2016-07-12 02:12:58 +00:00
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//
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// DigitalPhaseLockedLoop.cpp
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// Clock Signal
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//
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// Created by Thomas Harte on 11/07/2016.
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// Copyright © 2016 Thomas Harte. All rights reserved.
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//
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#include "DigitalPhaseLockedLoop.hpp"
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2016-07-13 00:23:56 +00:00
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using namespace Storage;
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2016-07-14 23:42:01 +00:00
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DigitalPhaseLockedLoop::DigitalPhaseLockedLoop(int clocks_per_bit, int tolerance, int length_of_history) :
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2016-07-13 00:23:56 +00:00
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_clocks_per_bit(clocks_per_bit),
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_tolerance(tolerance),
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_length_of_history(length_of_history),
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2016-07-14 23:42:01 +00:00
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_pulse_history(new int[length_of_history]),
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2016-07-13 00:23:56 +00:00
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_current_window_length(clocks_per_bit),
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_next_pulse_time(0),
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_window_was_filled(false),
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2016-07-14 23:42:01 +00:00
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_window_offset(0),
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_samples_collected(0) {}
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2016-07-13 00:23:56 +00:00
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2016-07-14 23:42:01 +00:00
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void DigitalPhaseLockedLoop::run_for_cycles(int number_of_cycles)
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2016-07-13 00:23:56 +00:00
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{
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// check whether this triggers any 0s
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_window_offset += number_of_cycles;
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if(_delegate)
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{
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while(_window_offset > _current_window_length)
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{
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if(!_window_was_filled) _delegate->digital_phase_locked_loop_output_bit(0);
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_window_was_filled = false;
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_window_offset -= _current_window_length;
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}
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}
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else
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{
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_window_offset %= _current_window_length;
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}
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2016-07-13 01:42:23 +00:00
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// update timing
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2016-07-13 00:23:56 +00:00
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_next_pulse_time += number_of_cycles;
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}
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void DigitalPhaseLockedLoop::add_pulse()
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{
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2016-07-14 23:42:01 +00:00
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int *const _pulse_history_array = (int *)_pulse_history.get();
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2016-07-13 00:23:56 +00:00
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2016-07-14 23:42:01 +00:00
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if(_samples_collected < _length_of_history)
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2016-07-14 11:31:23 +00:00
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{
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2016-07-14 23:42:01 +00:00
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_samples_collected++;
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}
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else
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{
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// perform a linear regression
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2016-07-14 23:47:00 +00:00
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int sum_xy = 0;
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int sum_x = 0;
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int sum_y = 0;
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int sum_x_squared = 0;
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2016-07-14 23:42:01 +00:00
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for(size_t pulse = 0; pulse < _length_of_history; pulse++)
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{
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int x = _pulse_history_array[pulse] / (int)_current_window_length;
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int y = _pulse_history_array[pulse] % (int)_current_window_length;
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2016-07-14 23:47:00 +00:00
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sum_xy += x*y;
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sum_x += x;
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sum_y += y;
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sum_x_squared += x*x;
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2016-07-14 23:42:01 +00:00
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}
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2016-07-14 23:47:00 +00:00
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int gradient = (_length_of_history*sum_xy - sum_x*sum_y) / (_length_of_history*sum_x_squared - sum_x*sum_x);
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_current_window_length += gradient / 2;
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2016-07-14 23:42:01 +00:00
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if(_current_window_length < _clocks_per_bit - _tolerance) _current_window_length = _clocks_per_bit - _tolerance;
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if(_current_window_length > _clocks_per_bit + _tolerance) _current_window_length = _clocks_per_bit + _tolerance;
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2016-07-14 11:31:23 +00:00
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}
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2016-07-13 00:23:56 +00:00
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// therefore, there was a 1 in this window
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_window_was_filled = true;
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if(_delegate) _delegate->digital_phase_locked_loop_output_bit(1);
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2016-07-14 11:31:23 +00:00
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// shift history one to the left, storing new value; act as though the outgoing pulse were exactly halfway through its
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// window for adjustment purposes
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2016-07-14 23:42:01 +00:00
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int outgoing_pulse_time = _pulse_history_array[0];//_pulse_history_array[0] + (_current_window_length >> 1);
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2016-07-13 00:23:56 +00:00
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for(size_t pulse = 1; pulse < _length_of_history; pulse++)
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{
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2016-07-14 11:32:27 +00:00
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_pulse_history_array[pulse - 1] = _pulse_history_array[pulse] - outgoing_pulse_time;
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2016-07-13 00:23:56 +00:00
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}
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_next_pulse_time -= outgoing_pulse_time;
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_pulse_history_array[_length_of_history-1] = _next_pulse_time;
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}
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