namespace X86Disassembler.X86.Handlers.Test; using Operands; /// /// Handler for TEST r/m8, r8 instruction (0x84) /// public class TestRegMem8Handler : InstructionHandler { /// /// Initializes a new instance of the TestRegMem8Handler class /// /// The instruction decoder that owns this handler public TestRegMem8Handler(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) { return opcode == 0x84; } /// /// Decodes a TEST r/m8, r8 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.Test; // Check if we have enough bytes for the ModR/M byte if (!Decoder.CanReadByte()) { return false; } // Read the ModR/M byte, specifying that we're dealing with 8-bit operands var (mod, reg, rm, destOperand) = ModRMDecoder.ReadModRM8(); // Note: The operand size is already set to 8-bit by the ReadModRM8 method // Create the register operand for the reg field using the 8-bit register type var regOperand = OperandFactory.CreateRegisterOperand8(reg); // Set the structured operands based on addressing mode if (mod == 3) // Direct register addressing { // Create the register operand for the r/m field using the 8-bit register type var rmOperand = OperandFactory.CreateRegisterOperand8(rm); // Set the structured operands instruction.StructuredOperands = [ rmOperand, regOperand ]; } else // Memory addressing { // Set the structured operands instruction.StructuredOperands = [ destOperand, regOperand ]; } return true; } }