基于小波变换的步态识别方法及其评价,以中国科学院步态数据库为人类步态识别数据集

K. Arai, Rosa Andrie
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引用次数: 10

摘要

提出了基于小波变换的人体步态HG识别方法。利用中国科学院(CASIA)对该方法进行了评价,并与不使用小波变换的传统HG识别方法进行了比较。在此基础上,对基于模型和无模型两种预处理方法进行了尝试。二维离散小波变换(DWT)和二维提升小波变换(LWT)一级分解是该方法的特点。该方法还利用小波变换的Haar基函数进行特征提取。在CASIA数据库上的实验结果表明,与传统方法相比,该方法的正确分类性能提高了x %。
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Gait Recognition Method Based on Wavelet Transformation and its Evaluation with Chinese Academy of Sciences (CASIA) Gait Database as a Human Gait Recognition Dataset
Human Gait: HG recognition method based on wavelet transformation is proposed. Using Chinese Academy of Sciences (CASIA), the proposed method is evaluated and is compared to the conventional HG recognition method without utilizing wavelet transformation. In particular, two preprocessing methods, model based and model free methods are attempted for the proposed HG recognition. Also 2D Discrete Wavelet Transform (DWT), and 2D lifting Wavelet Transform (LWT) level 1 decomposition are features in the proposed HG recognition method. Haar base function of wavelet transformation is also used for feature extraction in the proposed method. Experimental results with CASIA database show x % improvement in terms of correct classification performance in comparison to the conventional method.
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