Image restoration using a new regularized particle filter

Hui Tian*, Yi Qin Chen, Ting Zhi Shen

*Corresponding author for this work

    Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

    1 Citation (Scopus)

    Abstract

    In this paper, a new regularized particle filter is proposed and applied in mixed noisy image restoration. The general particle filter sample from discrete approximation distribution to cause inaccurate sample for not considering measurement information. In order to reducing the sample error, the regularized continuous distribution sample which is achieved by kernel density approximation function for posterior distribution is proposed when resampling. Meanwhile combing cumulative distribution function (CDF) which can be realized easily and minimize the variance in this new regularized resampling step, thus the degradation problem can be alleviated well. The experiments show the effectiveness of the algorithm, and demonstrated the superiority when comparing with wavelet threshold shrink methods and sample importance resampling (SIR) particle filter method.

    Original languageEnglish
    Title of host publication2010 2nd International Conference on Industrial Mechatronics and Automation, ICIMA 2010
    Pages542-545
    Number of pages4
    DOIs
    Publication statusPublished - 2010
    Event2010 2nd International Conference on Industrial Mechatronics and Automation, ICIMA 2010 - Wuhan, China
    Duration: 30 May 201031 May 2010

    Publication series

    NameICIMA 2010 - 2010 2nd International Conference on Industrial Mechatronics and Automation
    Volume2

    Conference

    Conference2010 2nd International Conference on Industrial Mechatronics and Automation, ICIMA 2010
    Country/TerritoryChina
    CityWuhan
    Period30/05/1031/05/10

    Keywords

    • CDF
    • Image restoration
    • Kernel density approximation
    • Mixed noisy
    • Regularized particle filter
    • Resampling
    • SIR

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