namespace X86Disassembler.X86.Handlers.Adc; using Operands; /// /// Handler for ADC r/m8, imm8 instruction (0x80 /2) /// public class AdcImmToRm8Handler : InstructionHandler { /// /// Initializes a new instance of the AdcImmToRm8Handler class /// /// The instruction decoder that owns this handler public AdcImmToRm8Handler(InstructionDecoder decoder) : base(decoder) { } /// /// 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 != 0x80) return false; // Check if the reg field of the ModR/M byte is 2 (ADC) if (!Decoder.CanReadByte()) return false; var reg = ModRMDecoder.PeakModRMReg(); return reg == 2; // 2 = ADC } /// /// Decodes an ADC r/m8, imm8 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 instruction type instruction.Type = InstructionType.Adc; if (!Decoder.CanReadByte()) { return false; } // Read the ModR/M byte // For ADC r/m8, imm8 (0x80 /2): // - The r/m field with mod specifies the destination operand (register or memory) // - The immediate value is the source operand var (_, _, _, destinationOperand) = ModRMDecoder.ReadModRM8(); // Check if we have enough bytes for the immediate value if (!Decoder.CanReadByte()) { return false; } // Read the immediate value byte imm8 = Decoder.ReadByte(); // Create the immediate operand var sourceOperand = OperandFactory.CreateImmediateOperand(imm8, 8); // Set the structured operands instruction.StructuredOperands = [ destinationOperand, sourceOperand ]; return true; } }