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| #ifndef OPENCV_ML_INL_HPP |
| #define OPENCV_ML_INL_HPP |
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| namespace cv { namespace ml { |
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| template<class SimulatedAnnealingSolverSystem> |
| int simulatedAnnealingSolver(SimulatedAnnealingSolverSystem& solverSystem, |
| double initialTemperature, double finalTemperature, double coolingRatio, |
| size_t iterationsPerStep, |
| CV_OUT double* lastTemperature, |
| cv::RNG& rngEnergy |
| ) |
| { |
| CV_Assert(finalTemperature > 0); |
| CV_Assert(initialTemperature > finalTemperature); |
| CV_Assert(iterationsPerStep > 0); |
| CV_Assert(coolingRatio < 1.0f); |
| double Ti = initialTemperature; |
| double previousEnergy = solverSystem.energy(); |
| int exchange = 0; |
| while (Ti > finalTemperature) |
| { |
| for (size_t i = 0; i < iterationsPerStep; i++) |
| { |
| solverSystem.changeState(); |
| double newEnergy = solverSystem.energy(); |
| if (newEnergy < previousEnergy) |
| { |
| previousEnergy = newEnergy; |
| exchange++; |
| } |
| else |
| { |
| double r = rngEnergy.uniform(0.0, 1.0); |
| if (r < std::exp(-(newEnergy - previousEnergy) / Ti)) |
| { |
| previousEnergy = newEnergy; |
| exchange++; |
| } |
| else |
| { |
| solverSystem.reverseState(); |
| } |
| } |
| } |
| Ti *= coolingRatio; |
| } |
| if (lastTemperature) |
| *lastTemperature = Ti; |
| return exchange; |
| } |
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| }} |
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| #endif |
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