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134 lines
3.5 KiB
C++
134 lines
3.5 KiB
C++
//
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// Typer.cpp
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// Clock Signal
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//
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// Created by Thomas Harte on 19/06/2016.
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// Copyright 2016 Thomas Harte. All rights reserved.
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//
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#include "Typer.hpp"
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using namespace Utility;
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Typer::Typer(const std::string &string, HalfCycles delay, HalfCycles frequency, CharacterMapper &character_mapper, Delegate *delegate) :
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frequency_(frequency),
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counter_(-delay),
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delegate_(delegate),
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character_mapper_(character_mapper) {
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// Retain only those characters that actually map to something.
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if(sequence_for_character(Typer::BeginString)) {
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string_ += Typer::BeginString;
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}
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if(sequence_for_character(Typer::EndString)) {
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string_ += Typer::EndString;
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}
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append(string);
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}
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void Typer::run_for(const HalfCycles duration) {
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if(string_pointer_ >= string_.size()) {
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return;
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}
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if(counter_ < 0 && counter_ + duration >= 0) {
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if(!type_next_character()) {
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delegate_->typer_reset(this);
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}
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}
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counter_ += duration;
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while(string_pointer_ < string_.size() && counter_ > frequency_) {
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counter_ -= frequency_;
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if(!type_next_character()) {
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delegate_->typer_reset(this);
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}
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}
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}
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void Typer::append(const std::string &string) {
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// Remove any characters that are already completely done;
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// otherwise things may accumulate here indefinitely.
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// Note that sequence_for_character may seek to look one backwards,
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// so keep 'the character before' if there was one.
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if(string_pointer_ > 1) {
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string_.erase(string_.begin(), string_.begin() + ssize_t(string_pointer_) - 1);
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string_pointer_ = 1;
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}
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// If the final character in the string is not Typer::EndString
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// then this machine doesn't need Begin and End, so don't worry about it.
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ssize_t insertion_position = ssize_t(string_.size());
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if(!string_.empty() && string_.back() == Typer::EndString) --insertion_position;
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string_.reserve(string_.size() + string.size());
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for(const char c : string) {
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if(sequence_for_character(c)) {
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string_.insert(string_.begin() + insertion_position, c);
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++insertion_position;
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}
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}
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}
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const uint16_t *Typer::sequence_for_character(char c) const {
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const uint16_t *const sequence = character_mapper_.sequence_for_character(c);
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if(!sequence || sequence[0] == MachineTypes::MappedKeyboardMachine::KeyNotMapped) {
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return nullptr;
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}
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return sequence;
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}
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uint16_t Typer::try_type_next_character() {
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const uint16_t *const sequence = sequence_for_character(string_[string_pointer_]);
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if(!sequence) {
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return 0;
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}
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// Advance phase.
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++phase_;
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// If this is the start of the output sequence, start with a reset all keys.
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// Then pause if either: (i) the machine requires it; or (ii) this is the same
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// character that was just typed, in which case the gap in presses will need to
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// be clear.
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if(phase_ == 1) {
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delegate_->clear_all_keys();
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if(character_mapper_.needs_pause_after_reset_all_keys() ||
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(string_pointer_ > 0 && string_[string_pointer_ - 1] == string_[string_pointer_])) {
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return 0xffff; // Arbitrarily. Anything non-zero will do.
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}
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++phase_;
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}
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// If the sequence is over, stop.
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if(sequence[phase_ - 2] == MachineTypes::MappedKeyboardMachine::KeyEndSequence) {
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return 0;
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}
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// Otherwise, type the key.
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delegate_->set_key_state(sequence[phase_ - 2], true);
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return sequence[phase_ - 2];
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}
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bool Typer::type_next_character() {
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if(string_pointer_ == string_.size()) return false;
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while(true) {
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const uint16_t key_pressed = try_type_next_character();
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if(!key_pressed) {
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phase_ = 0;
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++string_pointer_;
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if(string_pointer_ == string_.size()) return false;
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}
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if(character_mapper_.needs_pause_after_key(key_pressed)) {
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break;
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}
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}
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return true;
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}
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