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380 lines
16 KiB
380 lines
16 KiB
/* |
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By downloading, copying, installing or using the software you agree to this |
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license. If you do not agree to this license, do not download, install, |
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copy or use the software. |
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License Agreement |
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For Open Source Computer Vision Library |
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(3-clause BSD License) |
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Copyright (C) 2013, OpenCV Foundation, all rights reserved. |
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Third party copyrights are property of their respective owners. |
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Redistribution and use in source and binary forms, with or without modification, |
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are permitted provided that the following conditions are met: |
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* Redistributions of source code must retain the above copyright notice, |
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this list of conditions and the following disclaimer. |
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* Redistributions in binary form must reproduce the above copyright notice, |
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this list of conditions and the following disclaimer in the documentation |
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and/or other materials provided with the distribution. |
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* Neither the names of the copyright holders nor the names of the contributors |
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may be used to endorse or promote products derived from this software |
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without specific prior written permission. |
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This software is provided by the copyright holders and contributors "as is" and |
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any express or implied warranties, including, but not limited to, the implied |
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warranties of merchantability and fitness for a particular purpose are |
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disclaimed. In no event shall copyright holders or contributors be liable for |
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any direct, indirect, incidental, special, exemplary, or consequential damages |
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(including, but not limited to, procurement of substitute goods or services; |
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loss of use, data, or profits; or business interruption) however caused |
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and on any theory of liability, whether in contract, strict liability, |
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or tort (including negligence or otherwise) arising in any way out of |
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the use of this software, even if advised of the possibility of such damage. |
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*/ |
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#ifndef __OPENCV_BGSEGM_HPP__ |
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#define __OPENCV_BGSEGM_HPP__ |
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#include "opencv2/video.hpp" |
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#ifdef __cplusplus |
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/** @defgroup bgsegm Improved Background-Foreground Segmentation Methods |
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*/ |
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namespace cv |
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{ |
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namespace bgsegm |
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{ |
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//! @addtogroup bgsegm |
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//! @{ |
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/** @brief Gaussian Mixture-based Background/Foreground Segmentation Algorithm. |
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The class implements the algorithm described in @cite KB2001 . |
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*/ |
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class CV_EXPORTS_W BackgroundSubtractorMOG : public BackgroundSubtractor |
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{ |
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public: |
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CV_WRAP virtual int getHistory() const = 0; |
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CV_WRAP virtual void setHistory(int nframes) = 0; |
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CV_WRAP virtual int getNMixtures() const = 0; |
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CV_WRAP virtual void setNMixtures(int nmix) = 0; |
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CV_WRAP virtual double getBackgroundRatio() const = 0; |
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CV_WRAP virtual void setBackgroundRatio(double backgroundRatio) = 0; |
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CV_WRAP virtual double getNoiseSigma() const = 0; |
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CV_WRAP virtual void setNoiseSigma(double noiseSigma) = 0; |
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}; |
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/** @brief Creates mixture-of-gaussian background subtractor |
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@param history Length of the history. |
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@param nmixtures Number of Gaussian mixtures. |
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@param backgroundRatio Background ratio. |
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@param noiseSigma Noise strength (standard deviation of the brightness or each color channel). 0 |
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means some automatic value. |
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*/ |
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CV_EXPORTS_W Ptr<BackgroundSubtractorMOG> |
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createBackgroundSubtractorMOG(int history=200, int nmixtures=5, |
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double backgroundRatio=0.7, double noiseSigma=0); |
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/** @brief Background Subtractor module based on the algorithm given in @cite Gold2012 . |
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Takes a series of images and returns a sequence of mask (8UC1) |
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images of the same size, where 255 indicates Foreground and 0 represents Background. |
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This class implements an algorithm described in "Visual Tracking of Human Visitors under |
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Variable-Lighting Conditions for a Responsive Audio Art Installation," A. Godbehere, |
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A. Matsukawa, K. Goldberg, American Control Conference, Montreal, June 2012. |
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*/ |
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class CV_EXPORTS_W BackgroundSubtractorGMG : public BackgroundSubtractor |
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{ |
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public: |
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/** @brief Returns total number of distinct colors to maintain in histogram. |
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*/ |
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CV_WRAP virtual int getMaxFeatures() const = 0; |
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/** @brief Sets total number of distinct colors to maintain in histogram. |
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*/ |
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CV_WRAP virtual void setMaxFeatures(int maxFeatures) = 0; |
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/** @brief Returns the learning rate of the algorithm. |
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It lies between 0.0 and 1.0. It determines how quickly features are "forgotten" from |
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histograms. |
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*/ |
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CV_WRAP virtual double getDefaultLearningRate() const = 0; |
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/** @brief Sets the learning rate of the algorithm. |
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*/ |
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CV_WRAP virtual void setDefaultLearningRate(double lr) = 0; |
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/** @brief Returns the number of frames used to initialize background model. |
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*/ |
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CV_WRAP virtual int getNumFrames() const = 0; |
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/** @brief Sets the number of frames used to initialize background model. |
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*/ |
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CV_WRAP virtual void setNumFrames(int nframes) = 0; |
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/** @brief Returns the parameter used for quantization of color-space. |
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It is the number of discrete levels in each channel to be used in histograms. |
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*/ |
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CV_WRAP virtual int getQuantizationLevels() const = 0; |
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/** @brief Sets the parameter used for quantization of color-space |
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*/ |
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CV_WRAP virtual void setQuantizationLevels(int nlevels) = 0; |
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/** @brief Returns the prior probability that each individual pixel is a background pixel. |
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*/ |
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CV_WRAP virtual double getBackgroundPrior() const = 0; |
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/** @brief Sets the prior probability that each individual pixel is a background pixel. |
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*/ |
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CV_WRAP virtual void setBackgroundPrior(double bgprior) = 0; |
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/** @brief Returns the kernel radius used for morphological operations |
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*/ |
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CV_WRAP virtual int getSmoothingRadius() const = 0; |
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/** @brief Sets the kernel radius used for morphological operations |
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*/ |
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CV_WRAP virtual void setSmoothingRadius(int radius) = 0; |
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/** @brief Returns the value of decision threshold. |
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Decision value is the value above which pixel is determined to be FG. |
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*/ |
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CV_WRAP virtual double getDecisionThreshold() const = 0; |
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/** @brief Sets the value of decision threshold. |
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*/ |
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CV_WRAP virtual void setDecisionThreshold(double thresh) = 0; |
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/** @brief Returns the status of background model update |
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*/ |
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CV_WRAP virtual bool getUpdateBackgroundModel() const = 0; |
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/** @brief Sets the status of background model update |
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*/ |
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CV_WRAP virtual void setUpdateBackgroundModel(bool update) = 0; |
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/** @brief Returns the minimum value taken on by pixels in image sequence. Usually 0. |
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*/ |
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CV_WRAP virtual double getMinVal() const = 0; |
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/** @brief Sets the minimum value taken on by pixels in image sequence. |
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*/ |
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CV_WRAP virtual void setMinVal(double val) = 0; |
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/** @brief Returns the maximum value taken on by pixels in image sequence. e.g. 1.0 or 255. |
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*/ |
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CV_WRAP virtual double getMaxVal() const = 0; |
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/** @brief Sets the maximum value taken on by pixels in image sequence. |
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*/ |
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CV_WRAP virtual void setMaxVal(double val) = 0; |
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}; |
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/** @brief Creates a GMG Background Subtractor |
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@param initializationFrames number of frames used to initialize the background models. |
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@param decisionThreshold Threshold value, above which it is marked foreground, else background. |
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*/ |
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CV_EXPORTS_W Ptr<BackgroundSubtractorGMG> createBackgroundSubtractorGMG(int initializationFrames=120, |
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double decisionThreshold=0.8); |
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/** @brief Background subtraction based on counting. |
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About as fast as MOG2 on a high end system. |
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More than twice faster than MOG2 on cheap hardware (benchmarked on Raspberry Pi3). |
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%Algorithm by Sagi Zeevi ( https://github.com/sagi-z/BackgroundSubtractorCNT ) |
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*/ |
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class CV_EXPORTS_W BackgroundSubtractorCNT : public BackgroundSubtractor |
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{ |
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public: |
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// BackgroundSubtractor interface |
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CV_WRAP virtual void apply(InputArray image, OutputArray fgmask, double learningRate=-1) CV_OVERRIDE = 0; |
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CV_WRAP virtual void getBackgroundImage(OutputArray backgroundImage) const CV_OVERRIDE = 0; |
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/** @brief Returns number of frames with same pixel color to consider stable. |
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*/ |
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CV_WRAP virtual int getMinPixelStability() const = 0; |
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/** @brief Sets the number of frames with same pixel color to consider stable. |
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*/ |
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CV_WRAP virtual void setMinPixelStability(int value) = 0; |
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/** @brief Returns maximum allowed credit for a pixel in history. |
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*/ |
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CV_WRAP virtual int getMaxPixelStability() const = 0; |
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/** @brief Sets the maximum allowed credit for a pixel in history. |
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*/ |
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CV_WRAP virtual void setMaxPixelStability(int value) = 0; |
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/** @brief Returns if we're giving a pixel credit for being stable for a long time. |
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*/ |
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CV_WRAP virtual bool getUseHistory() const = 0; |
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/** @brief Sets if we're giving a pixel credit for being stable for a long time. |
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*/ |
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CV_WRAP virtual void setUseHistory(bool value) = 0; |
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/** @brief Returns if we're parallelizing the algorithm. |
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*/ |
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CV_WRAP virtual bool getIsParallel() const = 0; |
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/** @brief Sets if we're parallelizing the algorithm. |
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*/ |
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CV_WRAP virtual void setIsParallel(bool value) = 0; |
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}; |
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/** @brief Creates a CNT Background Subtractor |
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@param minPixelStability number of frames with same pixel color to consider stable |
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@param useHistory determines if we're giving a pixel credit for being stable for a long time |
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@param maxPixelStability maximum allowed credit for a pixel in history |
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@param isParallel determines if we're parallelizing the algorithm |
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*/ |
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CV_EXPORTS_W Ptr<BackgroundSubtractorCNT> |
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createBackgroundSubtractorCNT(int minPixelStability = 15, |
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bool useHistory = true, |
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int maxPixelStability = 15*60, |
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bool isParallel = true); |
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enum LSBPCameraMotionCompensation { |
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LSBP_CAMERA_MOTION_COMPENSATION_NONE = 0, |
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LSBP_CAMERA_MOTION_COMPENSATION_LK |
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}; |
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/** @brief Implementation of the different yet better algorithm which is called GSOC, as it was implemented during GSOC and was not originated from any paper. |
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This algorithm demonstrates better performance on CDNET 2014 dataset compared to other algorithms in OpenCV. |
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*/ |
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class CV_EXPORTS_W BackgroundSubtractorGSOC : public BackgroundSubtractor |
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{ |
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public: |
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// BackgroundSubtractor interface |
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CV_WRAP virtual void apply(InputArray image, OutputArray fgmask, double learningRate=-1) CV_OVERRIDE = 0; |
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CV_WRAP virtual void getBackgroundImage(OutputArray backgroundImage) const CV_OVERRIDE = 0; |
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}; |
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/** @brief Background Subtraction using Local SVD Binary Pattern. More details about the algorithm can be found at @cite LGuo2016 |
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*/ |
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class CV_EXPORTS_W BackgroundSubtractorLSBP : public BackgroundSubtractor |
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{ |
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public: |
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// BackgroundSubtractor interface |
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CV_WRAP virtual void apply(InputArray image, OutputArray fgmask, double learningRate=-1) CV_OVERRIDE = 0; |
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CV_WRAP virtual void getBackgroundImage(OutputArray backgroundImage) const CV_OVERRIDE = 0; |
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}; |
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/** @brief This is for calculation of the LSBP descriptors. |
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*/ |
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class CV_EXPORTS_W BackgroundSubtractorLSBPDesc |
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{ |
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public: |
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static void calcLocalSVDValues(OutputArray localSVDValues, const Mat& frame); |
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static void computeFromLocalSVDValues(OutputArray desc, const Mat& localSVDValues, const Point2i* LSBPSamplePoints); |
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static void compute(OutputArray desc, const Mat& frame, const Point2i* LSBPSamplePoints); |
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}; |
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/** @brief Creates an instance of BackgroundSubtractorGSOC algorithm. |
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Implementation of the different yet better algorithm which is called GSOC, as it was implemented during GSOC and was not originated from any paper. |
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@param mc Whether to use camera motion compensation. |
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@param nSamples Number of samples to maintain at each point of the frame. |
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@param replaceRate Probability of replacing the old sample - how fast the model will update itself. |
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@param propagationRate Probability of propagating to neighbors. |
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@param hitsThreshold How many positives the sample must get before it will be considered as a possible replacement. |
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@param alpha Scale coefficient for threshold. |
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@param beta Bias coefficient for threshold. |
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@param blinkingSupressionDecay Blinking supression decay factor. |
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@param blinkingSupressionMultiplier Blinking supression multiplier. |
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@param noiseRemovalThresholdFacBG Strength of the noise removal for background points. |
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@param noiseRemovalThresholdFacFG Strength of the noise removal for foreground points. |
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*/ |
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CV_EXPORTS_W Ptr<BackgroundSubtractorGSOC> createBackgroundSubtractorGSOC(int mc = LSBP_CAMERA_MOTION_COMPENSATION_NONE, int nSamples = 20, float replaceRate = 0.003f, float propagationRate = 0.01f, int hitsThreshold = 32, float alpha = 0.01f, float beta = 0.0022f, float blinkingSupressionDecay = 0.1f, float blinkingSupressionMultiplier = 0.1f, float noiseRemovalThresholdFacBG = 0.0004f, float noiseRemovalThresholdFacFG = 0.0008f); |
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/** @brief Creates an instance of BackgroundSubtractorLSBP algorithm. |
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Background Subtraction using Local SVD Binary Pattern. More details about the algorithm can be found at @cite LGuo2016 |
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@param mc Whether to use camera motion compensation. |
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@param nSamples Number of samples to maintain at each point of the frame. |
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@param LSBPRadius LSBP descriptor radius. |
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@param Tlower Lower bound for T-values. See @cite LGuo2016 for details. |
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@param Tupper Upper bound for T-values. See @cite LGuo2016 for details. |
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@param Tinc Increase step for T-values. See @cite LGuo2016 for details. |
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@param Tdec Decrease step for T-values. See @cite LGuo2016 for details. |
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@param Rscale Scale coefficient for threshold values. |
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@param Rincdec Increase/Decrease step for threshold values. |
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@param noiseRemovalThresholdFacBG Strength of the noise removal for background points. |
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@param noiseRemovalThresholdFacFG Strength of the noise removal for foreground points. |
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@param LSBPthreshold Threshold for LSBP binary string. |
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@param minCount Minimal number of matches for sample to be considered as foreground. |
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*/ |
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CV_EXPORTS_W Ptr<BackgroundSubtractorLSBP> createBackgroundSubtractorLSBP(int mc = LSBP_CAMERA_MOTION_COMPENSATION_NONE, int nSamples = 20, int LSBPRadius = 16, float Tlower = 2.0f, float Tupper = 32.0f, float Tinc = 1.0f, float Tdec = 0.05f, float Rscale = 10.0f, float Rincdec = 0.005f, float noiseRemovalThresholdFacBG = 0.0004f, float noiseRemovalThresholdFacFG = 0.0008f, int LSBPthreshold = 8, int minCount = 2); |
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/** @brief Synthetic frame sequence generator for testing background subtraction algorithms. |
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It will generate the moving object on top of the background. |
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It will apply some distortion to the background to make the test more complex. |
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*/ |
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class CV_EXPORTS_W SyntheticSequenceGenerator : public Algorithm |
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{ |
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private: |
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const double amplitude; |
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const double wavelength; |
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const double wavespeed; |
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const double objspeed; |
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unsigned timeStep; |
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Point2d pos; |
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Point2d dir; |
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Mat background; |
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Mat object; |
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RNG rng; |
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public: |
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/** @brief Creates an instance of SyntheticSequenceGenerator. |
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@param background Background image for object. |
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@param object Object image which will move slowly over the background. |
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@param amplitude Amplitude of wave distortion applied to background. |
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@param wavelength Length of waves in distortion applied to background. |
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@param wavespeed How fast waves will move. |
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@param objspeed How fast object will fly over background. |
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*/ |
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CV_WRAP SyntheticSequenceGenerator(InputArray background, InputArray object, double amplitude, double wavelength, double wavespeed, double objspeed); |
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/** @brief Obtain the next frame in the sequence. |
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@param frame Output frame. |
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@param gtMask Output ground-truth (reference) segmentation mask object/background. |
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*/ |
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CV_WRAP void getNextFrame(OutputArray frame, OutputArray gtMask); |
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}; |
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/** @brief Creates an instance of SyntheticSequenceGenerator. |
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@param background Background image for object. |
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@param object Object image which will move slowly over the background. |
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@param amplitude Amplitude of wave distortion applied to background. |
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@param wavelength Length of waves in distortion applied to background. |
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@param wavespeed How fast waves will move. |
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@param objspeed How fast object will fly over background. |
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*/ |
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CV_EXPORTS_W Ptr<SyntheticSequenceGenerator> createSyntheticSequenceGenerator(InputArray background, InputArray object, double amplitude = 2.0, double wavelength = 20.0, double wavespeed = 0.2, double objspeed = 6.0); |
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//! @} |
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} |
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} |
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#endif |
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#endif
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