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940 lines
26 KiB
C++
940 lines
26 KiB
C++
//
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// Electron.cpp
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// Clock Signal
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//
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// Created by Thomas Harte on 03/01/2016.
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// Copyright © 2016 Thomas Harte. All rights reserved.
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//
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#include "Electron.hpp"
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#include "TapeUEF.hpp"
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#include <algorithm>
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#include <cassert>
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using namespace Electron;
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namespace {
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static const unsigned int cycles_per_line = 128;
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static const unsigned int lines_per_frame = 625;
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static const unsigned int cycles_per_frame = lines_per_frame * cycles_per_line;
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static const unsigned int crt_cycles_multiplier = 8;
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static const unsigned int crt_cycles_per_line = crt_cycles_multiplier * cycles_per_line;
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static const unsigned int field_divider_line = 312; // i.e. the line, simultaneous with which, the first field's sync ends. So if
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// the first line with pixels in field 1 is the 20th in the frame, the first line
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// with pixels in field 2 will be 20+field_divider_line
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static const unsigned int first_graphics_line = 38;
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static const unsigned int first_graphics_cycle = 33;
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static const unsigned int last_graphics_cycle = 80 + first_graphics_cycle;
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static const unsigned int real_time_clock_interrupt_line = 156;
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static const unsigned int display_end_interrupt_line = 256;
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}
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#define graphics_line(v) ((((v) >> 7) - first_graphics_line + field_divider_line) % field_divider_line)
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#define graphics_column(v) ((((v) %127) - first_graphics_cycle) % 127)
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Machine::Machine() :
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_interrupt_control(0),
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_interrupt_status(Interrupt::PowerOnReset),
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_frameCycles(0),
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_displayOutputPosition(0),
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_audioOutputPosition(0),
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_audioOutputPositionError(0),
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_current_pixel_line(-1),
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_crt(std::unique_ptr<Outputs::CRT::CRT>(new Outputs::CRT::CRT(crt_cycles_per_line, 8, Outputs::CRT::DisplayType::PAL50, 1, 1)))
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{
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_crt->set_rgb_sampling_function(
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"vec4 rgb_sample(vec2 coordinate)"
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"{"
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"float texValue = texture(texID, coordinate).r;"
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"return vec4(step(4.0/256.0, mod(texValue, 8.0/256.0)), step(2.0/256.0, mod(texValue, 4.0/256.0)), step(1.0/256.0, mod(texValue, 2.0/256.0)), 1.0);"
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"}");
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_crt->set_output_device(Outputs::CRT::Monitor);
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// _crt->set_visible_area(Outputs::Rect(0.23108f, 0.0f, 0.8125f, 0.98f)); //1875
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memset(_key_states, 0, sizeof(_key_states));
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memset(_palette, 0xf, sizeof(_palette));
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for(int c = 0; c < 16; c++)
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memset(_roms[c], 0xff, 16384);
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_speaker.set_input_rate(125000);
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_tape.set_delegate(this);
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}
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unsigned int Machine::perform_bus_operation(CPU6502::BusOperation operation, uint16_t address, uint8_t *value)
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{
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unsigned int cycles = 1;
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if(address < 0x8000)
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{
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if(isReadOperation(operation))
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{
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*value = _ram[address];
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}
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else
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{
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// If we're still before the display will start to be painted, or the address is
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// less than both the current line address and 0x3000, (the minimum screen mode
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// base address) then there's no way this write can affect the current frame. Sp
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// no need to flush the display. Otherwise, output up until now so that any
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// write doesn't have retroactive effect on the video output.
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// if(!(
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// (_fieldCycles < first_graphics_line * cycles_per_line) ||
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// (address < _startLineAddress && address < 0x3000)
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// ))
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update_display();
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_ram[address] = *value;
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}
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// for the entire frame, RAM is accessible only on odd cycles; in modes below 4
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// it's also accessible only outside of the pixel regions
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cycles += 1 + (_frameCycles&1);
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if(_screen_mode < 4)
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{
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const int current_line = graphics_line(_frameCycles + cycles);
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const int current_column = graphics_column(_frameCycles + cycles);
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if(current_line < 256 && current_column < 80)
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cycles += (unsigned int)(80 - current_column);
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}
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}
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else
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{
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if(address >= 0xc000)
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{
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if((address & 0xff00) == 0xfe00)
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{
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switch(address&0xf)
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{
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case 0x0:
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if(isReadOperation(operation))
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{
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*value = _interrupt_status;
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_interrupt_status &= ~PowerOnReset;
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}
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else
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{
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_interrupt_control = *value;
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evaluate_interrupts();
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}
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break;
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case 0x1:
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break;
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case 0x2:
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printf("%02x to [2] mutates %04x ", *value, _startScreenAddress);
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_startScreenAddress = (_startScreenAddress & 0xfe00) | (uint16_t)(((*value) & 0xe0) << 1);
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printf("into %04x\n", _startScreenAddress);
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break;
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case 0x3:
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printf("%02x to [3] mutates %04x ", *value, _startScreenAddress);
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_startScreenAddress = (_startScreenAddress & 0x01ff) | (uint16_t)(((*value) & 0x3f) << 9);
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printf("into %04x\n", _startScreenAddress);
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break;
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case 0x4:
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if(isReadOperation(operation))
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{
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*value = _tape.get_data_register();
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_tape.clear_interrupts(Interrupt::ReceiveDataFull);
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}
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else
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{
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_tape.set_data_register(*value);
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_tape.clear_interrupts(Interrupt::TransmitDataEmpty);
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}
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break;
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case 0x5:
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if(!isReadOperation(operation))
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{
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const uint8_t interruptDisable = (*value)&0xf0;
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if( interruptDisable )
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{
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if( interruptDisable&0x10 ) _interrupt_status &= ~Interrupt::DisplayEnd;
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if( interruptDisable&0x20 ) _interrupt_status &= ~Interrupt::RealTimeClock;
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if( interruptDisable&0x40 ) _interrupt_status &= ~Interrupt::HighToneDetect;
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evaluate_interrupts();
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// TODO: NMI (?)
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}
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// else
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{
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uint8_t nextROM = (*value)&0xf;
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// if(nextROM&0x08)
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// {
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// _activeRom = (Electron::ROMSlot)(nextROM&0x0e);
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// printf("%d -> Paged %d\n", nextROM, _activeRom);
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// }
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if(((_active_rom&12) != 8) || (nextROM&8))
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{
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_active_rom = (Electron::ROMSlot)nextROM;
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}
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// else
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// {
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// printf("Ignored!");
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// }
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// printf("%d -> Paged %d\n", nextROM, _activeRom);
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}
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}
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break;
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case 0x6:
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if(!isReadOperation(operation))
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{
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update_audio();
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_speaker.set_divider(*value);
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_tape.set_counter(*value);
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}
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break;
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case 0x7:
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if(!isReadOperation(operation))
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{
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// update screen mode
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uint8_t new_screen_mode = ((*value) >> 3)&7;
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if(new_screen_mode == 7) new_screen_mode = 4;
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if(new_screen_mode != _screen_mode)
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{
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// printf("To mode %d, at %d cycles into field (%d)\n", new_screen_mode, _fieldCycles, _fieldCycles >> 7);
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update_display();
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_screen_mode = new_screen_mode;
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switch(_screen_mode)
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{
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case 0: case 1: case 2: _screenModeBaseAddress = 0x3000; break;
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case 3: _screenModeBaseAddress = 0x4000; break;
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case 4: case 5: _screenModeBaseAddress = 0x5800; break;
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case 6: _screenModeBaseAddress = 0x6000; break;
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}
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}
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// update speaker mode
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bool new_speaker_is_enabled = (*value & 6) == 2;
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if(new_speaker_is_enabled != _speaker.get_is_enabled())
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{
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update_audio();
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_speaker.set_is_enabled(new_speaker_is_enabled);
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_tape.set_is_enabled(!new_speaker_is_enabled);
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}
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_tape.set_is_running(((*value)&0x40) ? true : false);
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_tape.set_is_in_input_mode(((*value)&0x04) ? false : true);
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// TODO: caps lock LED
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}
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break;
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default:
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{
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if(!isReadOperation(operation))
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{
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update_display();
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static const int registers[4][4] = {
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{10, 8, 2, 0},
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{14, 12, 6, 4},
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{15, 13, 7, 5},
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{11, 9, 3, 1},
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};
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const int index = (address >> 1)&3;
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const uint8_t colour = ~(*value);
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if(address&1)
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{
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_palette[registers[index][0]] = (_palette[registers[index][0]]&3) | ((colour >> 1)&4);
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_palette[registers[index][1]] = (_palette[registers[index][1]]&3) | ((colour >> 0)&4);
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_palette[registers[index][2]] = (_palette[registers[index][2]]&3) | ((colour << 1)&4);
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_palette[registers[index][3]] = (_palette[registers[index][3]]&3) | ((colour << 2)&4);
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_palette[registers[index][2]] = (_palette[registers[index][2]]&5) | ((colour >> 4)&2);
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_palette[registers[index][3]] = (_palette[registers[index][3]]&5) | ((colour >> 3)&2);
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}
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else
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{
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_palette[registers[index][0]] = (_palette[registers[index][0]]&6) | ((colour >> 7)&1);
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_palette[registers[index][1]] = (_palette[registers[index][1]]&6) | ((colour >> 6)&1);
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_palette[registers[index][2]] = (_palette[registers[index][2]]&6) | ((colour >> 5)&1);
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_palette[registers[index][3]] = (_palette[registers[index][3]]&6) | ((colour >> 4)&1);
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_palette[registers[index][0]] = (_palette[registers[index][0]]&5) | ((colour >> 2)&2);
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_palette[registers[index][1]] = (_palette[registers[index][1]]&5) | ((colour >> 1)&2);
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}
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}
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}
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break;
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}
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}
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else
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{
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if(isReadOperation(operation))
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*value = _os[address & 16383];
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}
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}
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else
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{
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if(isReadOperation(operation))
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{
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switch(_active_rom)
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{
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case ROMSlotKeyboard:
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case ROMSlotKeyboard+1:
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*value = 0xf0;
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for(int address_line = 0; address_line < 14; address_line++)
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{
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if(!(address&(1 << address_line))) *value |= _key_states[address_line];
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}
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break;
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default:
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*value = _roms[_active_rom][address & 16383];
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break;
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}
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}
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}
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}
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// if(operation == CPU6502::BusOperation::ReadOpcode)
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// {
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// printf("%04x: %02x (%d)\n", address, *value, _fieldCycles);
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// }
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const unsigned int line_before_cycle = graphics_line(_frameCycles);
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const unsigned int line_after_cycle = graphics_line(_frameCycles + cycles);
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// implicit assumption here: the number of 2Mhz cycles this bus operation will take
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// is never longer than a line. On the Electron, it's a safe one.
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switch(line_before_cycle)
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{
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case real_time_clock_interrupt_line:
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if(line_after_cycle > real_time_clock_interrupt_line)
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signal_interrupt(Interrupt::RealTimeClock);
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break;
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case real_time_clock_interrupt_line+1:
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if(line_after_cycle > real_time_clock_interrupt_line+1)
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clear_interrupt(Interrupt::RealTimeClock);
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break;
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case display_end_interrupt_line:
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if(line_after_cycle > display_end_interrupt_line)
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signal_interrupt(Interrupt::DisplayEnd);
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break;
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case display_end_interrupt_line+1:
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if(line_after_cycle > display_end_interrupt_line+1)
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clear_interrupt(Interrupt::DisplayEnd);
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break;
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}
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_frameCycles += cycles;
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// deal with frame wraparound by updating the two dependent subsystems
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// as though the exact end of frame had been hit, then reset those
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// and allow the frame cycle counter to assume its real value
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if(_frameCycles >= cycles_per_frame)
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{
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unsigned int nextFrameCycles = _frameCycles - cycles_per_frame;
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_frameCycles = cycles_per_frame;
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update_display();
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update_audio();
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_displayOutputPosition = 0;
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_audioOutputPosition = 0;
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_frameCycles = nextFrameCycles;
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}
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if(!(_frameCycles&31))
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update_audio();
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_tape.run_for_cycles(cycles);
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return cycles;
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}
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void Machine::update_output()
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{
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update_display();
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update_audio();
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}
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void Machine::set_tape(std::shared_ptr<Storage::Tape> tape)
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{
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_tape.set_tape(tape);
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}
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void Machine::set_rom(ROMSlot slot, size_t length, const uint8_t *data)
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{
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uint8_t *target = nullptr;
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switch(slot)
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{
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case ROMSlotOS: target = _os; break;
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default: target = _roms[slot]; break;
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}
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memcpy(target, data, std::min((size_t)16384, length));
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}
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inline void Machine::signal_interrupt(Electron::Interrupt interrupt)
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{
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_interrupt_status |= interrupt;
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evaluate_interrupts();
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}
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inline void Machine::clear_interrupt(Electron::Interrupt interrupt)
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{
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_interrupt_status &= ~interrupt;
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evaluate_interrupts();
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}
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void Machine::tape_did_change_interrupt_status(Tape *tape)
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{
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_interrupt_status = (_interrupt_status & ~(Interrupt::TransmitDataEmpty | Interrupt::ReceiveDataFull | Interrupt::HighToneDetect)) | _tape.get_interrupt_status();
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evaluate_interrupts();
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}
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inline void Machine::evaluate_interrupts()
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{
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if(_interrupt_status & _interrupt_control)
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{
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_interrupt_status |= 1;
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}
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else
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{
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_interrupt_status &= ~1;
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}
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set_irq_line(_interrupt_status & 1);
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}
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inline void Machine::update_audio()
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{
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int difference = (int)_frameCycles - _audioOutputPosition;
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_audioOutputPosition = (int)_frameCycles;
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_speaker.run_for_cycles((_audioOutputPositionError + difference) >> 4);
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_audioOutputPositionError = (_audioOutputPositionError + difference)&15;
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}
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inline void Machine::start_pixel_line()
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{
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_current_pixel_line = (_current_pixel_line+1)&255;
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if(!_current_pixel_line)
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{
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_startLineAddress = _startScreenAddress;
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_current_character_row = 0;
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_isBlankLine = false;
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}
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else
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{
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bool mode_has_blank_lines = (_screen_mode == 6) || (_screen_mode == 3);
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_isBlankLine = (mode_has_blank_lines && ((_current_character_row > 7 && _current_character_row < 10) || (_current_pixel_line > 249)));
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if(!_isBlankLine)
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{
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_startLineAddress++;
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if(_current_character_row > 7)
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{
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_startLineAddress += ((_screen_mode < 4) ? 80 : 40) * 8 - 8;
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_current_character_row = 0;
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}
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}
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}
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_currentScreenAddress = _startLineAddress;
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_current_pixel_column = 0;
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if(!_isBlankLine)
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{
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_crt->allocate_write_area(640);
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_currentLine = _crt->get_write_target_for_buffer(0);
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}
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}
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inline void Machine::end_pixel_line()
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{
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if(!_isBlankLine) _crt->output_data(640, 1);
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_current_character_row++;
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}
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inline void Machine::output_pixels(unsigned int number_of_cycles)
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{
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if(_isBlankLine)
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{
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_crt->output_blank(number_of_cycles * crt_cycles_multiplier);
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}
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else
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{
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while(number_of_cycles--)
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{
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if(!(_current_pixel_column&1) || _screen_mode < 4)
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{
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if(_currentScreenAddress&32768)
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{
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_currentScreenAddress = (_screenModeBaseAddress + _currentScreenAddress)&32767;
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}
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_last_pixel_byte = _ram[_currentScreenAddress];
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_currentScreenAddress = _currentScreenAddress+8;
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}
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switch(_screen_mode)
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{
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case 3:
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case 0:
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{
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_currentLine[0] = _palette[(_last_pixel_byte&0x80) >> 4];
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_currentLine[1] = _palette[(_last_pixel_byte&0x40) >> 3];
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_currentLine[2] = _palette[(_last_pixel_byte&0x20) >> 2];
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_currentLine[3] = _palette[(_last_pixel_byte&0x10) >> 1];
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_currentLine[4] = _palette[(_last_pixel_byte&0x08) >> 0];
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_currentLine[5] = _palette[(_last_pixel_byte&0x04) << 1];
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_currentLine[6] = _palette[(_last_pixel_byte&0x02) << 2];
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_currentLine[7] = _palette[(_last_pixel_byte&0x01) << 3];
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}
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break;
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case 1:
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{
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_currentLine[0] =
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_currentLine[1] = _palette[((_last_pixel_byte&0x80) >> 4) | ((_last_pixel_byte&0x08) >> 2)];
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_currentLine[2] =
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_currentLine[3] = _palette[((_last_pixel_byte&0x40) >> 3) | ((_last_pixel_byte&0x04) >> 1)];
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_currentLine[4] =
|
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_currentLine[5] = _palette[((_last_pixel_byte&0x20) >> 2) | ((_last_pixel_byte&0x02) >> 0)];
|
|
_currentLine[6] =
|
|
_currentLine[7] = _palette[((_last_pixel_byte&0x10) >> 1) | ((_last_pixel_byte&0x01) << 1)];
|
|
}
|
|
break;
|
|
|
|
case 2:
|
|
{
|
|
_currentLine[0] =
|
|
_currentLine[1] =
|
|
_currentLine[2] =
|
|
_currentLine[3] = _palette[((_last_pixel_byte&0x80) >> 4) | ((_last_pixel_byte&0x20) >> 3) | ((_last_pixel_byte&0x08) >> 2) | ((_last_pixel_byte&0x02) >> 1)];
|
|
_currentLine[4] =
|
|
_currentLine[5] =
|
|
_currentLine[6] =
|
|
_currentLine[7] = _palette[((_last_pixel_byte&0x40) >> 3) | ((_last_pixel_byte&0x10) >> 2) | ((_last_pixel_byte&0x04) >> 1) | ((_last_pixel_byte&0x01) >> 0)];
|
|
}
|
|
break;
|
|
|
|
case 6:
|
|
case 4:
|
|
{
|
|
if(_current_pixel_column&1)
|
|
{
|
|
_currentLine[0] =
|
|
_currentLine[1] = _palette[(_last_pixel_byte&0x08) >> 0];
|
|
_currentLine[2] =
|
|
_currentLine[3] = _palette[(_last_pixel_byte&0x04) << 1];
|
|
_currentLine[4] =
|
|
_currentLine[5] = _palette[(_last_pixel_byte&0x02) << 2];
|
|
_currentLine[6] =
|
|
_currentLine[7] = _palette[(_last_pixel_byte&0x01) << 3];
|
|
}
|
|
else
|
|
{
|
|
_currentLine[0] =
|
|
_currentLine[1] = _palette[(_last_pixel_byte&0x80) >> 4];
|
|
_currentLine[2] =
|
|
_currentLine[3] = _palette[(_last_pixel_byte&0x40) >> 3];
|
|
_currentLine[4] =
|
|
_currentLine[5] = _palette[(_last_pixel_byte&0x20) >> 2];
|
|
_currentLine[6] =
|
|
_currentLine[7] = _palette[(_last_pixel_byte&0x10) >> 1];
|
|
}
|
|
}
|
|
break;
|
|
|
|
case 5:
|
|
{
|
|
if(_current_pixel_column&1)
|
|
{
|
|
_currentLine[0] =
|
|
_currentLine[1] =
|
|
_currentLine[2] =
|
|
_currentLine[3] = _palette[((_last_pixel_byte&0x20) >> 2) | ((_last_pixel_byte&0x02) >> 0)];
|
|
_currentLine[4] =
|
|
_currentLine[5] =
|
|
_currentLine[6] =
|
|
_currentLine[7] = _palette[((_last_pixel_byte&0x10) >> 1) | ((_last_pixel_byte&0x01) << 1)];
|
|
}
|
|
else
|
|
{
|
|
_currentLine[0] =
|
|
_currentLine[1] =
|
|
_currentLine[2] =
|
|
_currentLine[3] = _palette[((_last_pixel_byte&0x80) >> 4) | ((_last_pixel_byte&0x08) >> 2)];
|
|
_currentLine[4] =
|
|
_currentLine[5] =
|
|
_currentLine[6] =
|
|
_currentLine[7] = _palette[((_last_pixel_byte&0x40) >> 3) | ((_last_pixel_byte&0x04) >> 1)];
|
|
}
|
|
}
|
|
break;
|
|
}
|
|
|
|
_current_pixel_column++;
|
|
_currentLine += 8;
|
|
}
|
|
}
|
|
}
|
|
|
|
inline void Machine::update_display()
|
|
{
|
|
/*
|
|
|
|
Odd field: Even field:
|
|
|
|
|--S--| -S-|
|
|
|--S--| |--S--|
|
|
|-S-B-| = 3 |--S--| = 2.5
|
|
|--B--| |--B--|
|
|
|--P--| |--P--|
|
|
|--B--| = 312 |--B--| = 312.5
|
|
|-B-
|
|
|
|
*/
|
|
|
|
int final_line = _frameCycles >> 7;
|
|
while(_displayOutputPosition < _frameCycles)
|
|
{
|
|
int line = _displayOutputPosition >> 7;
|
|
|
|
// Priority one: sync.
|
|
// ===================
|
|
|
|
// full sync lines are 0, 1, field_divider_line+1 and field_divider_line+2
|
|
if(line == 0 || line == 1 || line == field_divider_line+1 || line == field_divider_line+2)
|
|
{
|
|
// wait for the line to complete before signalling
|
|
if(final_line == line) return;
|
|
_crt->output_sync(128 * crt_cycles_multiplier);
|
|
_displayOutputPosition += 128;
|
|
continue;
|
|
}
|
|
|
|
// line 2 is a left-sync line
|
|
if(line == 2)
|
|
{
|
|
// wait for the line to complete before signalling
|
|
if(final_line == line) return;
|
|
_crt->output_sync(64 * crt_cycles_multiplier);
|
|
_crt->output_blank(64 * crt_cycles_multiplier);
|
|
_displayOutputPosition += 128;
|
|
continue;
|
|
}
|
|
|
|
// line field_divider_line is a right-sync line
|
|
if(line == field_divider_line)
|
|
{
|
|
// wait for the line to complete before signalling
|
|
if(final_line == line) return;
|
|
_crt->output_blank(64 * crt_cycles_multiplier);
|
|
_crt->output_sync(64 * crt_cycles_multiplier);
|
|
_displayOutputPosition += 128;
|
|
continue;
|
|
}
|
|
|
|
// Priority two: blank lines.
|
|
// ==========================
|
|
//
|
|
// Given that it is not a sync line, this is a blank line if it is less than first_graphics_line, or greater
|
|
// than first_graphics_line+255 and less than first_graphics_line+field_divider_line, or greater than
|
|
// first_graphics_line+field_divider_line+255 (TODO: or this is Mode 3 or 6 and this should be blank)
|
|
if(
|
|
line < first_graphics_line ||
|
|
(line > first_graphics_line+255 && line < first_graphics_line+field_divider_line) ||
|
|
line > first_graphics_line+field_divider_line+255)
|
|
{
|
|
if(final_line == line) return;
|
|
_crt->output_sync(9 * crt_cycles_multiplier);
|
|
_crt->output_blank(119 * crt_cycles_multiplier);
|
|
_displayOutputPosition += 128;
|
|
continue;
|
|
}
|
|
|
|
// Final possibility: this is a pixel line.
|
|
// ========================================
|
|
|
|
// determine how far we're going from left to right
|
|
unsigned int this_cycle = _displayOutputPosition&127;
|
|
unsigned int final_cycle = _frameCycles&127;
|
|
if(final_line > line)
|
|
{
|
|
final_cycle = 128;
|
|
}
|
|
|
|
// output format is:
|
|
// 9 cycles: sync
|
|
// ... to 24 cycles: colour burst
|
|
// ... to first_graphics_cycle: blank
|
|
// ... for 80 cycles: pixels
|
|
// ... until end of line: blank
|
|
while(this_cycle < final_cycle)
|
|
{
|
|
if(this_cycle < 9)
|
|
{
|
|
if(final_cycle < 9) return;
|
|
_crt->output_sync(9 * crt_cycles_multiplier);
|
|
_displayOutputPosition += 9;
|
|
this_cycle = 9;
|
|
}
|
|
|
|
if(this_cycle < 24)
|
|
{
|
|
if(final_cycle < 24) return;
|
|
_crt->output_colour_burst((24-9) * crt_cycles_multiplier, 0, 12);
|
|
_displayOutputPosition += 24-9;
|
|
this_cycle = 24;
|
|
// TODO: phase shouldn't be zero on every line
|
|
}
|
|
|
|
if(this_cycle < first_graphics_cycle)
|
|
{
|
|
if(final_cycle < first_graphics_cycle) return;
|
|
_crt->output_blank((first_graphics_cycle - 24) * crt_cycles_multiplier);
|
|
_displayOutputPosition += first_graphics_cycle - 24;
|
|
this_cycle = first_graphics_cycle;
|
|
start_pixel_line();
|
|
}
|
|
|
|
if(this_cycle < first_graphics_cycle + 80)
|
|
{
|
|
unsigned int length_to_output = std::min(final_cycle, (first_graphics_cycle + 80)) - this_cycle;
|
|
output_pixels(length_to_output);
|
|
_displayOutputPosition += length_to_output;
|
|
this_cycle += length_to_output;
|
|
}
|
|
|
|
if(this_cycle >= first_graphics_cycle + 80)
|
|
{
|
|
if(final_cycle < 128) return;
|
|
end_pixel_line();
|
|
_crt->output_blank((128 - (first_graphics_cycle + 80)) * crt_cycles_multiplier);
|
|
_displayOutputPosition += 128 - (first_graphics_cycle + 80);
|
|
this_cycle = 128;
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
void Machine::set_key_state(Key key, bool isPressed)
|
|
{
|
|
if(key == KeyBreak)
|
|
{
|
|
set_reset_line(isPressed);
|
|
}
|
|
else
|
|
{
|
|
if(isPressed)
|
|
_key_states[key >> 4] |= key&0xf;
|
|
else
|
|
_key_states[key >> 4] &= ~(key&0xf);
|
|
}
|
|
}
|
|
|
|
/*
|
|
Speaker
|
|
*/
|
|
|
|
void Speaker::get_samples(unsigned int number_of_samples, int16_t *target)
|
|
{
|
|
if(!_is_enabled)
|
|
{
|
|
*target = 0;
|
|
}
|
|
else
|
|
{
|
|
*target = _output_level;
|
|
}
|
|
skip_samples(number_of_samples);
|
|
}
|
|
|
|
void Speaker::skip_samples(unsigned int number_of_samples)
|
|
{
|
|
while(number_of_samples--)
|
|
{
|
|
_counter ++;
|
|
if(_counter > _divider)
|
|
{
|
|
_counter = 0;
|
|
_output_level ^= 8192;
|
|
}
|
|
}
|
|
}
|
|
|
|
void Speaker::set_divider(uint8_t divider)
|
|
{
|
|
_divider = divider;
|
|
}
|
|
|
|
void Speaker::set_is_enabled(bool is_enabled)
|
|
{
|
|
_is_enabled = is_enabled;
|
|
_counter = 0;
|
|
}
|
|
|
|
/*
|
|
Tape
|
|
*/
|
|
|
|
Tape::Tape() : _is_running(false), _data_register(0), _delegate(nullptr), _output_bits_remaining(0), _last_posted_interrupt_status(0), _interrupt_status(0) {}
|
|
|
|
void Tape::set_tape(std::shared_ptr<Storage::Tape> tape)
|
|
{
|
|
_tape = tape;
|
|
get_next_tape_pulse();
|
|
}
|
|
|
|
inline void Tape::get_next_tape_pulse()
|
|
{
|
|
_time_into_pulse = 0;
|
|
_current_pulse = _tape->get_next_pulse();
|
|
if(_input_pulse_stepper == nullptr || _current_pulse.length.clock_rate != _input_pulse_stepper->get_output_rate())
|
|
{
|
|
_input_pulse_stepper = std::unique_ptr<SignalProcessing::Stepper>(new SignalProcessing::Stepper(_current_pulse.length.clock_rate, 2000000));
|
|
}
|
|
}
|
|
|
|
inline void Tape::push_tape_bit(uint16_t bit)
|
|
{
|
|
_data_register = (uint16_t)((_data_register >> 1) | (bit << 10));
|
|
if(_bits_since_start)
|
|
{
|
|
_bits_since_start--;
|
|
|
|
if(_bits_since_start == 7)
|
|
{
|
|
_interrupt_status &= ~Interrupt::ReceiveDataFull;
|
|
}
|
|
}
|
|
evaluate_interrupts();
|
|
}
|
|
|
|
inline void Tape::reset_tape_input()
|
|
{
|
|
_bits_since_start = 0;
|
|
// _interrupt_status &= ~(Interrupt::ReceiveDataFull | Interrupt::TransmitDataEmpty | Interrupt::HighToneDetect);
|
|
//
|
|
// if(_last_posted_interrupt_status != _interrupt_status)
|
|
// {
|
|
// _last_posted_interrupt_status = _interrupt_status;
|
|
// if(_delegate) _delegate->tape_did_change_interrupt_status(this);
|
|
// }
|
|
}
|
|
|
|
inline void Tape::evaluate_interrupts()
|
|
{
|
|
if(!_bits_since_start)
|
|
{
|
|
if((_data_register&0x3) == 0x1)
|
|
{
|
|
_interrupt_status |= Interrupt::ReceiveDataFull;
|
|
if(_is_in_input_mode) _bits_since_start = 9;
|
|
}
|
|
}
|
|
|
|
if(_data_register == 0x3ff)
|
|
_interrupt_status |= Interrupt::HighToneDetect;
|
|
else
|
|
_interrupt_status &= ~Interrupt::HighToneDetect;
|
|
|
|
if(_last_posted_interrupt_status != _interrupt_status)
|
|
{
|
|
_last_posted_interrupt_status = _interrupt_status;
|
|
if(_delegate) _delegate->tape_did_change_interrupt_status(this);
|
|
}
|
|
}
|
|
|
|
inline void Tape::clear_interrupts(uint8_t interrupts)
|
|
{
|
|
if(_interrupt_status & interrupts)
|
|
{
|
|
_interrupt_status &= ~interrupts;
|
|
if(_delegate) _delegate->tape_did_change_interrupt_status(this);
|
|
}
|
|
}
|
|
|
|
inline void Tape::set_is_in_input_mode(bool is_in_input_mode)
|
|
{
|
|
_is_in_input_mode = is_in_input_mode;
|
|
}
|
|
|
|
inline void Tape::set_counter(uint8_t value)
|
|
{
|
|
_output_pulse_stepper = std::unique_ptr<SignalProcessing::Stepper>(new SignalProcessing::Stepper(1200, 2000000));
|
|
}
|
|
|
|
inline void Tape::set_data_register(uint8_t value)
|
|
{
|
|
_data_register = (uint16_t)((value << 2) | 1);
|
|
printf("Loaded — %03x\n", _data_register);
|
|
_bits_since_start = _output_bits_remaining = 9;
|
|
}
|
|
|
|
inline uint8_t Tape::get_data_register()
|
|
{
|
|
return (uint8_t)(_data_register >> 2);
|
|
}
|
|
|
|
inline void Tape::run_for_cycles(unsigned int number_of_cycles)
|
|
{
|
|
if(_is_enabled)
|
|
{
|
|
if(_is_in_input_mode)
|
|
{
|
|
if(_is_running && _tape != nullptr)
|
|
{
|
|
while(number_of_cycles--)
|
|
{
|
|
_time_into_pulse += (unsigned int)_input_pulse_stepper->step();
|
|
if(_time_into_pulse == _current_pulse.length.length)
|
|
{
|
|
get_next_tape_pulse();
|
|
|
|
_crossings[0] = _crossings[1];
|
|
_crossings[1] = _crossings[2];
|
|
_crossings[2] = _crossings[3];
|
|
|
|
_crossings[3] = Tape::Unrecognised;
|
|
if(_current_pulse.type != Storage::Tape::Pulse::Zero)
|
|
{
|
|
float pulse_length = (float)_current_pulse.length.length / (float)_current_pulse.length.clock_rate;
|
|
if(pulse_length >= 0.35 / 2400.0 && pulse_length < 0.7 / 2400.0) _crossings[3] = Tape::Short;
|
|
if(pulse_length >= 0.35 / 1200.0 && pulse_length < 0.7 / 1200.0) _crossings[3] = Tape::Long;
|
|
}
|
|
|
|
if(_crossings[0] == Tape::Long && _crossings[1] == Tape::Long)
|
|
{
|
|
push_tape_bit(0);
|
|
_crossings[0] = _crossings[1] = Tape::Recognised;
|
|
}
|
|
else
|
|
{
|
|
if(_crossings[0] == Tape::Short && _crossings[1] == Tape::Short && _crossings[2] == Tape::Short && _crossings[3] == Tape::Short)
|
|
{
|
|
push_tape_bit(1);
|
|
_crossings[0] = _crossings[1] =
|
|
_crossings[2] = _crossings[3] = Tape::Recognised;
|
|
}
|
|
}
|
|
|
|
}
|
|
}
|
|
}
|
|
}
|
|
else
|
|
{
|
|
while(number_of_cycles--)
|
|
{
|
|
if(_output_pulse_stepper->step())
|
|
{
|
|
_output_bits_remaining--;
|
|
_bits_since_start--;
|
|
if(!_output_bits_remaining)
|
|
{
|
|
_output_bits_remaining = 9;
|
|
_interrupt_status |= Interrupt::TransmitDataEmpty;
|
|
}
|
|
|
|
evaluate_interrupts();
|
|
|
|
_data_register = (_data_register >> 1) | 0x200;
|
|
printf("Shifted — %03x\n", _data_register);
|
|
}
|
|
}
|
|
}
|
|
}
|
|
}
|