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    Robust model-free gait recognition by statistical dependency feature selection and Globality-Locality Preserving Projections

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    Date
    2016
    Author
    Rida, Imad
    Boubchir, Larbi
    Al-Maadeed, Noor
    Al-Maadeed, Somaya
    Bouridane, Ahmed
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    Abstract
    Gait recognition aims to identify people through the analysis of the way they walk. The challenge of model-free based gait recognition is to cope with various intra-class variations such as clothing variations and carrying conditions that adversely affect the recognition performances. This paper proposes a novel method which combines Statistical Dependency (SD) feature selection with Globality-Locality Preserving Projections (GLPP) to alleviate the impact of intra-class variations so as to improve the recognition performances. The proposed method has been evaluated using CASIA Gait database (Dataset B) under variations of clothing and carrying conditions. The experimental results demonstrate that the proposed method achieves a Correct Classification Rate (CCR) up to 86% when compared to existing state-of-The-Art methods.
    DOI/handle
    http://dx.doi.org/10.1109/TSP.2016.7760963
    http://hdl.handle.net/10576/18205
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    • Computer Science & Engineering [‎2428‎ items ]

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