namespace X86Disassembler.X86.Handlers.Xor; /// /// Handler for XOR r/m16, r16 instruction (0x31 with 0x66 prefix) /// public class XorRm16R16Handler : InstructionHandler { /// /// Initializes a new instance of the XorRm16R16Handler class /// /// The buffer containing the code to decode /// The instruction decoder that owns this handler /// The length of the buffer public XorRm16R16Handler(byte[] codeBuffer, InstructionDecoder decoder, int length) : base(codeBuffer, decoder, length) { } /// /// Checks if this handler can decode the given opcode /// /// The opcode to check /// True if this handler can decode the opcode public override bool CanHandle(byte opcode) { // Check if the opcode is 0x31 and there's an operand size prefix (0x66) return opcode == 0x31 && Decoder.HasOperandSizePrefix(); } /// /// Decodes a XOR r/m16, r16 instruction /// /// The opcode of the instruction /// The instruction object to populate /// True if the instruction was successfully decoded public override bool Decode(byte opcode, Instruction instruction) { // Set the mnemonic instruction.Mnemonic = "xor"; int position = Decoder.GetPosition(); if (position >= Length) { return false; } // Read the ModR/M byte var (mod, reg, rm, memOperand) = ModRMDecoder.ReadModRM(); // Get register name for the second operand (16-bit) string regName = ModRMDecoder.GetRegisterName(reg, 16); // For the first operand, handle based on addressing mode string rmOperand; if (mod == 3) // Register addressing mode { // Get 16-bit register name for the first operand rmOperand = ModRMDecoder.GetRegisterName(rm, 16); } else // Memory addressing mode { // For memory operands, replace "dword ptr" with "word ptr" if (memOperand.StartsWith("dword ptr ")) { rmOperand = memOperand.Replace("dword ptr", "word ptr"); } else { rmOperand = memOperand; } } // Set the operands instruction.Operands = $"{rmOperand}, {regName}"; return true; } }