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Pezsma 877ede5f86 Added morse receiver app. (#2923)
* Adder morse receiver app. Works with cw and fm mode. Adaptive speed learning. Logging.
2026-01-16 09:57:45 +01:00

364 lines
11 KiB
C++

#ifndef __MORSEDECODER_HPP__
#define __MORSEDECODER_HPP__
/*
* Copyright (C) 2025 Pezsma
*
* This file is part of PortaPack.
*
* This program is free software; you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation; either version 2, or (at your option)
* any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program; see the file COPYING. If not, write to
* the Free Software Foundation, Inc., 51 Franklin Street,
* Boston, MA 02110-1301, USA.
*/
#include <cstdint>
#include <string>
#include "string_format.hpp"
namespace ui::external_app::morse_practice {
class MorseRingBuffer {
public:
MorseRingBuffer()
: head_(0), tail_(0), count_(0) {}
void push_back(const uint32_t& value) {
data_[head_] = value;
head_ = (head_ + 1) % 40;
if (count_ < 40) {
count_++;
} else {
// overwrite oldest element
tail_ = (tail_ + 1) % 40;
}
}
void pop_front() {
if (count_ > 0) {
tail_ = (tail_ + 1) % 40;
count_--;
}
}
size_t size() const { return count_; }
bool empty() const { return count_ == 0; }
const uint32_t& front() const { return data_[tail_]; }
// Access by index (0 = oldest)
uint32_t operator[](size_t idx) const {
return data_[(tail_ + idx) % 40];
}
// Convert to vector-like access for sorting etc.
void copy_to_array(uint32_t* out) const {
for (size_t i = 0; i < count_; ++i)
out[i] = (*this)[i];
}
private:
uint32_t data_[40];
size_t head_;
size_t tail_;
size_t count_;
};
class MorseDecoder {
public:
struct DecodeResult {
std::string text = "";
double confidence = 0.0;
bool isValid() const {
return !text.empty();
}
};
struct MorseEntry {
std::string code;
std::string letter;
};
MorseDecoder() {}
DecodeResult
handleInput(int32_t duration_ms) {
DecodeResult result = {"", 0.0};
if (duration_ms < 5 && duration_ms > -5) return result;
if (duration_ms > 0) {
pulse_history_.push_back(duration_ms);
double dah_prob = getDahProbability(duration_ms);
current_sequence_ += (dah_prob > 0.5) ? '-' : '.';
last_confidence_ = (dah_prob > 0.5) ? dah_prob : (1.0 - dah_prob);
last_sequence_ = current_sequence_;
} else {
uint32_t gap_duration = -duration_ms;
pulse_gaps_.push_back(gap_duration);
if (gap_duration >= getInterCharThreshold() && !current_sequence_.empty()) {
result.text = lookupMorse(current_sequence_);
result.confidence = (result.text[0] != '{') ? last_confidence_ : 0.0;
if (gap_duration >= getInterWordThreshold()) {
result.text += " ";
}
current_sequence_ = "";
}
}
updateLearning();
return result;
}
inline double getInterElementThreshold() { return time_unit_ms_ * 0.8; }
inline double getInterCharThreshold() { return time_unit_ms_ * 2.5; }
inline double getInterWordThreshold() { return time_unit_ms_ * 6.0; }
inline double getCurrentTimeUnit() { return time_unit_ms_; }
inline std::string getLastSequence() { return last_sequence_; }
private:
std::string current_sequence_ = "";
std::string last_sequence_ = "";
double time_unit_ms_ = 119.0;
double last_confidence_ = 0.0;
MorseRingBuffer pulse_history_{};
MorseRingBuffer pulse_gaps_{};
std::string lookupMorse(const std::string& seq) {
for (size_t i = 0; i < morse_table_size_; i++) {
if (seq == morse_table_[i].code)
return morse_table_[i].letter;
}
return "{" + seq + "}"; // not found
}
double getDahProbability(uint32_t duration_ms) {
double start_interp = 1.5 * time_unit_ms_;
double end_interp = 2.5 * time_unit_ms_;
if (duration_ms <= start_interp) return 0.0;
if (duration_ms >= end_interp) return 1.0;
return ((double)(duration_ms)-start_interp) / (end_interp - start_interp);
}
size_t findDecisionBoundary(uint32_t* sorted_data, size_t sorted_data_size) {
if (sorted_data_size < 4) return 0;
size_t best_split_index = 0;
uint32_t max_diff = 0;
for (size_t i = 1; i < sorted_data_size; ++i) {
uint32_t diff = sorted_data[i] - sorted_data[i - 1];
if (diff > sorted_data[i - 1] * 0.5 && diff > max_diff) {
max_diff = diff;
best_split_index = i;
}
}
return best_split_index;
}
bool calculatePulseUnit(double& unit, double& confidence) {
if (pulse_history_.size() < 10) return false;
uint32_t sorted_pulses[pulse_history_.size()];
pulse_history_.copy_to_array(sorted_pulses);
sort_uint32(sorted_pulses, pulse_history_.size());
size_t split_index = findDecisionBoundary(sorted_pulses, pulse_history_.size());
if (split_index == 0 || split_index < 3 || (pulse_history_.size() - split_index) < 2) {
return false;
}
double dit_sum = sum_uint32_range(sorted_pulses, 0, split_index);
double dah_sum = sum_uint32_range(sorted_pulses, split_index, pulse_history_.size());
double avg_dit = dit_sum / split_index;
double avg_dah = dah_sum / (pulse_history_.size() - split_index);
if (avg_dah <= avg_dit) return false;
double ratio = avg_dah / avg_dit;
if (ratio > 1.5 && ratio < 5.0) {
unit = avg_dit;
double tmpabs = ratio - 3.0;
if (tmpabs < 0) tmpabs *= -1;
tmpabs /= 3.0;
tmpabs = 1.0 - tmpabs;
if (tmpabs < 0) tmpabs = 0;
confidence = tmpabs; // 0..1
return true;
}
return false;
}
bool calculateGapUnit(double& unit, double& confidence) {
if (pulse_gaps_.size() < 10) return false;
double threshold = getInterElementThreshold();
double valid_gaps[pulse_gaps_.size()];
size_t valid_count = 0;
for (size_t i = 0; i < pulse_gaps_.size(); i++) {
double gap = pulse_gaps_[i];
if (gap <= threshold) {
valid_gaps[valid_count++] = gap;
}
}
if (valid_count < 2) {
return false;
}
double sum = sum_double_range(valid_gaps, 0, valid_count);
size_t count_to_average = valid_count;
if (count_to_average > 0) {
unit = sum / count_to_average;
confidence = 0.8;
return true;
}
return false;
}
double sum_uint32_range(const uint32_t* data, size_t start, size_t end) {
double sum = 0.0;
for (size_t i = start; i < end; i++) {
sum += data[i];
}
return sum;
}
double sum_double_range(const double* data, size_t start, size_t end) {
double sum = 0.0;
for (size_t i = start; i < end; i++) {
sum += data[i];
}
return sum;
}
void sort_uint32(uint32_t* data, size_t size) {
if (size < 2)
return;
for (size_t i = 1; i < size; i++) {
uint32_t key = data[i];
size_t j = i;
while (j > 0 && data[j - 1] > key) {
data[j] = data[j - 1];
j--;
}
data[j] = key;
}
}
double clamp_double(double value, double min_val, double max_val) {
if (value < min_val)
return min_val;
else if (value > max_val)
return max_val;
else
return value;
}
void updateLearning() {
double pulse_unit = -1.0, pulse_confidence = 0.0;
double gap_unit = -1.0, gap_confidence = 0.0;
bool pulse_success = calculatePulseUnit(pulse_unit, pulse_confidence);
bool gap_success = calculateGapUnit(gap_unit, gap_confidence);
double new_time_unit = -1.0;
if (pulse_success && pulse_confidence > 0.5) {
new_time_unit = pulse_unit;
} else if (pulse_success && gap_success) {
gap_confidence = 0.2;
double total_confidence = pulse_confidence + gap_confidence;
new_time_unit = (pulse_unit * pulse_confidence + gap_unit * gap_confidence) / total_confidence;
} else if (gap_success) {
new_time_unit = gap_unit;
} else {
return;
}
double max_change = time_unit_ms_ * 0.25;
new_time_unit = clamp_double(new_time_unit, time_unit_ms_ - max_change, time_unit_ms_ + max_change);
double DEFAULT_TIME_UNIT = 160.0;
double BASE_LEARNING_RATE = 0.05;
double MAX_LEARNING_RATE = 0.25;
double tudeltaabs = new_time_unit - DEFAULT_TIME_UNIT;
if (tudeltaabs < 0) tudeltaabs *= -1;
double deviation_from_default = tudeltaabs / DEFAULT_TIME_UNIT;
double tpp = deviation_from_default * 2.0;
if (tpp > 1) tpp = 1;
double learning_factor = BASE_LEARNING_RATE + (MAX_LEARNING_RATE - BASE_LEARNING_RATE) * tpp;
time_unit_ms_ = (time_unit_ms_ * (1.0 - learning_factor)) + (new_time_unit * learning_factor);
}
size_t morse_table_size_ = 50;
MorseEntry morse_table_[50] = {
{".-", "A"},
{"-...", "B"},
{"-.-.", "C"},
{"-..", "D"},
{".", "E"},
{"..-.", "F"},
{"--.", "G"},
{"....", "H"},
{"..", "I"},
{".---", "J"},
{"-.-", "K"},
{".-..", "L"},
{"--", "M"},
{"-.", "N"},
{"---", "O"},
{".--.", "P"},
{"--.-", "Q"},
{".-.", "R"},
{"...", "S"},
{"-", "T"},
{"..-", "U"},
{"...-", "V"},
{".--", "W"},
{"-..-", "X"},
{"-.--", "Y"},
{"--..", "Z"},
{".----", "1"},
{"..---", "2"},
{"...--", "3"},
{"....-", "4"},
{".....", "5"},
{"-....", "6"},
{"--...", "7"},
{"---..", "8"},
{"----.", "9"},
{"-----", "0"},
{".-.-.-", "."},
{"..--..", "?"},
{"-.-.--", "!"},
{"--..--", ","},
{"-...-", "="},
{"-..-.", "/"},
{".--.-.", "@"},
{"---...", ":"},
{"-....-", "-"},
{".----.", "'"},
{".-..-.", "\""},
{"-.--.", "("},
{"-.--.-", ")"},
{".-.-.", "+"}};
};
} // namespace ui::external_app::morse_practice
#endif // __MORSEDECODER_HPP__