Literature DB >> 15875805

Effective gaussian mixture learning for video background subtraction.

Dar-Shyang Lee1.   

Abstract

Adaptive Gaussian mixtures have been used for modeling nonstationary temporal distributions of pixels in video surveillance applications. However, a common problem for this approach is balancing between model convergence speed and stability. This paper proposes an effective scheme to improve the convergence rate without compromising model stability. This is achieved by replacing the global, static retention factor with an adaptive learning rate calculated for each Gaussian at every frame. Significant improvements are shown on both synthetic and real video data. Incorporating this algorithm into a statistical framework for background subtraction leads to an improved segmentation performance compared to a standard method.

Mesh:

Year:  2005        PMID: 15875805     DOI: 10.1109/TPAMI.2005.102

Source DB:  PubMed          Journal:  IEEE Trans Pattern Anal Mach Intell        ISSN: 0098-5589            Impact factor:   6.226


  8 in total

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Authors:  Derek Anderson; Robert H Luke; James M Keller; Marjorie Skubic; Marilyn Rantz; Myra Aud
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6.  Metal Artifact Suppression in Dental Cone Beam Computed Tomography Images Using Image Processing Techniques.

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7.  Real-Time Water Surface Object Detection Based on Improved Faster R-CNN.

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Journal:  Sensors (Basel)       Date:  2019-08-12       Impact factor: 3.576

8.  TensorMoG: A Tensor-Driven Gaussian Mixture Model with Dynamic Scene Adaptation for Background Modelling.

Authors:  Synh Viet-Uyen Ha; Nhat Minh Chung; Hung Ngoc Phan; Cuong Tien Nguyen
Journal:  Sensors (Basel)       Date:  2020-12-06       Impact factor: 3.576

  8 in total

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