namespace X86Disassembler.X86.Handlers.Sbb; /// /// Handler for SBB r/m32, imm8 (sign-extended) instruction (0x83 /3) /// public class SbbImmFromRm32SignExtendedHandler : InstructionHandler { /// /// Initializes a new instance of the SbbImmFromRm32SignExtendedHandler class /// /// The buffer containing the code to decode /// The instruction decoder that owns this handler /// The length of the buffer public SbbImmFromRm32SignExtendedHandler(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) { if (opcode != 0x83) return false; // Check if the reg field of the ModR/M byte is 3 (SBB) int position = Decoder.GetPosition(); if (position >= Length) return false; byte modRM = CodeBuffer[position]; byte reg = (byte) ((modRM & 0x38) >> 3); return reg == 3; // 3 = SBB } /// /// Decodes a SBB r/m32, imm8 (sign-extended) 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 = "sbb"; int position = Decoder.GetPosition(); if (position >= Length) { return false; } // Read the ModR/M byte var (mod, reg, rm, destOperand) = ModRMDecoder.ReadModRM(); // Read the immediate value (sign-extended from 8 to 32 bits) if (position >= Length) { return false; } // Sign-extend to 32 bits int imm32 = (sbyte) Decoder.ReadByte(); // Set the operands instruction.Operands = $"{destOperand}, 0x{imm32:X8}"; return true; } }