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79 lines
2.2 KiB
C#

namespace X86Disassembler.X86.Handlers.And;
using X86Disassembler.X86.Operands;
/// <summary>
/// Handler for AND r/m32, imm32 instruction (0x81 /4)
/// </summary>
public class AndImmToRm32Handler : InstructionHandler
{
/// <summary>
/// Initializes a new instance of the AndImmToRm32Handler class
/// </summary>
/// <param name="decoder">The instruction decoder that owns this handler</param>
public AndImmToRm32Handler(InstructionDecoder decoder)
: base(decoder)
{
}
/// <summary>
/// Checks if this handler can decode the given opcode
/// </summary>
/// <param name="opcode">The opcode to check</param>
/// <returns>True if this handler can decode the opcode</returns>
public override bool CanHandle(byte opcode)
{
if (opcode != 0x81)
return false;
// Check if the reg field of the ModR/M byte is 4 (AND)
if (!Decoder.CanReadByte())
return false;
byte modRM = Decoder.PeakByte();
byte reg = (byte) ((modRM & 0x38) >> 3);
return reg == 4; // 4 = AND
}
/// <summary>
/// Decodes an AND r/m32, imm32 instruction
/// </summary>
/// <param name="opcode">The opcode of the instruction</param>
/// <param name="instruction">The instruction object to populate</param>
/// <returns>True if the instruction was successfully decoded</returns>
public override bool Decode(byte opcode, Instruction instruction)
{
// Set the instruction type
instruction.Type = InstructionType.And;
if (!Decoder.CanReadByte())
{
return false;
}
// Read the ModR/M byte
var (mod, reg, rm, destOperand) = ModRMDecoder.ReadModRM();
// Read the immediate value
if (!Decoder.CanReadUInt())
{
return false;
}
// Read the immediate value in little-endian format
var imm = Decoder.ReadUInt32();
// Create the immediate operand
var immOperand = OperandFactory.CreateImmediateOperand(imm);
// Set the structured operands
instruction.StructuredOperands =
[
destOperand,
immOperand
];
return true;
}
}