if (!check_gp_type(o0, op_data.reg_type, &x)) goto InvalidInstruction; if (!check_gp_id(o0, kZR)) goto InvalidPhysId; // Instructions that work with either word or dword have the unsigned // offset shift set to 2 (word), so we set it to 3 (dword) if this is // X version of the instruction. uint32_t x_shift_mask = uint32_t(op_data.u_offset_shift == 2); uint32_t imm_shift = uint32_t(op_data.u_offset_shift) + (x & x_shift_mask); if (!check_mem_base_index_rel(m)) goto InvalidAddress; int64_t offset = m.offset(); if (m.has_base_reg()) { // [Base {Offset | Index}] if (m.has_index()) { uint32_t opt = shift_op_to_ld_st_opt_map[size_t(m.shift_op())]; if (opt == 0xFF) goto InvalidAddress; uint32_t shift = m.shift(); uint32_t s = shift != 0; if (s && shift != imm_shift) goto InvalidAddressScale; opcode.reset(uint32_t(op_data.register_op) << 21); opcode.xor_imm(x, op_data.x_offset); opcode.add_imm(opt, 13); opcode.add_imm(s, 12); opcode |= B(11); opcode.add_reg(o0, 0); goto EmitOp_MemBaseIndex_Rn5_Rm16; } // Makes it easier to work with the offset especially on 32-bit arch. if (!Support::is_int_n<32>(offset)) goto InvalidDisplacement; int32_t offset32 = int32_t(offset); if (m.is_pre_or_post()) { if (!Support::is_int_n<9>(offset32)) goto InvalidDisplacement; opcode.reset(uint32_t(op_data.pre_post_op) << 21); opcode.xor_imm(x, op_data.x_offset); opcode.add_imm(offset32 & 0x1FF, 12); opcode.add_imm(m.is_pre_index(), 11); opcode |= B(10); opcode.add_reg(o0, 0); goto EmitOp_MemBase_Rn5; } else { uint32_t imm12 = uint32_t(offset32) >> imm_shift; // Alternative form of LDUR/STUR and related instructions as described by AArch64 reference manual: // // If this instruction is not encodable with scaled unsigned offset, try unscaled signed offset. if (!Support::is_uint_n<12>(imm12) || (imm12 << imm_shift) != uint32_t(offset32)) { inst_id = op_data.u_alt_inst_id; inst_info = &InstDB::_inst_info_table[inst_id]; encoding_index = inst_info->_encoding_data_index; goto Case_BaseLdurStur; } opcode.reset(uint32_t(op_data.u_offset_op) << 22); opcode.xor_imm(x, op_data.x_offset); opcode.add_imm(imm12, 10); opcode.add_reg(o0, 0); goto EmitOp_MemBase_Rn5; } } else { if (!op_data.literal_op) goto InvalidAddress; opcode.reset(uint32_t(op_data.literal_op) << 24); opcode.xor_imm(x, op_data.x_offset); opcode.add_reg(o0, 0); offset_format.reset_to_imm_value(OffsetType::kSignedOffset, 4, 5, 19, 2); goto EmitOp_Rel; } } break; } case InstDB::kEncodingBaseLdpStp: { const InstDB::EncodingData::BaseLdpStp& op_data = InstDB::EncodingData::baseLdpStp[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Mem)) { const Mem& m = o2.as(); rm_rel = &m; uint32_t x; if (!check_gp_type(o0, o1, op_data.reg_type, &x)) goto InvalidInstruction; if (!check_gp_id(o0, o1, kZR)) goto InvalidPhysId; if (m.base_type() != RegType::kGp64 || m.has_index()) goto InvalidAddress; if (m.is_offset_64bit()) goto InvalidDisplacement; uint32_t offset_shift = op_data.offset_shift + x; int32_t offset32 = m.offset_lo32() >> offset_shift; // Make sure we didn't lose bits by applying the mandatory offset shift. if (uint32_t(offset32) << offset_shift != uint32_t(m.offset_lo32())) goto InvalidDisplacement; // Offset is encoded as 7-bit immediate. if (!Support::is_int_n<7>(offset32)) goto InvalidDisplacement; if (m.is_pre_or_post() && offset32 != 0) { if (!op_data.pre_post_op) goto InvalidAddress; opcode.reset(uint32_t(op_data.pre_post_op) << 22); opcode.add_imm(m.is_pre_index(), 24); } else { opcode.reset(uint32_t(op_data.offset_op) << 22); } opcode.add_imm(x, op_data.x_offset); opcode.add_imm(offset32 & 0x7F, 15); opcode.add_reg(o1, 10); opcode.add_reg(o0, 0); goto EmitOp_MemBase_Rn5; } break; } case InstDB::kEncodingBaseStx: { const InstDB::EncodingData::BaseStx& op_data = InstDB::EncodingData::baseStx[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Mem)) { const Mem& m = o2.as(); uint32_t x; if (!o0.as().is_gp32() || !check_gp_type(o1, op_data.reg_type, &x)) goto InvalidInstruction; if (!check_gp_id(o0, o1, kZR)) goto InvalidPhysId; opcode.reset(op_data.opcode()); opcode.add_imm(x, op_data.x_offset); opcode.add_reg(o0, 16); opcode.add_reg(o1, 0); rm_rel = &m; goto EmitOp_MemBaseNoImm_Rn5; } break; } case InstDB::kEncodingBaseLdxp: { const InstDB::EncodingData::BaseLdxp& op_data = InstDB::EncodingData::baseLdxp[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Mem)) { const Mem& m = o2.as(); uint32_t x; if (!check_gp_type(o0, op_data.reg_type, &x) || !check_signature(o0, o1)) goto InvalidInstruction; if (!check_gp_id(o0, o1, kZR)) goto InvalidPhysId; opcode.reset(op_data.opcode()); opcode.add_imm(x, op_data.x_offset); opcode.add_reg(o1, 10); opcode.add_reg(o0, 0); rm_rel = &m; goto EmitOp_MemBaseNoImm_Rn5; } break; } case InstDB::kEncodingBaseStxp: { const InstDB::EncodingData::BaseStxp& op_data = InstDB::EncodingData::baseStxp[encoding_index]; if (isign4 == ENC_OPS4(Reg, Reg, Reg, Mem)) { const Mem& m = o3.as(); uint32_t x; if (!o0.as().is_gp32() || !check_gp_type(o1, op_data.reg_type, &x) || !check_signature(o1, o2)) goto InvalidInstruction; if (!check_gp_id(o0, o1, o2, kZR)) goto InvalidPhysId; opcode.reset(op_data.opcode()); opcode.add_imm(x, op_data.x_offset); opcode.add_reg(o0, 16); opcode.add_reg(o2, 10); opcode.add_reg(o1, 0); rm_rel = &m; goto EmitOp_MemBaseNoImm_Rn5; } break; } case InstDB::kEncodingBaseRM_NoImm: { const InstDB::EncodingData::BaseRM_NoImm& op_data = InstDB::EncodingData::baseRM_NoImm[encoding_index]; if (isign4 == ENC_OPS2(Reg, Mem)) { const Mem& m = o1.as(); rm_rel = &m; uint32_t x; if (!check_gp_type(o0, op_data.reg_type, &x)) goto InvalidInstruction; if (!check_gp_id(o0, op_data.reg_hi_id)) goto InvalidPhysId; opcode.reset(op_data.opcode()); opcode.add_imm(x, op_data.x_offset); opcode.add_reg(o0, 0); goto EmitOp_MemBaseNoImm_Rn5; } break; } case InstDB::kEncodingBaseRM_SImm9: { Case_BaseLdurStur: const InstDB::EncodingData::BaseRM_SImm9& op_data = InstDB::EncodingData::baseRM_SImm9[encoding_index]; if (isign4 == ENC_OPS2(Reg, Mem)) { const Mem& m = o1.as(); rm_rel = &m; uint32_t x; if (!check_gp_type(o0, op_data.reg_type, &x)) goto InvalidInstruction; if (!check_gp_id(o0, op_data.reg_hi_id)) goto InvalidPhysId; if (m.has_base_reg() && !m.has_index()) { if (m.is_offset_64bit()) goto InvalidDisplacement; int32_t offset32 = m.offset_lo32() >> op_data.imm_shift; if (Support::shl(offset32, op_data.imm_shift) != m.offset_lo32()) goto InvalidDisplacement; if (!Support::is_int_n<9>(offset32)) goto InvalidDisplacement; if (m.is_fixed_offset()) { opcode.reset(op_data.offset_op()); } else { if (!op_data.pre_post_op()) goto InvalidInstruction; opcode.reset(op_data.pre_post_op()); opcode.xor_imm(m.is_pre_index(), 11); } opcode.xor_imm(x, op_data.x_offset); opcode.add_imm(offset32 & 0x1FF, 12); opcode.add_reg(o0, 0); goto EmitOp_MemBase_Rn5; } goto InvalidAddress; } break; } case InstDB::kEncodingBaseRM_SImm10: { const InstDB::EncodingData::BaseRM_SImm10& op_data = InstDB::EncodingData::baseRM_SImm10[encoding_index]; if (isign4 == ENC_OPS2(Reg, Mem)) { const Mem& m = o1.as(); rm_rel = &m; uint32_t x; if (!check_gp_type(o0, op_data.reg_type, &x)) goto InvalidInstruction; if (!check_gp_id(o0, op_data.reg_hi_id)) goto InvalidPhysId; if (m.has_base_reg() && !m.has_index()) { if (m.is_offset_64bit()) goto InvalidDisplacement; int32_t offset32 = m.offset_lo32() >> op_data.imm_shift; if (Support::shl(offset32, op_data.imm_shift) != m.offset_lo32()) goto InvalidDisplacement; if (!Support::is_int_n<10>(offset32)) goto InvalidDisplacement; if (m.is_post_index()) goto InvalidAddress; // Offset has 10 bits, sign is stored in the 10th bit. offset32 &= 0x3FF; opcode.reset(op_data.opcode()); opcode.xor_imm(m.is_pre_index(), 11); opcode.xor_imm(x, op_data.x_offset); opcode.add_imm(offset32 >> 9, 22); opcode.add_imm(offset32, 12); opcode.add_reg(o0, 0); goto EmitOp_MemBase_Rn5; } goto InvalidAddress; } break; } case InstDB::kEncodingBaseAtomicOp: { const InstDB::EncodingData::BaseAtomicOp& op_data = InstDB::EncodingData::baseAtomicOp[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Mem)) { const Mem& m = o2.as(); uint32_t x; if (!check_gp_type(o0, op_data.reg_type, &x) || !check_signature(o0, o1)) goto InvalidInstruction; if (!check_gp_id(o0, o1, kZR)) goto InvalidInstruction; opcode.reset(op_data.opcode()); opcode.add_imm(x, op_data.x_offset); opcode.add_reg(o0, 16); opcode.add_reg(o1, 0); rm_rel = &m; goto EmitOp_MemBaseNoImm_Rn5; } break; } case InstDB::kEncodingBaseAtomicSt: { const InstDB::EncodingData::BaseAtomicSt& op_data = InstDB::EncodingData::baseAtomicSt[encoding_index]; if (isign4 == ENC_OPS2(Reg, Mem)) { const Mem& m = o1.as(); uint32_t x; if (!check_gp_type(o0, op_data.reg_type, &x)) goto InvalidInstruction; if (!check_gp_id(o0, kZR)) goto InvalidPhysId; opcode.reset(op_data.opcode()); opcode.add_imm(x, op_data.x_offset); opcode.add_reg(o0, 16); opcode.add_reg(Gp::kIdZr, 0); rm_rel = &m; goto EmitOp_MemBaseNoImm_Rn5; } break; } case InstDB::kEncodingBaseAtomicCasp: { const InstDB::EncodingData::BaseAtomicCasp& op_data = InstDB::EncodingData::baseAtomicCasp[encoding_index]; const Operand_& o4 = op_ext[EmitterUtils::kOp4]; if (isign4 == ENC_OPS4(Reg, Reg, Reg, Reg) && o4.is_mem()) { const Mem& m = o4.as(); uint32_t x; if (!check_gp_type(o0, op_data.reg_type, &x)) goto InvalidInstruction; if (!check_signature(o0, o1, o2, o3)) goto InvalidInstruction; if (!check_even(o0, o2) || !check_gp_id(o0, o2, kZR)) goto InvalidPhysId; if (!check_consecutive(o0, o1) || !check_consecutive(o2, o3)) goto InvalidPhysId; opcode.reset(op_data.opcode()); opcode.add_imm(x, op_data.x_offset); opcode.add_reg(o0, 16); opcode.add_reg(o2, 0); rm_rel = &m; goto EmitOp_MemBaseNoImm_Rn5; } break; } // ------------------------------------------------------------------------ // [FSimd - Instructions] // ------------------------------------------------------------------------ case InstDB::kEncodingFSimdSV: { const InstDB::EncodingData::FSimdSV& op_data = InstDB::EncodingData::fSimdSV[encoding_index]; if (isign4 == ENC_OPS2(Reg, Reg)) { uint32_t q = diff(o1.as().reg_type(), RegType::kVec64); if (q > 1) goto InvalidInstruction; if (o0.as().has_element_type()) goto InvalidInstruction; // This operation is only defined for: // hD, vS.{4|8}h (16-bit) // sD, vS.4s (32-bit) uint32_t sz = diff(o0.as().reg_type(), RegType::kVec16); uint32_t element_sz = diff(o1.as().element_type(), VecElementType::kH); // Size greater than 1 means 64-bit elements, not supported. if ((sz | element_sz) > 1 || sz != element_sz) goto InvalidInstruction; // Size 1 (32-bit float) requires at least 4 elements. if (sz && !q) goto InvalidInstruction; // Bit flipping according to sz. static const uint32_t sz_bits_table[] = { B(29), 0 }; opcode.reset(op_data.opcode << 10); opcode ^= sz_bits_table[sz]; opcode.add_imm(q, 30); goto EmitOp_Rd0_Rn5; } break; } case InstDB::kEncodingFSimdVV: { const InstDB::EncodingData::FSimdVV& op_data = InstDB::EncodingData::fSimdVV[encoding_index]; if (isign4 == ENC_OPS2(Reg, Reg)) { if (!match_signature(o0, o1, inst_flags)) goto InvalidInstruction; if (!pick_fp_opcode(o0.as(), op_data.scalar_op(), op_data.scalar_hf(), op_data.vector_op(), op_data.vector_hf(), &opcode)) goto InvalidInstruction; goto EmitOp_Rd0_Rn5; } break; } case InstDB::kEncodingFSimdVVV: { const InstDB::EncodingData::FSimdVVV& op_data = InstDB::EncodingData::fSimdVVV[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Reg)) { if (!match_signature(o0, o1, o2, inst_flags)) goto InvalidInstruction; if (!pick_fp_opcode(o0.as(), op_data.scalar_op(), op_data.scalar_hf(), op_data.vector_op(), op_data.vector_hf(), &opcode)) goto InvalidInstruction; goto EmitOp_Rd0_Rn5_Rm16; } break; } case InstDB::kEncodingFSimdVVVe: { const InstDB::EncodingData::FSimdVVVe& op_data = InstDB::EncodingData::fSimdVVVe[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Reg)) { if (!o2.as().has_element_index()) { if (!match_signature(o0, o1, o2, inst_flags)) goto InvalidInstruction; if (!pick_fp_opcode(o0.as(), op_data.scalar_op(), op_data.scalar_hf(), op_data.vector_op(), op_data.vector_hf(), &opcode)) goto InvalidInstruction; goto EmitOp_Rd0_Rn5_Rm16; } else { if (!match_signature(o0, o1, inst_flags)) goto InvalidInstruction; uint32_t q = o1.as().is_vec128(); uint32_t sz; if (!pick_fp_opcode(o0.as(), op_data.element_scalar_op(), InstDB::kHF_D, op_data.element_vector_op(), InstDB::kHF_D, &opcode, &sz)) goto InvalidInstruction; if (sz == 0 && o2.as().id() > 15) goto InvalidPhysId; uint32_t element_index = o2.as().element_index(); if (element_index > (7u >> sz)) goto InvalidElementIndex; uint32_t hlm = element_index << sz; opcode.add_imm(q, 30); opcode.add_imm(hlm & 3u, 20); opcode.add_imm(hlm >> 2, 11); goto EmitOp_Rd0_Rn5_Rm16; } } break; } case InstDB::kEncodingFSimdVVVV: { const InstDB::EncodingData::FSimdVVVV& op_data = InstDB::EncodingData::fSimdVVVV[encoding_index]; if (isign4 == ENC_OPS4(Reg, Reg, Reg, Reg)) { if (!match_signature(o0, o1, o2, o3, inst_flags)) goto InvalidInstruction; if (!pick_fp_opcode(o0.as(), op_data.scalar_op(), op_data.scalar_hf(), op_data.vector_op(), op_data.vector_hf(), &opcode)) goto InvalidInstruction; goto EmitOp_Rd0_Rn5_Rm16_Ra10; } break; } case InstDB::kEncodingSimdFcadd: { const InstDB::EncodingData::SimdFcadd& op_data = InstDB::EncodingData::simdFcadd[encoding_index]; if (isign4 == ENC_OPS4(Reg, Reg, Reg, Imm)) { if (!check_signature(o0, o1, o2) || o0.as().has_element_index()) goto InvalidInstruction; uint32_t q = diff(o0.as().reg_type(), RegType::kVec64); if (q > 1) goto InvalidInstruction; uint32_t sz = diff(o0.as().element_type(), VecElementType::kB); if (sz == 0 || sz > 3) goto InvalidInstruction; // 0 <- 90deg. // 1 <- 270deg. uint32_t rot = 0; if (o3.as().value() == 270) rot = 1; else if (o3.as().value() != 90) goto InvalidImmediate; opcode.reset(op_data.opcode()); opcode.add_imm(q, 30); opcode.add_imm(sz, 22); opcode.add_imm(rot, 12); goto EmitOp_Rd0_Rn5_Rm16; } break; } case InstDB::kEncodingSimdFccmpFccmpe: { const InstDB::EncodingData::SimdFccmpFccmpe& op_data = InstDB::EncodingData::simdFccmpFccmpe[encoding_index]; if (isign4 == ENC_OPS4(Reg, Reg, Imm, Imm)) { uint32_t sz = diff(o0.as().reg_type(), RegType::kVec16); if (sz > 2) goto InvalidInstruction; if (!check_signature(o0, o1) || o0.as().has_element_type()) goto InvalidInstruction; uint64_t nzcv = o2.as().value_as(); uint64_t cond = o3.as().value_as(); if ((nzcv | cond) > 0xFu) goto InvalidImmediate; uint32_t type = (sz - 1) & 0x3u; opcode.reset(op_data.opcode()); opcode.add_imm(type, 22); opcode.add_imm(cond_code_to_opcode_field(uint32_t(cond)), 12); opcode.add_imm(nzcv, 0); goto EmitOp_Rn5_Rm16; } break; } case InstDB::kEncodingSimdFcm: { const InstDB::EncodingData::SimdFcm& op_data = InstDB::EncodingData::simdFcm[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Reg) && op_data.has_register_op()) { if (!match_signature(o0, o1, o2, inst_flags)) goto InvalidInstruction; if (!pick_fp_opcode(o0.as(), op_data.register_scalar_op(), op_data.register_scalar_hf(), op_data.register_vector_op(), op_data.register_vector_hf(), &opcode)) goto InvalidInstruction; goto EmitOp_Rd0_Rn5_Rm16; } if (isign4 == ENC_OPS3(Reg, Reg, Imm) && op_data.has_zero_op()) { if (!check_signature(o0, o1)) goto InvalidInstruction; if (o2.as().value() != 0 || o2.as().predicate() != 0) goto InvalidImmediate; if (!pick_fp_opcode(o0.as(), op_data.zero_scalar_op(), InstDB::kHF_B, op_data.zero_vector_op(), InstDB::kHF_B, &opcode)) goto InvalidInstruction; goto EmitOp_Rd0_Rn5; } break; } case InstDB::kEncodingSimdFcmla: { const InstDB::EncodingData::SimdFcmla& op_data = InstDB::EncodingData::simdFcmla[encoding_index]; if (isign4 == ENC_OPS4(Reg, Reg, Reg, Imm)) { if (!check_signature(o0, o1)) goto InvalidInstruction; uint32_t q = diff(o0.as().reg_type(), RegType::kVec64); if (q > 1) goto InvalidInstruction; uint32_t sz = diff(o0.as().element_type(), VecElementType::kB); if (sz == 0 || sz > 3) goto InvalidInstruction; uint32_t rot = 0; switch (o3.as().value()) { case 0 : rot = 0; break; case 90 : rot = 1; break; case 180: rot = 2; break; case 270: rot = 3; break; default: goto InvalidImmediate; } if (!o2.as().has_element_index()) { if (!check_signature(o1, o2)) goto InvalidInstruction; opcode.reset(op_data.regular_op()); opcode.add_imm(q, 30); opcode.add_imm(sz, 22); opcode.add_imm(rot, 11); goto EmitOp_Rd0_Rn5_Rm16; } else { if (o0.as().element_type() != o2.as().element_type()) goto InvalidInstruction; // Only allowed vectors are: 4H, 8H, and 4S. if (!(sz == 1 || (q == 1 && sz == 2))) goto InvalidInstruction; // Element index ranges: // 4H - ElementIndex[0..1] (index 2..3 is UNDEFINED). // 8H - ElementIndex[0..3]. // 4S - ElementIndex[0..1]. uint32_t element_index = o2.as().element_index(); uint32_t hl_field_shift = sz == 1 ? 0u : 1u; uint32_t max_element_index = q == 1 && sz == 1 ? 3u : 1u; if (element_index > max_element_index) goto InvalidElementIndex; uint32_t hl = element_index << hl_field_shift; opcode.reset(op_data.element_op()); opcode.add_imm(q, 30); opcode.add_imm(sz, 22); opcode.add_imm(hl & 1u, 21); // L field. opcode.add_imm(hl >> 1, 11); // H field. opcode.add_imm(rot, 13); goto EmitOp_Rd0_Rn5_Rm16; } } break; } case InstDB::kEncodingSimdFcmpFcmpe: { const InstDB::EncodingData::SimdFcmpFcmpe& op_data = InstDB::EncodingData::simdFcmpFcmpe[encoding_index]; uint32_t sz = diff(o0.as().reg_type(), RegType::kVec16); uint32_t type = (sz - 1) & 0x3u; if (sz > 2) goto InvalidInstruction; if (o0.as().has_element_type()) goto InvalidInstruction; opcode.reset(op_data.opcode()); opcode.add_imm(type, 22); if (isign4 == ENC_OPS2(Reg, Reg)) { if (!check_signature(o0, o1)) goto InvalidInstruction; goto EmitOp_Rn5_Rm16; } if (isign4 == ENC_OPS2(Reg, Imm)) { if (o1.as().value() != 0 || o1.as().predicate() != 0) goto InvalidInstruction; opcode |= B(3); goto EmitOp_Rn5; } break; } case InstDB::kEncodingSimdFcsel: { if (isign4 == ENC_OPS4(Reg, Reg, Reg, Imm)) { if (!check_signature(o0, o1, o2)) goto InvalidInstruction; uint32_t sz = diff(o0.as().reg_type(), RegType::kVec16); uint32_t type = (sz - 1) & 0x3u; if (sz > 2 || o0.as().has_element_type()) goto InvalidInstruction; uint64_t cond = o3.as().value_as(); if (cond > 0xFu) goto InvalidImmediate; opcode.reset(0b00011110001000000000110000000000); opcode.add_imm(type, 22); opcode.add_imm(cond_code_to_opcode_field(uint32_t(cond)), 12); goto EmitOp_Rd0_Rn5_Rm16; } break; } case InstDB::kEncodingSimdFcvt: { if (isign4 == ENC_OPS2(Reg, Reg)) { uint32_t dst_sz = diff(o0.as().reg_type(), RegType::kVec16); uint32_t src_sz = diff(o1.as().reg_type(), RegType::kVec16); if ((dst_sz | src_sz) > 3) goto InvalidInstruction; if (o0.as().has_element_type() || o1.as().has_element_type()) goto InvalidInstruction; // Table that provides 'type' and 'opc' according to the dst/src combination. static const uint8_t table[] = { 0xFFu, // H <- H (Invalid). 0x03u, // H <- S (type=00 opc=11). 0x13u, // H <- D (type=01 opc=11). 0xFFu, // H <- Q (Invalid). 0x30u, // S <- H (type=11 opc=00). 0xFFu, // S <- S (Invalid). 0x10u, // S <- D (type=01 opc=00). 0xFFu, // S <- Q (Invalid). 0x31u, // D <- H (type=11 opc=01). 0x01u, // D <- S (type=00 opc=01). 0xFFu, // D <- D (Invalid). 0xFFu, // D <- Q (Invalid). 0xFFu, // Q <- H (Invalid). 0xFFu, // Q <- S (Invalid). 0xFFu, // Q <- D (Invalid). 0xFFu // Q <- Q (Invalid). }; uint32_t type_opc = table[(dst_sz << 2) | src_sz]; opcode.reset(0b0001111000100010010000 << 10); opcode.add_imm(type_opc >> 4, 22); opcode.add_imm(type_opc & 15, 15); goto EmitOp_Rd0_Rn5; } break; } case InstDB::kEncodingSimdFcvtLN: { const InstDB::EncodingData::SimdFcvtLN& op_data = InstDB::EncodingData::simdFcvtLN[encoding_index]; if (isign4 == ENC_OPS2(Reg, Reg)) { // Scalar form - only FCVTXN. if (o0.as().is_vec32() && o1.as().is_vec64()) { if (!op_data.has_scalar()) goto InvalidInstruction; if (o0.as().has_element_type() || o1.as().has_element_type()) goto InvalidInstruction; opcode.reset(op_data.scalar_op()); opcode |= B(22); // sz bit must be 1, the only supported combination of FCVTXN. goto EmitOp_Rd0_Rn5; } opcode.reset(op_data.vector_op()); const Vec& rl = (inst_flags & InstDB::kInstFlagLong) ? o0.as() : o1.as(); const Vec& rn = (inst_flags & InstDB::kInstFlagLong) ? o1.as() : o0.as(); uint32_t q = diff(rn.reg_type(), RegType::kVec64); if (uint32_t(opcode.has_q()) != q) goto InvalidInstruction; if (rl.is_vec_s4() && rn.element_type() == VecElementType::kH && !op_data.is_cvtxn()) { goto EmitOp_Rd0_Rn5; } if (rl.is_vec_d2() && rn.element_type() == VecElementType::kS) { opcode |= B(22); goto EmitOp_Rd0_Rn5; } } break; } case InstDB::kEncodingSimdFcvtSV: { const InstDB::EncodingData::SimdFcvtSV& op_data = InstDB::EncodingData::simdFcvtSV[encoding_index]; // So we can support both IntToFloat and FloatToInt conversions. const Operand_& op_gp = op_data.is_float_to_int() ? o0 : o1; const Operand_& op_vec = op_data.is_float_to_int() ? o1 : o0; if (isign4 == ENC_OPS2(Reg, Reg)) { if (op_gp.as().is_gp() && op_vec.as().is_vec()) { uint32_t x = op_gp.as().is_gp64(); uint32_t type = diff(op_vec.as().reg_type(), RegType::kVec16); if (type > 2u) goto InvalidInstruction; type = (type - 1u) & 0x3; opcode.reset(op_data.general_op()); opcode.add_imm(type, 22); opcode.add_imm(x, 31); goto EmitOp_Rd0_Rn5; } if (o0.as().is_vec() && o1.as().is_vec()) { if (!check_signature(o0, o1)) goto InvalidInstruction; if (!pick_fp_opcode(o0.as(), op_data.scalar_int_op(), InstDB::kHF_B, op_data.vector_int_op(), InstDB::kHF_B, &opcode)) goto InvalidInstruction; goto EmitOp_Rd0_Rn5; } } if (isign4 == ENC_OPS3(Reg, Reg, Imm) && op_data.is_fixed_point()) { if (o2.as().value_as() >= 64) goto InvalidInstruction; uint32_t scale = o2.as().value_as(); if (scale == 0) goto InvalidInstruction; if (op_gp.as().is_gp() && op_vec.as().is_vec()) { uint32_t x = op_gp.as().is_gp64(); uint32_t type = diff(op_vec.as().reg_type(), RegType::kVec16); uint32_t scale_limit = 32u << x; if (scale > scale_limit) goto InvalidInstruction; type = (type - 1u) & 0x3; opcode.reset(op_data.general_op() ^ B(21)); opcode.add_imm(type, 22); opcode.add_imm(x, 31); opcode.add_imm(64u - scale, 10); goto EmitOp_Rd0_Rn5; } if (o0.as().is_vec() && o1.as().is_vec()) { if (!check_signature(o0, o1)) goto InvalidInstruction; uint32_t sz; if (!pick_fp_opcode(o0.as(), op_data.scalar_fp_op(), InstDB::kHF_0, op_data.vector_fp_op(), InstDB::kHF_0, &opcode, &sz)) goto InvalidInstruction; uint32_t scale_limit = 16u << sz; if (scale > scale_limit) goto InvalidInstruction; uint32_t imm = Support::neg(scale) & Support::lsb_mask(sz + 4 + 1); opcode.add_imm(imm, 16); goto EmitOp_Rd0_Rn5; } } break; } case InstDB::kEncodingSimdFmlal: { const InstDB::EncodingData::SimdFmlal& op_data = InstDB::EncodingData::simdFmlal[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Reg)) { uint32_t q = diff(o0.as().reg_type(), RegType::kVec64); uint32_t q_is_optional = op_data.optional_q(); if (q_is_optional) { // This instruction works with either 64-bit or 128-bit registers, // encoded by Q bit. if (q > 1) goto InvalidInstruction; } else { // This instruction requires 128-bit vector registers. if (q != 1) goto InvalidInstruction; // The instruction is ehtier B (bottom) or T (top), which is part of // the opcode, which uses Q bit, so we have to clear it explicitly. q = 0; } if (uint32_t(o0.as().reg_type()) != uint32_t(o1.as().reg_type()) + q_is_optional || uint32_t(o0.as().element_type()) != op_data.ta || uint32_t(o1.as().element_type()) != op_data.tb) goto InvalidInstruction; if (!o2.as().has_element_index()) { if (!check_signature(o1, o2)) goto InvalidInstruction; opcode.reset(op_data.vector_op()); opcode.add_imm(q, 30); goto EmitOp_Rd0_Rn5_Rm16; } else { if (uint32_t(o2.as().element_type()) != op_data.tElement) goto InvalidInstruction; if (o2.as().id() > 15) goto InvalidPhysId; uint32_t element_index = o2.as().element_index(); if (element_index > 7u) goto InvalidElementIndex; opcode.reset(op_data.element_op()); opcode.add_imm(q, 30); opcode.add_imm(element_index & 3u, 20); opcode.add_imm(element_index >> 2, 11); goto EmitOp_Rd0_Rn5_Rm16; } } break; } case InstDB::kEncodingSimdFmov: { if (isign4 == ENC_OPS2(Reg, Reg)) { // FMOV Gp <-> Vec opcode: opcode.reset(0b00011110001001100000000000000000); if (o0.as().is_gp() && o1.as().is_vec()) { // FMOV Wd, Hn (sf=0 type=11 rmode=00 op=110) // FMOV Xd, Hn (sf=1 type=11 rmode=00 op=110) // FMOV Wd, Sn (sf=0 type=00 rmode=00 op=110) // FMOV Xd, Dn (sf=1 type=11 rmode=00 op=110) // FMOV Xd, Vn.d[1] (sf=1 type=10 rmode=01 op=110) uint32_t x = o0.as().is_gp64(); uint32_t sz = diff(o1.as().reg_type(), RegType::kVec16); uint32_t type = (sz - 1) & 0x3u; uint32_t r_mode_op = 0b00110; if (o1.as().has_element_index()) { // Special case. if (!x || !o1.as().is_vec_d2() || o1.as().element_index() != 1) goto InvalidInstruction; type = 0b10; r_mode_op = 0b01110; } else { // Must be scalar. if (sz > 2) goto InvalidInstruction; if (o1.as().has_element_type()) goto InvalidInstruction; if (o1.as().is_vec32() && x) goto InvalidInstruction; if (o1.as().is_vec64() && !x) goto InvalidInstruction; } opcode.add_imm(x, 31); opcode.add_imm(type, 22); opcode.add_imm(r_mode_op, 16); goto EmitOp_Rd0_Rn5; } if (o0.as().is_vec() && o1.as().is_gp()) { // FMOV Hd, Wn (sf=0 type=11 rmode=00 op=111) // FMOV Hd, Xn (sf=1 type=11 rmode=00 op=111) // FMOV Sd, Wn (sf=0 type=00 rmode=00 op=111) // FMOV Dd, Xn (sf=1 type=11 rmode=00 op=111) // FMOV Vd.d[1], Xn (sf=1 type=10 rmode=01 op=111) uint32_t x = o1.as().is_gp64(); uint32_t sz = diff(o0.as().reg_type(), RegType::kVec16); uint32_t type = (sz - 1) & 0x3u; uint32_t r_mode_op = 0b00111; if (o0.as().has_element_index()) { // Special case. if (!x || !o0.as().is_vec_d2() || o0.as().element_index() != 1) goto InvalidInstruction; type = 0b10; r_mode_op = 0b01111; } else { // Must be scalar. if (sz > 2) goto InvalidInstruction; if (o0.as().has_element_type()) goto InvalidInstruction; if (o0.as().is_vec32() && x) goto InvalidInstruction; if (o0.as().is_vec64() && !x) goto InvalidInstruction; } opcode.add_imm(x, 31); opcode.add_imm(type, 22); opcode.add_imm(r_mode_op, 16); goto EmitOp_Rd0_Rn5; } if (check_signature(o0, o1)) { uint32_t sz = diff(o0.as().reg_type(), RegType::kVec16); if (sz > 2) goto InvalidInstruction; if (o0.as().has_element_type()) goto InvalidInstruction; uint32_t type = (sz - 1) & 0x3; opcode.reset(0b00011110001000000100000000000000); opcode.add_imm(type, 22); goto EmitOp_Rd0_Rn5; } } if (isign4 == ENC_OPS2(Reg, Imm)) { if (o0.as().is_vec()) { double fp_value; if (o1.as().is_double()) fp_value = o1.as().value_as(); else if (o1.as().is_int32()) fp_value = o1.as().value_as(); else goto InvalidImmediate; if (!Utils::is_fp64_imm8(fp_value)) goto InvalidImmediate; uint32_t imm8 = Utils::encode_fp64_to_imm8(fp_value); if (!o0.as().has_element_type()) { // FMOV (scalar, immediate). uint32_t sz = diff(o0.as().reg_type(), RegType::kVec16); uint32_t type = (sz - 1u) & 0x3u; if (sz > 2) goto InvalidInstruction; opcode.reset(0b00011110001000000001000000000000); opcode.add_imm(type, 22); opcode.add_imm(imm8, 13); goto EmitOp_Rd0; } else { uint32_t q = diff(o0.as().reg_type(), RegType::kVec64); uint32_t sz = diff(o0.as().element_type(), VecElementType::kH); if (q > 1 || sz > 2) goto InvalidInstruction; static const uint32_t sz_bits_table[3] = { B(11), 0, B(29) }; opcode.reset(0b00001111000000001111010000000000); opcode ^= sz_bits_table[sz]; opcode.add_imm(q, 30); opcode.add_imm(imm8 >> 5, 16); opcode.add_imm(imm8 & 31, 5); goto EmitOp_Rd0; } } } break; } case InstDB::kEncodingFSimdPair: { const InstDB::EncodingData::FSimdPair& op_data = InstDB::EncodingData::fSimdPair[encoding_index]; if (isign4 == ENC_OPS2(Reg, Reg)) { // This operation is only defined for: // hD, vS.2h (16-bit) // sD, vS.2s (32-bit) // dD, vS.2d (64-bit) uint32_t sz = diff(o0.as().reg_type(), RegType::kVec16); if (sz > 2) goto InvalidInstruction; static const uint32_t szSignatures[3] = { RegTraits::kSignature | (Vec::kSignatureElementH), RegTraits::kSignature | (Vec::kSignatureElementS), RegTraits::kSignature | (Vec::kSignatureElementD) }; if (o1.signature() != szSignatures[sz]) goto InvalidInstruction; static const uint32_t sz_bits_table[] = { B(29), 0, B(22) }; opcode.reset(op_data.scalar_op()); opcode ^= sz_bits_table[sz]; goto EmitOp_Rd0_Rn5; } if (isign4 == ENC_OPS3(Reg, Reg, Reg)) { if (!check_signature(o0, o1, o2)) goto InvalidInstruction; uint32_t q = diff(o0.as().reg_type(), RegType::kVec64); if (q > 1) goto InvalidInstruction; uint32_t sz = diff(o0.as().element_type(), VecElementType::kH); if (sz > 2) goto InvalidInstruction; static const uint32_t sz_bits_table[3] = { B(22) | B(21) | B(15) | B(14), 0, B(22) }; opcode.reset(op_data.vector_op()); opcode ^= sz_bits_table[sz]; opcode.add_imm(q, 30); goto EmitOp_Rd0_Rn5_Rm16; } break; } // ------------------------------------------------------------------------ // [ISimd - Instructions] // ------------------------------------------------------------------------ case InstDB::kEncodingISimdSV: { const InstDB::EncodingData::ISimdSV& op_data = InstDB::EncodingData::iSimdSV[encoding_index]; if (isign4 == ENC_OPS2(Reg, Reg)) { // The first destination operand is scalar, which matches element-type of source vectors. uint32_t L = (inst_flags & InstDB::kInstFlagLong) != 0; if (diff(o0.as().reg_type(), RegType::kVec8) != diff(o1.as().element_type(), VecElementType::kB) + L) goto InvalidInstruction; SizeOp size_op = element_type_to_size_op(op_data.vec_op_type, o1.as().reg_type(), o1.as().element_type()); if (!size_op.is_valid()) goto InvalidInstruction; opcode.reset(op_data.opcode()); opcode.add_imm(size_op.q(), 30); opcode.add_imm(size_op.size(), 22); goto EmitOp_Rd0_Rn5; } break; } case InstDB::kEncodingISimdVV: { const InstDB::EncodingData::ISimdVV& op_data = InstDB::EncodingData::iSimdVV[encoding_index]; if (isign4 == ENC_OPS2(Reg, Reg)) { const Operand_& sop = significant_simd_op(o0, o1, inst_flags); if (!match_signature(o0, o1, inst_flags)) goto InvalidInstruction; SizeOp size_op = element_type_to_size_op(op_data.vec_op_type, sop.as().reg_type(), sop.as().element_type()); if (!size_op.is_valid()) goto InvalidInstruction; opcode.reset(op_data.opcode()); opcode.add_imm(size_op.qs(), 30); opcode.add_imm(size_op.scalar(), 28); opcode.add_imm(size_op.size(), 22); goto EmitOp_Rd0_Rn5; } break; } case InstDB::kEncodingISimdVVx: { const InstDB::EncodingData::ISimdVVx& op_data = InstDB::EncodingData::iSimdVVx[encoding_index]; if (isign4 == ENC_OPS2(Reg, Reg)) { if (o0.signature() != op_data.op0_signature || o1.signature() != op_data.op1_signature) goto InvalidInstruction; opcode.reset(op_data.opcode()); goto EmitOp_Rd0_Rn5; } break; } case InstDB::kEncodingISimdVVV: { const InstDB::EncodingData::ISimdVVV& op_data = InstDB::EncodingData::iSimdVVV[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Reg)) { const Operand_& sop = significant_simd_op(o0, o1, inst_flags); if (!match_signature(o0, o1, o2, inst_flags)) goto InvalidInstruction; SizeOp size_op = element_type_to_size_op(op_data.vec_op_type, sop.as().reg_type(), sop.as().element_type()); if (!size_op.is_valid()) goto InvalidInstruction; opcode.reset(op_data.opcode()); opcode.add_imm(size_op.qs(), 30); opcode.add_imm(size_op.scalar(), 28); opcode.add_imm(size_op.size(), 22); goto EmitOp_Rd0_Rn5_Rm16; } break; } case InstDB::kEncodingISimdVVVx: { const InstDB::EncodingData::ISimdVVVx& op_data = InstDB::EncodingData::iSimdVVVx[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Reg)) { if (o0.signature() != op_data.op0_signature || o1.signature() != op_data.op1_signature || o2.signature() != op_data.op2_signature) goto InvalidInstruction; opcode.reset(op_data.opcode()); goto EmitOp_Rd0_Rn5_Rm16; } break; } case InstDB::kEncodingISimdWWV: { // Special case for wide add/sub [s|b][add|sub][w]{2}. const InstDB::EncodingData::ISimdWWV& op_data = InstDB::EncodingData::iSimdWWV[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Reg)) { SizeOp size_op = element_type_to_size_op(op_data.vec_op_type, o2.as().reg_type(), o2.as().element_type()); if (!size_op.is_valid()) goto InvalidInstruction; if (!check_signature(o0, o1) || !o0.as().is_vec128() || uint32_t(o0.as().element_type()) != uint32_t(o2.as().element_type()) + 1u) goto InvalidInstruction; opcode.reset(op_data.opcode()); opcode.add_imm(size_op.qs(), 30); opcode.add_imm(size_op.scalar(), 28); opcode.add_imm(size_op.size(), 22); goto EmitOp_Rd0_Rn5_Rm16; } break; } case InstDB::kEncodingISimdVVVe: { const InstDB::EncodingData::ISimdVVVe& op_data = InstDB::EncodingData::iSimdVVVe[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Reg)) { const Operand_& sop = significant_simd_op(o0, o1, inst_flags); if (!match_signature(o0, o1, inst_flags)) goto InvalidInstruction; if (!o2.as().has_element_index()) { SizeOp size_op = element_type_to_size_op(op_data.regular_vec_type, sop.as().reg_type(), sop.as().element_type()); if (!size_op.is_valid()) goto InvalidInstruction; if (!check_signature(o1, o2)) goto InvalidInstruction; opcode.reset(uint32_t(op_data.regular_op) << 10); opcode.add_imm(size_op.qs(), 30); opcode.add_imm(size_op.scalar(), 28); opcode.add_imm(size_op.size(), 22); goto EmitOp_Rd0_Rn5_Rm16; } else { SizeOp size_op = element_type_to_size_op(op_data.element_vec_type, sop.as().reg_type(), sop.as().element_type()); if (!size_op.is_valid()) goto InvalidInstruction; uint32_t element_index = o2.as().element_index(); LMHImm lmh; if (!encode_lmh(size_op.size(), element_index, Out(lmh))) goto InvalidElementIndex; if (o2.as().id() > lmh.max_rm_id) goto InvalidPhysId; opcode.reset(uint32_t(op_data.element_op) << 10); opcode.add_imm(size_op.q(), 30); opcode.add_imm(size_op.size(), 22); opcode.add_imm(lmh.lm, 20); opcode.add_imm(lmh.h, 11); goto EmitOp_Rd0_Rn5_Rm16; } } break; } case InstDB::kEncodingISimdVVVI: { const InstDB::EncodingData::ISimdVVVI& op_data = InstDB::EncodingData::iSimdVVVI[encoding_index]; if (isign4 == ENC_OPS4(Reg, Reg, Reg, Imm)) { const Operand_& sop = significant_simd_op(o0, o1, inst_flags); if (!match_signature(o0, o1, o2, inst_flags)) goto InvalidInstruction; SizeOp size_op = element_type_to_size_op(op_data.vec_op_type, sop.as().reg_type(), sop.as().element_type()); if (!size_op.is_valid()) goto InvalidInstruction; uint64_t imm_value = o3.as().value_as(); uint32_t imm_size = op_data.imm_size; if (op_data.imm64_has_one_bit_less && !size_op.q()) imm_size--; uint32_t immMax = 1u << imm_size; if (imm_value >= immMax) goto InvalidImmediate; opcode.reset(op_data.opcode()); opcode.add_imm(size_op.qs(), 30); opcode.add_imm(size_op.scalar(), 28); opcode.add_imm(size_op.size(), 22); opcode.add_imm(imm_value, op_data.imm_shift); goto EmitOp_Rd0_Rn5_Rm16; } break; } case InstDB::kEncodingISimdVVVV: { const InstDB::EncodingData::ISimdVVVV& op_data = InstDB::EncodingData::iSimdVVVV[encoding_index]; if (isign4 == ENC_OPS4(Reg, Reg, Reg, Reg)) { const Operand_& sop = significant_simd_op(o0, o1, inst_flags); if (!match_signature(o0, o1, o2, o3, inst_flags)) goto InvalidInstruction; SizeOp size_op = element_type_to_size_op(op_data.vec_op_type, sop.as().reg_type(), sop.as().element_type()); if (!size_op.is_valid()) goto InvalidInstruction; opcode.reset(uint32_t(op_data.opcode) << 10); opcode.add_imm(size_op.qs(), 30); opcode.add_imm(size_op.scalar(), 28); opcode.add_imm(size_op.size(), 22); goto EmitOp_Rd0_Rn5_Rm16_Ra10; } break; } case InstDB::kEncodingISimdVVVVx: { const InstDB::EncodingData::ISimdVVVVx& op_data = InstDB::EncodingData::iSimdVVVVx[encoding_index]; if (isign4 == ENC_OPS4(Reg, Reg, Reg, Reg)) { if (o0.signature() != op_data.op0_signature || o1.signature() != op_data.op1_signature || o2.signature() != op_data.op2_signature || o3.signature() != op_data.op3_signature) goto InvalidInstruction; opcode.reset(uint32_t(op_data.opcode) << 10); goto EmitOp_Rd0_Rn5_Rm16_Ra10; } break; } case InstDB::kEncodingISimdPair: { const InstDB::EncodingData::ISimdPair& op_data = InstDB::EncodingData::iSimdPair[encoding_index]; if (isign4 == ENC_OPS2(Reg, Reg) && op_data.opcode2) { if (o0.as().is_vec_d1() && o1.as().is_vec_d2()) { opcode.reset(uint32_t(op_data.opcode2) << 10); opcode.add_imm(0x3, 22); // size. goto EmitOp_Rd0_Rn5; } } if (isign4 == ENC_OPS3(Reg, Reg, Reg)) { if (!match_signature(o0, o1, o2, inst_flags)) goto InvalidInstruction; SizeOp size_op = element_type_to_size_op(op_data.op_type3, o0.as().reg_type(), o0.as().element_type()); if (!size_op.is_valid()) goto InvalidInstruction; opcode.reset(uint32_t(op_data.opcode3) << 10); opcode.add_imm(size_op.qs(), 30); opcode.add_imm(size_op.scalar(), 28); opcode.add_imm(size_op.size(), 22); goto EmitOp_Rd0_Rn5_Rm16; } break; } case InstDB::kEncodingSimdBicOrr: { const InstDB::EncodingData::SimdBicOrr& op_data = InstDB::EncodingData::simdBicOrr[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Reg)) { if (!match_signature(o0, o1, o2, inst_flags)) goto InvalidInstruction; SizeOp size_op = element_type_to_size_op(InstDB::kVO_V_B, o0.as().reg_type(), o0.as().element_type()); if (!size_op.is_valid()) goto InvalidInstruction; opcode.reset(uint32_t(op_data.register_op) << 10); opcode.add_imm(size_op.q(), 30); goto EmitOp_Rd0_Rn5_Rm16; } if (isign4 == ENC_OPS2(Reg, Imm) || isign4 == ENC_OPS3(Reg, Imm, Imm)) { SizeOp size_op = element_type_to_size_op(InstDB::kVO_V_HS, o0.as().reg_type(), o0.as().element_type()); if (!size_op.is_valid()) goto InvalidInstruction; if (o1.as().value_as() > 0xFFFFFFFFu) goto InvalidImmediate; uint32_t imm = o1.as().value_as(); uint32_t shift = 0; uint32_t max_shift = (8u << size_op.size()) - 8u; if (o2.is_imm()) { if (o2.as().predicate() != uint32_t(ShiftOp::kLSL)) goto InvalidImmediate; if (imm > 0xFFu || o2.as().value_as() > max_shift) goto InvalidImmediate; shift = o2.as().value_as(); if ((shift & 0x7u) != 0u) goto InvalidImmediate; } else if (imm) { shift = Support::ctz(imm) & ~0x7u; imm >>= shift; if (imm > 0xFFu || shift > max_shift) goto InvalidImmediate; } uint32_t cmode = 0x1u | ((shift / 8u) << 1); if (size_op.size() == 1) cmode |= B(3); // The immediate value is split into ABC and DEFGH parts. uint32_t abc = (imm >> 5) & 0x7u; uint32_t defgh = imm & 0x1Fu; opcode.reset(uint32_t(op_data.immediate_op) << 10); opcode.add_imm(size_op.q(), 30); opcode.add_imm(abc, 16); opcode.add_imm(cmode, 12); opcode.add_imm(defgh, 5); goto EmitOp_Rd0; } break; } case InstDB::kEncodingSimdCmp: { const InstDB::EncodingData::SimdCmp& op_data = InstDB::EncodingData::simdCmp[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Reg) && op_data.register_op) { if (!match_signature(o0, o1, o2, inst_flags)) goto InvalidInstruction; SizeOp size_op = element_type_to_size_op(op_data.vec_op_type, o0.as().reg_type(), o0.as().element_type()); if (!size_op.is_valid()) goto InvalidInstruction; opcode.reset(uint32_t(op_data.register_op) << 10); opcode.add_imm(size_op.qs(), 30); opcode.add_imm(size_op.scalar(), 28); opcode.add_imm(size_op.size(), 22); goto EmitOp_Rd0_Rn5_Rm16; } if (isign4 == ENC_OPS3(Reg, Reg, Imm) && op_data.zero_op) { if (!match_signature(o0, o1, inst_flags)) goto InvalidInstruction; if (o2.as().value() != 0) goto InvalidImmediate; SizeOp size_op = element_type_to_size_op(op_data.vec_op_type, o0.as().reg_type(), o0.as().element_type()); if (!size_op.is_valid()) goto InvalidInstruction; opcode.reset(uint32_t(op_data.zero_op) << 10); opcode.add_imm(size_op.qs(), 30); opcode.add_imm(size_op.scalar(), 28); opcode.add_imm(size_op.size(), 22); goto EmitOp_Rd0_Rn5; } break; } case InstDB::kEncodingSimdDot: { const InstDB::EncodingData::SimdDot& op_data = InstDB::EncodingData::simdDot[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Reg)) { uint32_t q = diff(o0.as().reg_type(), RegType::kVec64); uint32_t size = 2; if (q > 1u) goto InvalidInstruction; if (!o2.as().has_element_index()) { if (!op_data.vector_op) goto InvalidInstruction; if (o0.as().reg_type() != o1.as().reg_type() || o1.as().reg_type() != o2.as().reg_type()) goto InvalidInstruction; if (uint32_t(o0.as().element_type()) != op_data.ta || uint32_t(o1.as().element_type()) != op_data.tb || uint32_t(o2.as().element_type()) != op_data.tb) goto InvalidInstruction; opcode.reset(uint32_t(op_data.vector_op) << 10); opcode.add_imm(q, 30); goto EmitOp_Rd0_Rn5_Rm16; } else { if (!op_data.element_op) goto InvalidInstruction; if (o0.as().reg_type() != o1.as().reg_type() || !o2.as().is_vec128()) goto InvalidInstruction; if (uint32_t(o0.as().element_type()) != op_data.ta || uint32_t(o1.as().element_type()) != op_data.tb || uint32_t(o2.as().element_type()) != op_data.tElement) goto InvalidInstruction; uint32_t element_index = o2.as().element_index(); LMHImm lmh; if (!encode_lmh(size, element_index, Out(lmh))) goto InvalidElementIndex; if (o2.as().id() > lmh.max_rm_id) goto InvalidPhysId; opcode.reset(uint32_t(op_data.element_op) << 10); opcode.add_imm(q, 30); opcode.add_imm(lmh.lm, 20); opcode.add_imm(lmh.h, 11); goto EmitOp_Rd0_Rn5_Rm16; } } break; } case InstDB::kEncodingSimdDup: SimdDup: { if (isign4 == ENC_OPS2(Reg, Reg)) { // Truth table of valid encodings of `Q:1|ElementType:3` uint32_t kValidEncodings = B(uint32_t(VecElementType::kB) + 0) | B(uint32_t(VecElementType::kH) + 0) | B(uint32_t(VecElementType::kS) + 0) | B(uint32_t(VecElementType::kB) + 8) | B(uint32_t(VecElementType::kH) + 8) | B(uint32_t(VecElementType::kS) + 8) | B(uint32_t(VecElementType::kD) + 8) ; uint32_t q = diff(o0.as().reg_type(), RegType::kVec64); if (o1.as().is_gp()) { // DUP - Vec (scalar|vector) <- GP register. // // NOTE: This is only scalar for `dup d, x` case, otherwise the value // would be duplicated across all vector elements (1, 2, 4, 8, or 16). uint32_t element_type = uint32_t(o0.as().element_type()); if (q > 1 || !Support::bit_test(kValidEncodings, (q << 3) | element_type)) goto InvalidInstruction; uint32_t lsb_index = element_type - 1u; uint32_t imm5 = 1u << lsb_index; opcode.reset(0b0000111000000000000011 << 10); opcode.add_imm(q, 30); opcode.add_imm(imm5, 16); goto EmitOp_Rd0_Rn5; } if (!o1.as().is_vec() || !o1.as().has_element_index()) goto InvalidInstruction; uint32_t dst_index = o1.as().element_index(); if (!o0.as().has_element_type()) { // DUP - Vec (scalar) <- Vec[N]. uint32_t lsb_index = diff(o0.as().reg_type(), RegType::kVec8); if (lsb_index != diff(o1.as().element_type(), VecElementType::kB) || lsb_index > 3) goto InvalidInstruction; uint32_t imm5 = ((dst_index << 1) | 1u) << lsb_index; if (imm5 > 31) goto InvalidElementIndex; opcode.reset(0b0101111000000000000001 << 10); opcode.add_imm(imm5, 16); goto EmitOp_Rd0_Rn5; } else { // DUP - Vec (all) <- Vec[N]. uint32_t element_type = uint32_t(o0.as().element_type()); if (q > 1 || !Support::bit_test(kValidEncodings, (q << 3) | element_type)) goto InvalidInstruction; uint32_t lsb_index = element_type - 1u; uint32_t imm5 = ((dst_index << 1) | 1u) << lsb_index; if (imm5 > 31) goto InvalidElementIndex; opcode.reset(0b0000111000000000000001 << 10); opcode.add_imm(q, 30); opcode.add_imm(imm5, 16); goto EmitOp_Rd0_Rn5; } } break; } case InstDB::kEncodingSimdIns: SimdIns: { if (isign4 == ENC_OPS2(Reg, Reg) && o0.as().is_vec128()) { if (!o0.as().has_element_index()) goto InvalidInstruction; uint32_t element_type = uint32_t(o0.as().element_type()); uint32_t dst_index = o0.as().element_index(); uint32_t lsb_index = element_type - 1u; uint32_t imm5 = ((dst_index << 1) | 1u) << lsb_index; if (imm5 > 31) goto InvalidElementIndex; if (o1.as().is_gp()) { // INS - Vec[N] <- GP register. opcode.reset(0b0100111000000000000111 << 10); opcode.add_imm(imm5, 16); goto EmitOp_Rd0_Rn5; } else if (o1.as().is_vec128() && o1.as().has_element_index()) { // INS - Vec[N] <- Vec[M]. if (o0.as().element_type() != o1.as().element_type()) goto InvalidInstruction; uint32_t src_index = o1.as().element_index(); if (o0.as().reg_type() != o1.as().reg_type()) goto InvalidInstruction; uint32_t imm4 = src_index << lsb_index; if (imm4 > 15) goto InvalidElementIndex; opcode.reset(0b0110111000000000000001 << 10); opcode.add_imm(imm5, 16); opcode.add_imm(imm4, 11); goto EmitOp_Rd0_Rn5; } } break; } case InstDB::kEncodingSimdMov: { if (isign4 == ENC_OPS2(Reg, Reg)) { if (o0.as().is_vec() && o1.as().is_vec()) { // INS v.x[index], v.x[index]. if (o0.as().has_element_index() && o1.as().has_element_index()) goto SimdIns; // DUP {b|h|s|d}, v.{b|h|s|d}[index]. if (o1.as().has_element_index()) goto SimdDup; if (!check_signature(o0, o1)) goto InvalidInstruction; // ORR Vd, Vn, Vm uint32_t q = diff(o0.as().reg_type(), RegType::kVec64); if (q > 1) goto InvalidInstruction; opcode.reset(0b0000111010100000000111 << 10); opcode.add_imm(q, 30); opcode.add_reg(o1, 16); // Vn == Vm. goto EmitOp_Rd0_Rn5; } if (o0.as().is_vec() && o1.as().is_gp()) { // INS v.x[index], Rn. if (o0.as().has_element_index()) goto SimdIns; goto InvalidInstruction; } if (o0.as().is_gp() && o1.as().is_vec()) { // UMOV Rd, V.{s|d}[index]. encoding_index = 1; goto SimdUmov; } } break; } case InstDB::kEncodingSimdMoviMvni: { const InstDB::EncodingData::SimdMoviMvni& op_data = InstDB::EncodingData::simdMoviMvni[encoding_index]; if (isign4 == ENC_OPS2(Reg, Imm) || isign4 == ENC_OPS3(Reg, Imm, Imm)) { SizeOp size_op = element_type_to_size_op(InstDB::kVO_V_Any, o0.as().reg_type(), o0.as().element_type()); if (!size_op.is_valid()) goto InvalidInstruction; uint64_t imm64 = o1.as().value_as(); uint32_t imm8 = 0; uint32_t cmode = 0; uint32_t inverted = op_data.inverted; uint32_t op = 0; uint32_t shift = 0; uint32_t shift_op = uint32_t(ShiftOp::kLSL); if (size_op.size() == 3u) { // The second immediate should not be present, however, we accept // an immediate value of zero as some user code may still pass it. if (o2.is_imm() && o0.as().value() != 0) goto InvalidImmediate; if (Utils::is_byte_mask_imm(imm64)) { imm8 = Utils::encode_imm64_byte_mask_to_imm8(imm64); } else { // Change from D to S and from 64-bit imm to 32-bit imm if this // is not a byte-mask pattern. if ((imm64 >> 32) == (imm64 & 0xFFFFFFFFu)) { imm64 &= 0xFFFFFFFFu; size_op.decrement_size(); } else { goto InvalidImmediate; } } } if (size_op.size() < 3u) { if (imm64 > 0xFFFFFFFFu) goto InvalidImmediate; imm8 = uint32_t(imm64); if (size_op.size() == 2) { if ((imm8 >> 16) == (imm8 & 0xFFFFu)) { imm8 >>= 16; size_op.decrement_size(); } } if (size_op.size() == 1) { if (imm8 > 0xFFFFu) goto InvalidImmediate; if ((imm8 >> 8) == (imm8 & 0xFFu)) { imm8 >>= 8; size_op.decrement_size(); } } uint32_t max_shift = (8u << size_op.size()) - 8u; if (o2.is_imm()) { if (imm8 > 0xFFu || o2.as().value_as() > max_shift) goto InvalidImmediate; shift = o2.as().value_as(); shift_op = o2.as().predicate(); } else if (imm8) { shift = Support::ctz(imm8) & ~0x7u; imm8 >>= shift; if (imm8 > 0xFFu || shift > max_shift) goto InvalidImmediate; } if ((shift & 0x7u) != 0u) goto InvalidImmediate; } shift /= 8u; switch (size_op.size()) { case 0: if (shift_op != uint32_t(ShiftOp::kLSL)) goto InvalidImmediate; if (inverted) { imm8 = ~imm8 & 0xFFu; } cmode = B(3) | B(2) | B(1); break; case 1: if (shift_op != uint32_t(ShiftOp::kLSL)) goto InvalidImmediate; cmode = B(3) | (shift << 1); op = inverted; break; case 2: if (shift_op == uint32_t(ShiftOp::kLSL)) { cmode = shift << 1; } else if (shift_op == uint32_t(ShiftOp::kMSL)) { if (shift == 0 || shift > 2) goto InvalidImmediate; cmode = B(3) | B(2) | (shift - 1u); } else { goto InvalidImmediate; } op = inverted; break; case 3: if (inverted) { imm8 = ~imm8 & 0xFFu; } op = 1; cmode = B(3) | B(2) | B(1); break; } // The immediate value is split into ABC and DEFGH parts. uint32_t abc = (imm8 >> 5) & 0x7u; uint32_t defgh = imm8 & 0x1Fu; opcode.reset(uint32_t(op_data.opcode) << 10); opcode.add_imm(size_op.q(), 30); opcode.add_imm(op, 29); opcode.add_imm(abc, 16); opcode.add_imm(cmode, 12); opcode.add_imm(defgh, 5); goto EmitOp_Rd0; } break; } case InstDB::kEncodingSimdShift: { const InstDB::EncodingData::SimdShift& op_data = InstDB::EncodingData::simdShift[encoding_index]; const Operand_& sop = significant_simd_op(o0, o1, inst_flags); SizeOp size_op = element_type_to_size_op(op_data.vec_op_type, sop.as().reg_type(), sop.as().element_type()); if (!size_op.is_valid()) goto InvalidInstruction; if (isign4 == ENC_OPS3(Reg, Reg, Imm) && op_data.immediate_op) { if (!match_signature(o0, o1, inst_flags)) goto InvalidInstruction; if (o2.as().value_as() > 63) goto InvalidImmediate; uint32_t lsb_shift = size_op.size() + 3u; uint32_t lsb_mask = (1u << lsb_shift) - 1u; uint32_t imm = o2.as().value_as(); // Some instructions use IMM and some X - IMM, so negate if required. if (op_data.inverted_imm) { if (imm == 0 || imm > (1u << lsb_shift)) goto InvalidImmediate; imm = Support::neg(imm) & lsb_mask; } if (imm > lsb_mask) goto InvalidImmediate; imm |= (1u << lsb_shift); opcode.reset(uint32_t(op_data.immediate_op) << 10); opcode.add_imm(size_op.qs(), 30); opcode.add_imm(size_op.scalar(), 28); opcode.add_imm(imm, 16); goto EmitOp_Rd0_Rn5; } if (isign4 == ENC_OPS3(Reg, Reg, Reg) && op_data.register_op) { if (!match_signature(o0, o1, o2, inst_flags)) goto InvalidInstruction; opcode.reset(uint32_t(op_data.register_op) << 10); opcode.add_imm(size_op.qs(), 30); opcode.add_imm(size_op.scalar(), 28); opcode.add_imm(size_op.size(), 22); goto EmitOp_Rd0_Rn5_Rm16; } break; } case InstDB::kEncodingSimdShiftES: { const InstDB::EncodingData::SimdShiftES& op_data = InstDB::EncodingData::simdShiftES[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Imm)) { SizeOp size_op = element_type_to_size_op(op_data.vec_op_type, o1.as().reg_type(), o1.as().element_type()); if (!size_op.is_valid()) goto InvalidInstruction; if (!match_signature(o0, o1, inst_flags)) goto InvalidInstruction; // The immediate value must match the element size. uint64_t shift = o2.as().value_as(); uint32_t shift_op = o2.as().predicate(); if (shift != (8u << size_op.size()) || shift_op != uint32_t(ShiftOp::kLSL)) goto InvalidImmediate; opcode.reset(uint32_t(op_data.opcode) << 10); opcode.add_imm(size_op.q(), 30); opcode.add_imm(size_op.size(), 22); goto EmitOp_Rd0_Rn5; } break; } case InstDB::kEncodingSimdSm3tt: { const InstDB::EncodingData::SimdSm3tt& op_data = InstDB::EncodingData::simdSm3tt[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Reg)) { if (o0.as().is_vec_s4() && o1.as().is_vec_s4() && o2.as().is_vec_s4() && o2.as().has_element_index()) { uint32_t imm2 = o2.as().element_index(); if (imm2 > 3) goto InvalidElementIndex; opcode.reset(uint32_t(op_data.opcode) << 10); opcode.add_imm(imm2, 12); goto EmitOp_Rd0_Rn5_Rm16; } } break; } case InstDB::kEncodingSimdSmovUmov: SimdUmov: { const InstDB::EncodingData::SimdSmovUmov& op_data = InstDB::EncodingData::simdSmovUmov[encoding_index]; if (isign4 == ENC_OPS2(Reg, Reg) && o0.as().is_gp() && o1.as().is_vec()) { SizeOp size_op = element_type_to_size_op(op_data.vec_op_type, o1.as().reg_type(), o1.as().element_type()); if (!size_op.is_valid()) goto InvalidInstruction; if (!o1.as().has_element_index()) goto InvalidInstruction; uint32_t x = o0.as().is_gp64(); uint32_t gp_must_be_x = uint32_t(size_op.size() >= 3u - op_data.is_signed); if (op_data.is_signed) { if (gp_must_be_x && !x) goto InvalidInstruction; } else { if (x != gp_must_be_x) goto InvalidInstruction; } uint32_t element_index = o1.as().element_index(); uint32_t max_element_index = 15u >> size_op.size(); if (element_index > max_element_index) goto InvalidElementIndex; uint32_t imm5 = (1u | (element_index << 1)) << size_op.size(); opcode.reset(uint32_t(op_data.opcode) << 10); opcode.add_imm(x, 30); opcode.add_imm(imm5, 16); goto EmitOp_Rd0_Rn5; } break; } case InstDB::kEncodingSimdSxtlUxtl: { const InstDB::EncodingData::SimdSxtlUxtl& op_data = InstDB::EncodingData::simdSxtlUxtl[encoding_index]; if (isign4 == ENC_OPS2(Reg, Reg)) { SizeOp size_op = element_type_to_size_op(op_data.vec_op_type, o1.as().reg_type(), o1.as().element_type()); if (!size_op.is_valid()) goto InvalidInstruction; if (!match_signature(o0, o1, inst_flags)) goto InvalidInstruction; opcode.reset(uint32_t(op_data.opcode) << 10); opcode.add_imm(size_op.q(), 30); opcode.add_imm(1u, size_op.size() + 19); goto EmitOp_Rd0_Rn5; } break; } case InstDB::kEncodingSimdTblTbx: { const InstDB::EncodingData::SimdTblTbx& op_data = InstDB::EncodingData::simdTblTbx[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Reg) || isign4 == ENC_OPS4(Reg, Reg, Reg, Reg)) { // TBL/TBX ., { .16B }, . // TBL/TBX ., { .16B, .16B }, . // TBL/TBX ., { .16B, .16B, .16B }, . // TBL/TBX ., { .16B, .16B, .16B, .16B }, . opcode.reset(uint32_t(op_data.opcode) << 10); const Operand_& o4 = op_ext[EmitterUtils::kOp4]; const Operand_& o5 = op_ext[EmitterUtils::kOp5]; uint32_t q = diff(o0.as().reg_type(), RegType::kVec64); if (q > 1 || o0.as().has_element_index()) goto InvalidInstruction; if (!o1.as().is_vec_b16() || o1.as().has_element_index()) goto InvalidInstruction; uint32_t len = uint32_t(!o3.is_none()) + uint32_t(!o4.is_none()) + uint32_t(!o5.is_none()); opcode.add_imm(q, 30); opcode.add_imm(len, 13); switch (len) { case 0: if (!check_signature(o0, o2)) goto InvalidInstruction; if (o2.id() > 31) goto InvalidPhysId; opcode.add_reg(o2, 16); goto EmitOp_Rd0_Rn5; case 1: if (!check_signature(o0, o3)) goto InvalidInstruction; if (o3.id() > 31) goto InvalidPhysId; opcode.add_reg(o3, 16); goto EmitOp_Rd0_Rn5; case 2: if (!check_signature(o0, o4)) goto InvalidInstruction; if (o4.id() > 31) goto InvalidPhysId; opcode.add_reg(o4, 16); goto EmitOp_Rd0_Rn5; case 3: if (!check_signature(o0, o5)) goto InvalidInstruction; if (o5.id() > 31) goto InvalidPhysId; opcode.add_reg(o5, 16); goto EmitOp_Rd0_Rn5; default: // Should never happen. goto InvalidInstruction; } } break; } // ------------------------------------------------------------------------ // [Simd - Load / Store] // ------------------------------------------------------------------------ case InstDB::kEncodingSimdLdSt: { const InstDB::EncodingData::SimdLdSt& op_data = InstDB::EncodingData::simdLdSt[encoding_index]; if (isign4 == ENC_OPS2(Reg, Mem)) { const Mem& m = o1.as(); rm_rel = &m; // Width | SZ | XY | XSZ // -------+----------+-----------+----- // 8-bit | size==00 | opc == 01 | 000 // 16-bit | size==01 | opc == 01 | 001 // 32-bit | size==10 | opc == 01 | 010 // 64-bit | size==11 | opc == 01 | 011 // 128-bit| size==00 | opc == 11 | 100 uint32_t xsz = diff(o0.as().reg_type(), RegType::kVec8); if (xsz > 4u || o0.as().has_element_index()) goto InvalidRegType; if (!check_vec_id(o0)) goto InvalidPhysId; if (!check_mem_base_index_rel(m)) goto InvalidAddress; int64_t offset = m.offset(); if (m.has_base_reg()) { // [Base {Offset | Index}] if (m.has_index()) { uint32_t opt = shift_op_to_ld_st_opt_map[size_t(m.shift_op())]; if (opt == 0xFFu) goto InvalidAddress; uint32_t shift = m.shift(); uint32_t s = (shift != 0); if (s && shift != xsz) goto InvalidAddressScale; opcode.reset(uint32_t(op_data.register_op) << 21); opcode.add_imm(xsz & 3u, 30); opcode.add_imm(xsz >> 2, 23); opcode.add_imm(opt, 13); opcode.add_imm(s, 12); opcode |= B(11); opcode.add_reg(o0, 0); goto EmitOp_MemBaseIndex_Rn5_Rm16; } // Makes it easier to work with the offset especially on 32-bit arch. if (!Support::is_int_n<32>(offset)) goto InvalidDisplacement; int32_t offset32 = int32_t(offset); if (m.is_pre_or_post()) { if (!Support::is_int_n<9>(offset32)) goto InvalidDisplacement; opcode.reset(uint32_t(op_data.pre_post_op) << 21); opcode.add_imm(xsz & 3u, 30); opcode.add_imm(xsz >> 2, 23); opcode.add_imm(offset32 & 0x1FF, 12); opcode.add_imm(m.is_pre_index(), 11); opcode |= B(10); opcode.add_reg(o0, 0); goto EmitOp_MemBase_Rn5; } else { uint32_t imm12 = uint32_t(offset32) >> xsz; // If this instruction is not encodable with scaled unsigned offset, try unscaled signed offset. if (!Support::is_uint_n<12>(imm12) || (imm12 << xsz) != uint32_t(offset32)) { inst_id = op_data.u_alt_inst_id; inst_info = &InstDB::_inst_info_table[inst_id]; encoding_index = inst_info->_encoding_data_index; goto Case_SimdLdurStur; } opcode.reset(uint32_t(op_data.u_offset_op) << 22); opcode.add_imm(xsz & 3u, 30); opcode.add_imm(xsz >> 2, 23); opcode.add_imm(imm12, 10); opcode.add_reg(o0, 0); goto EmitOp_MemBase_Rn5; } } else { if (!op_data.literal_op) goto InvalidAddress; if (xsz < 2u) goto InvalidRegType; uint32_t opc = xsz - 2u; opcode.reset(uint32_t(op_data.literal_op) << 24); opcode.add_imm(opc, 30); opcode.add_reg(o0, 0); offset_format.reset_to_imm_value(OffsetType::kSignedOffset, 4, 5, 19, 2); goto EmitOp_Rel; } } break; } case InstDB::kEncodingSimdLdpStp: { const InstDB::EncodingData::SimdLdpStp& op_data = InstDB::EncodingData::simdLdpStp[encoding_index]; if (isign4 == ENC_OPS3(Reg, Reg, Mem)) { const Mem& m = o2.as(); rm_rel = &m; uint32_t opc = diff(o0.as().reg_type(), RegType::kVec32); if (opc > 2u || o0.as().has_element_type_or_index()) goto InvalidInstruction; if (!check_signature(o0, o1)) goto InvalidInstruction; if (!check_vec_id(o0, o1)) goto InvalidPhysId; if (m.base_type() != RegType::kGp64 || m.has_index()) goto InvalidAddress; if (m.is_offset_64bit()) goto InvalidDisplacement; uint32_t offset_shift = 2u + opc; int32_t offset32 = m.offset_lo32() >> offset_shift; // Make sure we didn't lose bits by applying the mandatory offset shift. if (Support::shl(offset32, offset_shift) != m.offset_lo32()) goto InvalidDisplacement; // Offset is encoded as a 7-bit immediate. if (!Support::is_int_n<7>(offset32)) goto InvalidDisplacement; if (m.is_pre_or_post() && offset32 != 0) { if (!op_data.pre_post_op) goto InvalidAddress; opcode.reset(uint32_t(op_data.pre_post_op) << 22); opcode.add_imm(m.is_pre_index(), 24); } else { opcode.reset(uint32_t(op_data.offset_op) << 22); } opcode.add_imm(opc, 30); opcode.add_imm(offset32 & 0x7F, 15); opcode.add_reg(o1, 10); opcode.add_reg(o0, 0); goto EmitOp_MemBase_Rn5; } break; } case InstDB::kEncodingSimdLdurStur: { Case_SimdLdurStur: const InstDB::EncodingData::SimdLdurStur& op_data = InstDB::EncodingData::simdLdurStur[encoding_index]; if (isign4 == ENC_OPS2(Reg, Mem)) { const Mem& m = o1.as(); rm_rel = &m; uint32_t sz = diff(o0.as().reg_type(), RegType::kVec8); if (sz > 4 || o0.as().has_element_type_or_index()) goto InvalidInstruction; if (!check_vec_id(o0)) goto InvalidPhysId; if (!check_mem_base_index_rel(m)) goto InvalidAddress; if (m.has_base_reg() && !m.has_index() && !m.is_pre_or_post()) { if (m.is_offset_64bit()) goto InvalidDisplacement; int32_t offset32 = m.offset_lo32(); if (!Support::is_int_n<9>(offset32)) goto InvalidDisplacement; opcode.reset(uint32_t(op_data.opcode) << 10); opcode.add_imm(sz & 3u, 30); opcode.add_imm(sz >> 2, 23); opcode.add_imm(offset32 & 0x1FF, 12); opcode.add_reg(o0, 0); goto EmitOp_MemBase_Rn5; } goto InvalidAddress; } break; } case InstDB::kEncodingSimdLdNStN: { const InstDB::EncodingData::SimdLdNStN& op_data = InstDB::EncodingData::simdLdNStN[encoding_index]; const Operand_& o4 = op_ext[EmitterUtils::kOp4]; uint32_t n = 1; if (isign4 == ENC_OPS2(Reg, Mem)) { if (op_data.n != 1) goto InvalidInstruction; rm_rel = &o1; } else if (isign4 == ENC_OPS3(Reg, Reg, Mem)) { if (op_data.n != 1 && op_data.n != 2) goto InvalidInstruction; if (!check_signature(o0, o1) || !check_consecutive(o0, o1)) goto InvalidInstruction; n = 2; rm_rel = &o2; } else if (isign4 == ENC_OPS4(Reg, Reg, Reg, Mem) && o4.is_none()) { if (op_data.n != 1 && op_data.n != 3) goto InvalidInstruction; if (!check_signature(o0, o1, o2) || !check_consecutive(o0, o1, o2)) goto InvalidInstruction; n = 3; rm_rel = &o3; } else if (isign4 == ENC_OPS4(Reg, Reg, Reg, Reg) && o4.is_mem()) { if (op_data.n != 1 && op_data.n != 4) goto InvalidInstruction; if (!check_signature(o0, o1, o2, o3) || !check_consecutive(o0, o1, o2, o3)) goto InvalidInstruction; n = 4; rm_rel = &o4; } else { goto InvalidInstruction; } // We will use `v` and `m` from now as those are relevant for encoding. const Vec& v = o0.as(); const Mem& m = rm_rel->as(); uint32_t q = 0; uint32_t rm = 0; uint32_t rn = m.base_id(); uint32_t sz = diff(v.element_type(), VecElementType::kB); uint32_t opc_s_size = sz; uint32_t offset_possibility = 0; if (sz > 3) goto InvalidInstruction; if (m.base_type() != RegType::kGp64) goto InvalidAddress; // Rn cannot be ZR, but can be SP. if (rn > 30 && rn != Gp::kIdSp) goto InvalidAddress; rn &= 31; if (op_data.replicate) { if (n != op_data.n) goto InvalidInstruction; // Replicates to the whole register, element index cannot be used. if (v.has_element_index()) goto InvalidInstruction; q = diff(v.reg_type(), RegType::kVec64); if (q > 1) goto InvalidInstruction; opcode.reset(uint32_t(op_data.single_op) << 10); offset_possibility = (1u << sz) * n; } else if (v.has_element_index()) { if (n != op_data.n) goto InvalidInstruction; // LDx/STx (single structure). static const uint8_t opc_s_size_by_sz_table[] = { 0x0u << 3, 0x2u << 3, 0x4u << 3, (0x4u << 3) | 1u }; opcode.reset(uint32_t(op_data.single_op) << 10); opc_s_size = opc_s_size_by_sz_table[sz]; offset_possibility = (1u << sz) * op_data.n; uint32_t element_index = v.element_index(); uint32_t max_element_index = 15 >> sz; if (element_index > max_element_index) goto InvalidElementIndex; element_index <<= sz; q = element_index >> 3; opc_s_size |= element_index & 0x7u; } else { // LDx/STx (multiple structures). static const uint8_t opc_s_size_by_n_table[] = { 0u, 0x7u << 2, 0xAu << 2, 0x6u << 2, 0x2u << 2 }; q = diff(v.reg_type(), RegType::kVec64); if (q > 1) goto InvalidInstruction; if (op_data.n == 1) opc_s_size |= opc_s_size_by_n_table[n]; opcode.reset(uint32_t(op_data.multiple_op) << 10); offset_possibility = (8u << q) * n; } if (m.has_index()) { if (m.has_offset() || !m.is_post_index()) goto InvalidAddress; rm = m.index_id(); if (rm > 30) goto InvalidAddress; // Bit 23 - PostIndex. opcode |= B(23); } else { if (m.has_offset()) { if (m.offset() != int32_t(offset_possibility) || !m.is_post_index()) goto InvalidAddress; rm = 31; // Bit 23 - PostIndex. opcode |= B(23); } } opcode.add_imm(q, 30); opcode.add_imm(rm, 16); opcode.add_imm(opc_s_size, 10); opcode.add_imm(rn, 5); goto EmitOp_Rd0; } default: break; } goto InvalidInstruction; // -------------------------------------------------------------------------- // [EmitGp - Single] // -------------------------------------------------------------------------- EmitOp_Rd0: if (!check_valid_regs(o0)) goto InvalidPhysId; opcode.add_reg(o0, 0); goto EmitOp; EmitOp_Rn5: if (!check_valid_regs(o0)) goto InvalidPhysId; opcode.add_reg(o0, 5); goto EmitOp; EmitOp_Rn5_Rm16: if (!check_valid_regs(o0, o1)) goto InvalidPhysId; opcode.add_reg(o0, 5); opcode.add_reg(o1, 16); goto EmitOp; EmitOp_Rd0_Rn5: if (!check_valid_regs(o0, o1)) goto InvalidPhysId; opcode.add_reg(o0, 0); opcode.add_reg(o1, 5); goto EmitOp; EmitOp_Rd0_Rn5_Rm16_Ra10: if (!check_valid_regs(o0, o1, o2, o3)) goto InvalidPhysId; opcode.add_reg(o0, 0); opcode.add_reg(o1, 5); opcode.add_reg(o2, 16); opcode.add_reg(o3, 10); goto EmitOp; EmitOp_Rd0_Rn5_Rm16: if (!check_valid_regs(o0, o1, o3)) goto InvalidPhysId; opcode.add_reg(o0, 0); opcode.add_reg(o1, 5); opcode.add_reg(o2, 16); goto EmitOp; // -------------------------------------------------------------------------- // [EmitGp - Multiple] // -------------------------------------------------------------------------- EmitOp_Multiple: { ASMJIT_ASSERT(multiple_op_count > 0); err = writer.ensure_space(this, multiple_op_count * 4u); if (ASMJIT_UNLIKELY(err != Error::kOk)) { goto Failed; } for (uint32_t i = 0; i < multiple_op_count; i++) { writer.emit32u_le(multiple_op_data[i]); } goto EmitDone; } // -------------------------------------------------------------------------- // [EmitGp - Memory] // -------------------------------------------------------------------------- EmitOp_MemBase_Rn5: if (!check_mem_base(rm_rel->as())) { goto InvalidAddress; } opcode.add_reg(rm_rel->as().base_id(), 5); goto EmitOp; EmitOp_MemBaseNoImm_Rn5: if (!check_mem_base(rm_rel->as()) || rm_rel->as().has_index()) { goto InvalidAddress; } if (rm_rel->as().has_offset()) { goto InvalidDisplacement; } opcode.add_reg(rm_rel->as().base_id(), 5); goto EmitOp; EmitOp_MemBaseIndex_Rn5_Rm16: if (!rm_rel->as().has_base_reg()) { goto InvalidAddress; } if (rm_rel->as().index_id() > 30 && rm_rel->as().index_id() != Gp::kIdZr) { goto InvalidPhysId; } opcode.add_reg(rm_rel->as().index_id(), 16); opcode.add_reg(rm_rel->as().base_id(), 5); goto EmitOp; // -------------------------------------------------------------------------- // [EmitOp - PC Relative] // -------------------------------------------------------------------------- EmitOp_Rel: { if (rm_rel->is_label() || rm_rel->is_mem()) { uint32_t label_id; int64_t label_offset = 0; if (rm_rel->is_label()) { label_id = rm_rel->as