2018-11-26 18:15:52 +01:00
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// OpenSTA, Static Timing Analyzer
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2020-03-07 03:50:37 +01:00
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// Copyright (c) 2020, Parallax Software, Inc.
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2018-11-26 18:15:52 +01:00
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//
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// This program is free software: you can redistribute it and/or modify
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// it under the terms of the GNU General Public License as published by
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// the Free Software Foundation, either version 3 of the License, or
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// (at your option) any later version.
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//
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// This program is distributed in the hope that it will be useful,
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// but WITHOUT ANY WARRANTY; without even the implied warranty of
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// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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// GNU General Public License for more details.
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//
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// You should have received a copy of the GNU General Public License
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// along with this program. If not, see <https://www.gnu.org/licenses/>.
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2019-02-16 21:07:59 +01:00
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#include "StaConfig.hh"
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2018-11-26 18:15:52 +01:00
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#include <cmath> // sqrt
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#include "Machine.hh"
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2018-12-05 23:18:41 +01:00
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#include "Error.hh"
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2018-11-26 18:15:52 +01:00
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#include "StringUtil.hh"
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#include "Fuzzy.hh"
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#include "Units.hh"
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#include "StaState.hh"
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#include "Delay.hh"
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2018-12-05 23:18:41 +01:00
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// SSTA compilation.
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2019-03-22 00:19:16 +01:00
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#if (SSTA == 2)
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2018-11-26 18:15:52 +01:00
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namespace sta {
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2018-12-11 19:47:04 +01:00
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inline float
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square(float x)
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{
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return x * x;
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}
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2018-11-26 18:15:52 +01:00
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static Delay delay_init_values[MinMax::index_count];
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void
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initDelayConstants()
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{
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delay_init_values[MinMax::minIndex()] = MinMax::min()->initValue();
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delay_init_values[MinMax::maxIndex()] = MinMax::max()->initValue();
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}
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const Delay &
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delayInitValue(const MinMax *min_max)
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{
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return delay_init_values[min_max->index()];
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}
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Delay::Delay() :
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mean_(0.0),
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2018-12-11 19:47:04 +01:00
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sigma2_{0.0, 0.0}
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2018-11-26 18:15:52 +01:00
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{
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}
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Delay::Delay(float mean) :
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mean_(mean),
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2018-12-11 19:47:04 +01:00
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sigma2_{0.0, 0.0}
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2018-11-26 18:15:52 +01:00
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{
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}
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Delay::Delay(float mean,
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2018-12-11 19:47:04 +01:00
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float sigma2_early,
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float sigma2_late) :
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2018-11-26 18:15:52 +01:00
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mean_(mean),
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2018-12-11 19:47:04 +01:00
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sigma2_{sigma2_early, sigma2_late}
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2018-11-26 18:15:52 +01:00
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{
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}
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float
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Delay::sigma(const EarlyLate *early_late) const
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{
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2018-12-11 19:47:04 +01:00
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float sigma = sigma2_[early_late->index()];
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if (sigma < 0.0)
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// Sigma is negative for crpr to offset sigmas in the common
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// clock path.
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return -sqrt(-sigma);
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else
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return sqrt(sigma);
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}
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float
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Delay::sigma2(const EarlyLate *early_late) const
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{
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return sigma2_[early_late->index()];
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}
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float
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Delay::sigma2Early() const
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{
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return sigma2_[early_index];
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}
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float
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Delay::sigma2Late() const
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{
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return sigma2_[late_index];
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2018-11-26 18:15:52 +01:00
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}
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void
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Delay::operator=(const Delay &delay)
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{
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mean_ = delay.mean_;
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2018-12-11 19:47:04 +01:00
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sigma2_[early_index] = delay.sigma2_[early_index];
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sigma2_[late_index] = delay.sigma2_[late_index];
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2018-11-26 18:15:52 +01:00
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}
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void
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Delay::operator=(float delay)
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{
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mean_ = delay;
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2018-12-11 19:47:04 +01:00
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sigma2_[early_index] = 0.0;
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sigma2_[late_index] = 0.0;
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2018-11-26 18:15:52 +01:00
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}
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void
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Delay::operator+=(const Delay &delay)
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{
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mean_ += delay.mean_;
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2018-12-11 19:47:04 +01:00
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sigma2_[early_index] += delay.sigma2_[early_index];
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sigma2_[late_index] += delay.sigma2_[late_index];
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2018-11-26 18:15:52 +01:00
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}
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void
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Delay::operator+=(float delay)
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{
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mean_ += delay;
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}
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Delay
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Delay::operator+(const Delay &delay) const
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{
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return Delay(mean_ + delay.mean_,
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2018-12-11 19:47:04 +01:00
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sigma2_[early_index] + delay.sigma2_[early_index],
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sigma2_[late_index] + delay.sigma2_[late_index]);
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2018-11-26 18:15:52 +01:00
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}
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Delay
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Delay::operator+(float delay) const
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{
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2018-12-11 19:47:04 +01:00
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return Delay(mean_ + delay, sigma2_[early_index], sigma2_[late_index]);
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2018-11-26 18:15:52 +01:00
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}
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Delay
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Delay::operator-(const Delay &delay) const
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{
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return Delay(mean_ - delay.mean_,
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2019-12-24 18:01:55 +01:00
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sigma2_[early_index] + delay.sigma2_[late_index],
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sigma2_[late_index] + delay.sigma2_[early_index]);
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2018-11-26 18:15:52 +01:00
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}
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Delay
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Delay::operator-(float delay) const
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{
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2018-12-11 19:47:04 +01:00
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return Delay(mean_ - delay, sigma2_[early_index], sigma2_[late_index]);
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2018-11-26 18:15:52 +01:00
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}
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Delay
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Delay::operator-() const
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{
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2019-12-24 18:01:55 +01:00
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return Delay(-mean_, sigma2_[late_index], sigma2_[early_index]);
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2018-11-26 18:15:52 +01:00
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}
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void
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Delay::operator-=(float delay)
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{
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2019-01-27 08:03:01 +01:00
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mean_ -= delay;
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}
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void
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Delay::operator-=(const Delay &delay)
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{
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mean_ -= delay.mean_;
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2019-04-29 17:39:05 +02:00
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sigma2_[early_index] += delay.sigma2_[early_index];
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sigma2_[late_index] += delay.sigma2_[late_index];
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2018-11-26 18:15:52 +01:00
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}
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bool
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Delay::operator==(const Delay &delay) const
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{
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return mean_ == delay.mean_
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2019-12-24 18:01:55 +01:00
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&& sigma2_[early_index] == delay.sigma2_[late_index]
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&& sigma2_[late_index] == delay.sigma2_[early_index];
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2018-11-26 18:15:52 +01:00
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}
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bool
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Delay::operator>(const Delay &delay) const
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{
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return mean_ > delay.mean_;
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}
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bool
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Delay::operator>=(const Delay &delay) const
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{
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return mean_ >= delay.mean_;
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}
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bool
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Delay::operator<(const Delay &delay) const
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{
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return mean_ < delay.mean_;
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}
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bool
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Delay::operator<=(const Delay &delay) const
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{
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return mean_ <= delay.mean_;
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}
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2018-12-11 19:47:04 +01:00
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////////////////////////////////////////////////////////////////
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Delay
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makeDelay(float delay,
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float sigma_early,
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float sigma_late)
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{
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return Delay(delay, square(sigma_early), square(sigma_late));
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}
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Delay
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makeDelay2(float delay,
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float sigma2_early,
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float sigma2_late)
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{
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return Delay(delay, sigma2_early, sigma2_late);
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}
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2018-11-26 18:15:52 +01:00
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bool
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delayIsInitValue(const Delay &delay,
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const MinMax *min_max)
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{
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return fuzzyEqual(delay.mean(), min_max->initValue())
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2018-12-11 19:47:04 +01:00
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&& delay.sigma2Early() == 0.0
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&& delay.sigma2Late() == 0.0;
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2018-11-26 18:15:52 +01:00
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}
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bool
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2019-03-13 01:25:53 +01:00
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fuzzyZero(const Delay &delay)
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2018-11-26 18:15:52 +01:00
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{
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return fuzzyZero(delay.mean())
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2018-12-11 19:47:04 +01:00
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&& fuzzyZero(delay.sigma2Early())
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&& fuzzyZero(delay.sigma2Late());
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2018-11-26 18:15:52 +01:00
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}
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bool
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2019-03-13 01:25:53 +01:00
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fuzzyEqual(const Delay &delay1,
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const Delay &delay2)
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2018-11-26 18:15:52 +01:00
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{
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return fuzzyEqual(delay1.mean(), delay2.mean())
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2018-12-11 19:47:04 +01:00
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&& fuzzyEqual(delay1.sigma2Early(), delay2.sigma2Early())
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&& fuzzyEqual(delay1.sigma2Late(), delay2.sigma2Late());
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2018-11-26 18:15:52 +01:00
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}
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bool
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2019-03-13 01:25:53 +01:00
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fuzzyLess(const Delay &delay1,
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const Delay &delay2)
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2018-11-26 18:15:52 +01:00
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{
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return fuzzyLess(delay1.mean(), delay2.mean());
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}
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bool
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2019-03-13 01:25:53 +01:00
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fuzzyLess(const Delay &delay1,
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float delay2)
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2018-11-26 18:15:52 +01:00
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{
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return fuzzyLess(delay1.mean(), delay2);
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}
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bool
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2019-03-13 01:25:53 +01:00
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fuzzyLessEqual(const Delay &delay1,
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const Delay &delay2)
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2018-11-26 18:15:52 +01:00
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{
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return fuzzyLessEqual(delay1.mean(), delay2.mean());
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}
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bool
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2019-03-13 01:25:53 +01:00
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fuzzyLessEqual(const Delay &delay1,
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2018-11-26 18:15:52 +01:00
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float delay2)
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{
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return fuzzyLessEqual(delay1.mean(), delay2);
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}
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bool
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2019-03-13 01:25:53 +01:00
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fuzzyLessEqual(const Delay &delay1,
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const Delay &delay2,
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const MinMax *min_max)
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2018-11-26 18:15:52 +01:00
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{
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if (min_max == MinMax::max())
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return fuzzyLessEqual(delay1.mean(), delay2.mean());
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else
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return fuzzyGreaterEqual(delay1.mean(), delay2.mean());
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}
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bool
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2019-03-13 01:25:53 +01:00
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fuzzyGreater(const Delay &delay1,
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const Delay &delay2)
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2018-11-26 18:15:52 +01:00
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{
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return fuzzyGreater(delay1.mean(), delay2.mean());
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}
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bool
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2019-03-13 01:25:53 +01:00
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fuzzyGreater(const Delay &delay1,
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float delay2)
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2018-11-26 18:15:52 +01:00
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{
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return fuzzyGreater(delay1.mean(), delay2);
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}
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bool
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2019-03-13 01:25:53 +01:00
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fuzzyGreaterEqual(const Delay &delay1,
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const Delay &delay2)
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2018-11-26 18:15:52 +01:00
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{
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return fuzzyGreaterEqual(delay1.mean(), delay2.mean());
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}
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bool
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2019-03-13 01:25:53 +01:00
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fuzzyGreaterEqual(const Delay &delay1,
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float delay2)
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2018-11-26 18:15:52 +01:00
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{
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return fuzzyGreaterEqual(delay1.mean(), delay2);
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}
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bool
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2019-03-13 01:25:53 +01:00
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fuzzyGreater(const Delay &delay1,
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const Delay &delay2,
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const MinMax *min_max)
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2018-11-26 18:15:52 +01:00
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{
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if (min_max == MinMax::max())
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return fuzzyGreater(delay1.mean(), delay2.mean());
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else
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return fuzzyLess(delay1.mean(), delay2.mean());
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}
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bool
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2019-03-13 01:25:53 +01:00
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fuzzyGreaterEqual(const Delay &delay1,
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const Delay &delay2,
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const MinMax *min_max)
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2018-11-26 18:15:52 +01:00
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{
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if (min_max == MinMax::max())
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return fuzzyGreaterEqual(delay1.mean(), delay2.mean());
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else
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return fuzzyLessEqual(delay1.mean(), delay2.mean());
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}
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bool
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2019-03-13 01:25:53 +01:00
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fuzzyLess(const Delay &delay1,
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const Delay &delay2,
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const MinMax *min_max)
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2018-11-26 18:15:52 +01:00
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{
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if (min_max == MinMax::max())
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return fuzzyLess(delay1.mean(), delay2.mean());
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else
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return fuzzyGreater(delay1.mean(), delay2.mean());
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}
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Delay
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operator+(float delay1,
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const Delay &delay2)
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{
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return Delay(delay1 + delay2.mean(),
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2018-12-11 19:47:04 +01:00
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delay2.sigma2Early(),
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delay2.sigma2Late());
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2018-11-26 18:15:52 +01:00
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}
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Delay
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operator/(float delay1,
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const Delay &delay2)
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{
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return Delay(delay1 / delay2.mean(),
|
2018-12-11 19:47:04 +01:00
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delay2.sigma2Early(),
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delay2.sigma2Late());
|
2018-11-26 18:15:52 +01:00
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}
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Delay
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operator*(const Delay &delay1,
|
2019-04-29 17:39:05 +02:00
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float delay2)
|
2018-11-26 18:15:52 +01:00
|
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{
|
2019-04-29 17:39:05 +02:00
|
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return Delay(delay1.mean() * delay2,
|
2019-12-21 02:42:06 +01:00
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delay1.sigma2Early() * delay2 * delay2,
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delay1.sigma2Late() * delay2 * delay2);
|
2018-11-26 18:15:52 +01:00
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}
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float
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delayRatio(const Delay &delay1,
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const Delay &delay2)
|
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|
{
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return delay1.mean() / delay2.mean();
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}
|
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|
2018-12-05 23:18:41 +01:00
|
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float
|
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|
delayAsFloat(const Delay &delay,
|
2019-03-13 01:25:53 +01:00
|
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const EarlyLate *early_late,
|
2019-06-01 17:07:38 +02:00
|
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|
const StaState *sta)
|
2018-12-05 23:18:41 +01:00
|
|
|
{
|
2019-06-01 17:07:38 +02:00
|
|
|
if (sta->pocvEnabled()) {
|
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|
|
|
if (early_late == EarlyLate::early())
|
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|
return delay.mean() - delay.sigma(early_late) * sta->sigmaFactor();
|
|
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|
else if (early_late == EarlyLate::late())
|
|
|
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|
return delay.mean() + delay.sigma(early_late) * sta->sigmaFactor();
|
|
|
|
|
else
|
|
|
|
|
internalError("unknown early/late value.");
|
|
|
|
|
}
|
2018-12-05 23:18:41 +01:00
|
|
|
else
|
2019-06-01 17:07:38 +02:00
|
|
|
return delay.mean();
|
2018-12-05 23:18:41 +01:00
|
|
|
}
|
|
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|
|
|
2018-12-11 19:47:04 +01:00
|
|
|
float
|
|
|
|
|
delaySigma2(const Delay &delay,
|
|
|
|
|
const EarlyLate *early_late)
|
|
|
|
|
{
|
|
|
|
|
return delay.sigma2(early_late);
|
|
|
|
|
}
|
|
|
|
|
|
2019-03-04 02:50:56 +01:00
|
|
|
const char *
|
|
|
|
|
delayAsString(const Delay &delay,
|
|
|
|
|
const StaState *sta)
|
|
|
|
|
{
|
|
|
|
|
return delayAsString(delay, sta, sta->units()->timeUnit()->digits());
|
|
|
|
|
}
|
|
|
|
|
|
2018-11-26 18:15:52 +01:00
|
|
|
const char *
|
|
|
|
|
delayAsString(const Delay &delay,
|
2019-01-27 08:03:01 +01:00
|
|
|
const StaState *sta,
|
2018-11-26 18:15:52 +01:00
|
|
|
int digits)
|
|
|
|
|
{
|
2019-01-27 08:03:01 +01:00
|
|
|
const Unit *unit = sta->units()->timeUnit();
|
|
|
|
|
if (sta->pocvEnabled()) {
|
|
|
|
|
float sigma_early = delay.sigma(EarlyLate::early());
|
|
|
|
|
float sigma_late = delay.sigma(EarlyLate::late());
|
2019-12-24 02:26:25 +01:00
|
|
|
return stringPrintTmp("%s[%s : %s]",
|
|
|
|
|
unit->asString(delay.mean(), digits),
|
|
|
|
|
unit->asString(sigma_early, digits),
|
|
|
|
|
unit->asString(sigma_late, digits));
|
2019-01-27 08:03:01 +01:00
|
|
|
}
|
2018-11-26 18:15:52 +01:00
|
|
|
else
|
2019-01-27 08:03:01 +01:00
|
|
|
return unit->asString(delay.mean(), digits);
|
2018-11-26 18:15:52 +01:00
|
|
|
}
|
|
|
|
|
|
|
|
|
|
const char *
|
2018-12-05 23:18:41 +01:00
|
|
|
delayAsString(const Delay &delay,
|
|
|
|
|
const EarlyLate *early_late,
|
2019-01-27 08:03:01 +01:00
|
|
|
const StaState *sta,
|
2018-12-05 23:18:41 +01:00
|
|
|
int digits)
|
2018-11-26 18:15:52 +01:00
|
|
|
{
|
2019-06-01 17:07:38 +02:00
|
|
|
float mean_sigma = delayAsFloat(delay, early_late, sta);
|
2019-01-27 08:03:01 +01:00
|
|
|
return sta->units()->timeUnit()->asString(mean_sigma, digits);
|
2018-11-26 18:15:52 +01:00
|
|
|
}
|
|
|
|
|
|
|
|
|
|
} // namespace
|
2020-02-16 01:13:16 +01:00
|
|
|
|
|
|
|
|
#endif // (SSTA == 2)
|