Improved adaptive mixture of Gaussians model for moving objects detection

2017 
The spatial information of the video sequence is introduced into the background modeling process to deal with the problems of the traditional single-pixel based mixture of Gaussians moving objects detection method. Gaussian modeling process is improved to adaptively select the number of models, learning rate and other parameters by adjacent neighborhood pixels updating, spatio-temporal smoothing and other methods. The complete algorithm processing flow and steps of the algorithm are discussed in detail. The qualitative and quantitative experimental analysis and comparison results exhibit that the proposed algorithm has superior performances compared with traditional algorithms. The improved adaptive mixture of Gaussians model provides a novel method for solving the problem of moving objects detection in complex background.
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