rol, ror, rti, rtl, and rts instructions

This commit is contained in:
2023-12-30 08:42:47 -05:00
parent 0eaf1ff0d6
commit 0150d0ef7b
6 changed files with 319 additions and 0 deletions
@@ -59,6 +59,11 @@ pub mod plp;
pub mod plx;
pub mod ply;
pub mod rep;
pub mod rol;
pub mod ror;
pub mod rti;
pub mod rtl;
pub mod rts;
pub mod bit_common;
pub mod dec_common;
pub mod decoder_common;
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@@ -0,0 +1,89 @@
use crate::{cpu::{bus::Bus, registers::Registers}, utils::{alu, addressing::AddressingMode}};
use crate::cpu::cycles;
use super::{CPUInstruction, Decode, read_8bit_from_address, read_16bit_from_address, write_8bit_to_address, write_16bit_to_address};
use super::decoder_common;
static INSTR_NAME: &'static str = "ROL";
pub struct ROL8 {
addressing_mode: AddressingMode,
}
impl CPUInstruction for ROL8 {
fn execute(&self, registers: &mut Registers, bus: &mut Bus) {
let target = read_8bit_from_address(registers, bus, self.addressing_mode);
let (result, affected_flags) = alu::rol(target, registers.get_carry_flag());
write_8bit_to_address(registers, bus, self.addressing_mode, result);
registers.set_flags(&affected_flags);
let (bytes, cycles) = cycles::increment_cycles_shift(registers, self.addressing_mode);
registers.increment_pc(bytes); registers.cycles += cycles;
}
}
impl Decode for ROL8 {
fn mnemonic(&self, registers: &Registers, bus: &Bus, opcode: u8) -> String {
decoder_common::mnemonic_arithmetic(false, opcode, INSTR_NAME, self.addressing_mode, registers, bus)
}
}
pub struct ROL16 {
addressing_mode: AddressingMode,
}
impl CPUInstruction for ROL16 {
fn execute(&self, registers: &mut Registers, bus: &mut Bus) {
let target = read_16bit_from_address(registers, bus, self.addressing_mode);
let (result, affected_flags) = alu::rol(target, registers.get_carry_flag());
write_16bit_to_address(registers, bus, self.addressing_mode, result);
registers.set_flags(&affected_flags);
let (bytes, cycles) = cycles::increment_cycles_shift(registers, self.addressing_mode);
registers.increment_pc(bytes); registers.cycles += cycles;
}
}
impl Decode for ROL16 {
fn mnemonic(&self, registers: &Registers, bus: &Bus, opcode: u8) -> String {
decoder_common::mnemonic_arithmetic(true, opcode, INSTR_NAME, self.addressing_mode, registers, bus)
}
}
#[cfg(test)]
mod cpu_instructions_tests {
use super::*;
#[test]
fn test_8bit() {
let mut registers = Registers::new();
let mut bus = Bus::new();
registers.emulation_mode = false;
registers.set_16bit_mode(false);
registers.a = 0b0100_0000;
registers.pc = 0x0000;
let instruction = ROL8{addressing_mode: AddressingMode::Accumulator};
instruction.execute(&mut registers, &mut bus);
assert_eq!(registers.get_negative_flag(), true);
assert_eq!(registers.get_zero_flag(), false);
assert_eq!(registers.a, 0b1000_0000);
assert_eq!(registers.pc, 0x0001);
assert_eq!(registers.cycles, 2);
}
#[test]
fn test_and_16bit() {
let mut registers = Registers::new();
let mut bus = Bus::new();
registers.emulation_mode = false;
registers.set_16bit_mode(true);
registers.a = 0b01000000_00000000;
registers.pc = 0x0000;
let instruction = ROL16{addressing_mode: AddressingMode::Accumulator};
instruction.execute(&mut registers, &mut bus);
assert_eq!(registers.get_negative_flag(), true);
assert_eq!(registers.get_zero_flag(), false);
assert_eq!(registers.a, 0b10000000_00000000);
assert_eq!(registers.pc, 0x0001);
assert_eq!(registers.cycles, 4);
}
}
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use crate::{cpu::{bus::Bus, registers::Registers}, utils::{alu, addressing::AddressingMode}};
use crate::cpu::cycles;
use super::{CPUInstruction, Decode, read_8bit_from_address, read_16bit_from_address, write_8bit_to_address, write_16bit_to_address};
use super::decoder_common;
static INSTR_NAME: &'static str = "ROR";
pub struct ROR8 {
addressing_mode: AddressingMode,
}
impl CPUInstruction for ROR8 {
fn execute(&self, registers: &mut Registers, bus: &mut Bus) {
let target = read_8bit_from_address(registers, bus, self.addressing_mode);
let (result, affected_flags) = alu::ror(target, registers.get_carry_flag());
write_8bit_to_address(registers, bus, self.addressing_mode, result);
registers.set_flags(&affected_flags);
let (bytes, cycles) = cycles::increment_cycles_shift(registers, self.addressing_mode);
registers.increment_pc(bytes); registers.cycles += cycles;
}
}
impl Decode for ROR8 {
fn mnemonic(&self, registers: &Registers, bus: &Bus, opcode: u8) -> String {
decoder_common::mnemonic_arithmetic(false, opcode, INSTR_NAME, self.addressing_mode, registers, bus)
}
}
pub struct ROR16 {
addressing_mode: AddressingMode,
}
impl CPUInstruction for ROR16 {
fn execute(&self, registers: &mut Registers, bus: &mut Bus) {
let target = read_16bit_from_address(registers, bus, self.addressing_mode);
let (result, affected_flags) = alu::ror(target, registers.get_carry_flag());
write_16bit_to_address(registers, bus, self.addressing_mode, result);
registers.set_flags(&affected_flags);
let (bytes, cycles) = cycles::increment_cycles_shift(registers, self.addressing_mode);
registers.increment_pc(bytes); registers.cycles += cycles;
}
}
impl Decode for ROR16 {
fn mnemonic(&self, registers: &Registers, bus: &Bus, opcode: u8) -> String {
decoder_common::mnemonic_arithmetic(true, opcode, INSTR_NAME, self.addressing_mode, registers, bus)
}
}
#[cfg(test)]
mod cpu_instructions_tests {
use super::*;
#[test]
fn test_8bit() {
let mut registers = Registers::new();
let mut bus = Bus::new();
registers.emulation_mode = false;
registers.set_16bit_mode(false);
registers.set_carry_flag(true);
registers.a = 0x00;
registers.pc = 0x0000;
let instruction = ROR8{addressing_mode: AddressingMode::Accumulator};
instruction.execute(&mut registers, &mut bus);
assert_eq!(registers.get_carry_flag(), false);
assert_eq!(registers.get_zero_flag(), false);
assert_eq!(registers.a, 0b1000_0000);
assert_eq!(registers.pc, 0x0001);
assert_eq!(registers.cycles, 2);
}
#[test]
fn test_and_16bit() {
let mut registers = Registers::new();
let mut bus = Bus::new();
registers.emulation_mode = false;
registers.set_16bit_mode(true);
registers.set_carry_flag(true);
registers.a = 0b00000000_00000000;
registers.pc = 0x0000;
let instruction = ROR16{addressing_mode: AddressingMode::Accumulator};
instruction.execute(&mut registers, &mut bus);
assert_eq!(registers.get_negative_flag(), true);
assert_eq!(registers.get_zero_flag(), false);
assert_eq!(registers.a, 0b10000000_00000000);
assert_eq!(registers.pc, 0x0001);
assert_eq!(registers.cycles, 4);
}
}
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use crate::cpu::{bus::Bus, registers::Registers};
use crate::cpu::cycles;
use super::{CPUInstruction, Decode, pull_common};
use super::decoder_common;
static INSTR_NAME: &'static str = "RTI";
pub struct RTI {}
impl CPUInstruction for RTI {
fn execute(&self, registers: &mut Registers, bus: &mut Bus) {
registers.p = pull_common::do_pull(registers, bus, 1)[0];
let pc_bytes = pull_common::do_pull(registers, bus, 2);
registers.pc = (pc_bytes[0] as u16) | ((pc_bytes[1] as u16) << 8);
if !registers.emulation_mode {
registers.pbr = pull_common::do_pull(registers, bus, 1)[0];
}
let (bytes, cycles) = cycles::increment_cycles_return_interrupt(registers.emulation_mode);
registers.increment_pc(bytes); registers.cycles += cycles;
}
}
impl Decode for RTI {
fn mnemonic(&self, _registers: &Registers, _bus: &Bus, opcode: u8) -> String {
decoder_common::mnemonic_single_byte_instr(opcode, INSTR_NAME)
}
}
#[cfg(test)]
mod cpu_instructions_tests {
use super::*;
#[test]
fn test() {
}
}
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use crate::cpu::{bus::Bus, registers::Registers};
use crate::cpu::cycles;
use super::{CPUInstruction, Decode, pull_common};
use super::decoder_common;
static INSTR_NAME: &'static str = "RTL";
pub struct RTL {}
impl CPUInstruction for RTL {
fn execute(&self, registers: &mut Registers, bus: &mut Bus) {
let bytes = pull_common::do_pull(registers, bus, 3);
// Low byte of PC is pulled first, then high byte and then PBR
registers.pc = (bytes[0] as u16) | ((bytes[1] as u16) << 8);
registers.pbr = bytes[2];
let (bytes, cycles) = cycles::increment_cycles_return_subroutine();
registers.increment_pc(bytes); registers.cycles += cycles;
}
}
impl Decode for RTL {
fn mnemonic(&self, _registers: &Registers, _bus: &Bus, opcode: u8) -> String {
decoder_common::mnemonic_single_byte_instr(opcode, INSTR_NAME)
}
}
#[cfg(test)]
mod cpu_instructions_tests {
use super::*;
#[test]
fn test() {
let mut registers = Registers::new();
let mut bus = Bus::new();
registers.pbr = 0x00;
registers.pc = 0x0000;
registers.sp = 0x1F9;
bus.write(0x1FC, 0x12);
bus.write(0x1FB, 0x34);
bus.write(0x1FA, 0x56);
let instruction = RTL{};
instruction.execute(&mut registers, &mut bus);
assert_eq!(registers.pbr, 0x12);
assert_eq!(registers.pc, 0x3456);
assert_eq!(registers.cycles, 6);
}
}
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use crate::cpu::{bus::Bus, registers::Registers};
use crate::cpu::cycles;
use super::{CPUInstruction, Decode, pull_common};
use super::decoder_common;
static INSTR_NAME: &'static str = "RTS";
pub struct RTS {}
impl CPUInstruction for RTS {
fn execute(&self, registers: &mut Registers, bus: &mut Bus) {
let bytes = pull_common::do_pull(registers, bus, 2);
// Low byte of PC is pulled first, then high byte
registers.pc = (bytes[0] as u16) | ((bytes[1] as u16) << 8);
let (bytes, cycles) = cycles::increment_cycles_return_subroutine();
registers.increment_pc(bytes); registers.cycles += cycles;
}
}
impl Decode for RTS {
fn mnemonic(&self, _registers: &Registers, _bus: &Bus, opcode: u8) -> String {
decoder_common::mnemonic_single_byte_instr(opcode, INSTR_NAME)
}
}
#[cfg(test)]
mod cpu_instructions_tests {
use super::*;
#[test]
fn test() {
let mut registers = Registers::new();
let mut bus = Bus::new();
registers.pbr = 0x00;
registers.pc = 0x0000;
registers.sp = 0x1FA;
bus.write(0x1FC, 0x12);
bus.write(0x1FB, 0x34);
let instruction = RTS{};
instruction.execute(&mut registers, &mut bus);
assert_eq!(registers.pbr, 0x00);
assert_eq!(registers.pc, 0x1234);
assert_eq!(registers.cycles, 6);
}
}