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Feature selection based on a fuzzy complementary criterion: application to gait recognition using ground reaction forces

机译:基于模糊互补准则的特征选择:在地面反作用力步态识别中的应用

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摘要

An efficient wavelet-based feature selection (FS) method is proposed in this paper for subject recognition using ground reaction force measurements. Our approach relies on a local fuzzy evaluation measure with respect to patterns that reveal the adequacy of data coverage for each feature. Furthermore, FS is driven by a fuzzy complementary criterion (FuzCoC) which assures that those features are iteratively introduced, providing the maximum additional contribution with regard to the information content given by the previously selected features. On the basis of the principles of FuzCoC, we develop two novel techniques. At Stage 1, wavelet packet (WP) decomposition of gaits is accomplished to obtain a set of discriminating frequency sub-bands. A computationally simple FS method is then applied at Stage 2, providing a compact set of powerful and complementary features, from WP coefficients. The quality of our approach is validated via comparative analysis against existing methods on gait recognition.
机译:提出了一种有效的基于小波特征选择的方法,用于地面反作用力测量的目标识别。我们的方法依赖于针对模式的局部模糊评估度量,该模式可揭示每个功能的数据覆盖范围是否足够。此外,FS由模糊互补准则(FuzCoC)驱动,该准则可确保反复引入这些功能,从而对先前选择的功能所提供的信息内容提供最大的贡献。根据FuzCoC的原理,我们开发了两种新颖的技术。在阶段1,完成步态的小波包(WP)分解以获得一组区分的频率子带。然后,在阶段2应用一种计算简单的FS方法,从WP系数中获得一组功能强大且互补的特征。通过与现有步态识别方法进行比较分析,验证了我们方法的质量。

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  • 作者单位

    Department of Electrical and Computer Engineering, Division of Electronics and Computer Engineering, Aristotle University of Thessaloniki, 54124 Thessaloniki, Greece;

    Department of Electrical and Computer Engineering, Division of Electronics and Computer Engineering, Aristotle University of Thessaloniki, 54124 Thessaloniki, Greece;

    Department of Physical Education and Sports Science, University of Trikala, Trikala,Thessaly, Greece,Centre of Research and Technology - Thessaly (CERETETH), Institute of Human Performance and Rehabilitation (InHuPeR), 42100 Trikala, Thessaly, Greece;

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  • 正文语种 eng
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  • 关键词

    gait recognition; GRF signals; wavelet packet; feature selection; fuzzy sets; feature redundancy;

    机译:步态识别GRF信号;小波包特征选择;模糊集功能冗余;

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