Emulator: Implement SLA/SRA/SRL opcodes
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@@ -34,9 +34,18 @@ void CPU::prefix()
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else if (opcode >= 0x18 && opcode <= 0x1f) {
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rr();
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}
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else if (opcode >= 0x20 && opcode <= 0x27) {
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sla();
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}
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else if (opcode >= 0x28 && opcode <= 0x2f) {
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sra();
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}
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else if (opcode >= 0x30 && opcode <= 0x37) {
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swap();
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}
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else if (opcode >= 0x38 && opcode <= 0x3f) {
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srl();
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}
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else if (opcode >= 0x40 && opcode <= 0x7f) {
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bit();
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}
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@@ -554,3 +563,145 @@ void CPU::rrc()
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VERIFY_NOT_REACHED();
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}
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}
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void CPU::sla()
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{
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auto shift_left_arithmatically = [this](uint32_t& register_) -> void {
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// SLA r8, flags: Z 0 0 C
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m_wait_cycles += 8;
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// Shift Left Arithmetically register r8
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// ┌─────────┐
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// C <─│7 <── 0│<─ 0
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// └─────────┘
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// r8
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// Copy bit 7 into carry flag
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m_cf = (m_a & 0x80) == 0x80;
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// Shift Left Arithmetically register r8
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register_ = (register_ << 1) & 0xff;
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// Set other flags
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m_zf = register_ == 0;
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m_nf = 0;
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m_hf = 0;
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};
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uint8_t opcode = pcRead();
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switch (opcode) {
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case 0x20: /* SLA B */ shift_left_arithmatically(m_b); break;
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case 0x21: /* SLA C */ shift_left_arithmatically(m_c); break;
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case 0x22: /* SLA D */ shift_left_arithmatically(m_d); break;
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case 0x23: /* SLA E */ shift_left_arithmatically(m_e); break;
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case 0x24: /* SLA H */ shift_left_arithmatically(m_h); break;
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case 0x25: /* SLA L */ shift_left_arithmatically(m_l); break;
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case 0x26: /* SLA (HL) */ {
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m_wait_cycles += 8; // + 8 = 16 total
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// Rotate the byte pointed to by HL right
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uint32_t data = read(hl());
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shift_left_arithmatically(data);
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write(hl(), data);
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break;
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}
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case 0x27: /* SLA A */ shift_left_arithmatically(m_a); break;
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default:
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VERIFY_NOT_REACHED();
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}
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}
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void CPU::sra()
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{
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auto shift_right_arithmatically = [this](uint32_t& register_) -> void {
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// SRL r8, flags: Z 0 0 C
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m_wait_cycles += 8;
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// Shift Right Arithmatically register r8
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// ┌─────────┐
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// ┌─│7 ──> 0│─> C
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// │ └─────────┘
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// │ ^ r8
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// └──┘
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// Copy bit 0 into carry flag
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m_cf = (m_a & 0x01) == 0x01;
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// Shift Right Arithmatically register r8
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register_ = (register_ >> 1) | (register_ & 0x80); // Note: bit 7 remains
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// Set other flags
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m_zf = register_ == 0;
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m_nf = 0;
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m_hf = 0;
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};
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uint8_t opcode = pcRead();
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switch (opcode) {
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case 0x28: /* SRA B */ shift_right_arithmatically(m_b); break;
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case 0x29: /* SRA C */ shift_right_arithmatically(m_c); break;
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case 0x2a: /* SRA D */ shift_right_arithmatically(m_d); break;
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case 0x2b: /* SRA E */ shift_right_arithmatically(m_e); break;
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case 0x2c: /* SRA H */ shift_right_arithmatically(m_h); break;
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case 0x2d: /* SRA L */ shift_right_arithmatically(m_l); break;
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case 0x2e: /* SRA (HL) */ {
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m_wait_cycles += 8; // + 8 = 16 total
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// Rotate the byte pointed to by HL right
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uint32_t data = read(hl());
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shift_right_arithmatically(data);
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write(hl(), data);
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break;
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}
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case 0x2f: /* SRA A */ shift_right_arithmatically(m_a); break;
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default:
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VERIFY_NOT_REACHED();
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}
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}
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void CPU::srl()
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{
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auto shift_right_logically = [this](uint32_t& register_) -> void {
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// SRL r8, flags: Z 0 0 C
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m_wait_cycles += 8;
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// Shift Right Locically register r8
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// ┌─────────┐
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// 0 ─>│7 ──> 0│─> C
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// └─────────┘
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// r8
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// Copy bit 0 into carry flag
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m_cf = (m_a & 0x01) == 0x01;
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// Shift Right Locically register r8
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register_ = (register_ >> 1) & 0x7f; // Note: bit 7 is set to 0
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// Set other flags
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m_zf = register_ == 0;
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m_nf = 0;
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m_hf = 0;
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};
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uint8_t opcode = pcRead();
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switch (opcode) {
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case 0x38: /* SRL B */ shift_right_logically(m_b); break;
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case 0x39: /* SRL C */ shift_right_logically(m_c); break;
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case 0x3a: /* SRL D */ shift_right_logically(m_d); break;
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case 0x3b: /* SRL E */ shift_right_logically(m_e); break;
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case 0x3c: /* SRL H */ shift_right_logically(m_h); break;
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case 0x3d: /* SRL L */ shift_right_logically(m_l); break;
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case 0x3e: /* SRL (HL) */ {
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m_wait_cycles += 8; // + 8 = 16 total
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// Rotate the byte pointed to by HL right
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uint32_t data = read(hl());
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shift_right_logically(data);
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write(hl(), data);
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break;
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}
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case 0x3f: /* SRL A */ shift_right_logically(m_a); break;
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default:
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VERIFY_NOT_REACHED();
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}
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}
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