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Human recognition through walking styles by multiwavelet transform

机译:通过多小波变换来通过散步方式人力识别

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Human recognition through walking styles is among the newest of biometric methods. By using this biometric, individuals can be identified, distantly, even at low visibility. Our aim is to provide such ability for a computer system. In other words, we intend to extract appropriate features through processing video images that can reflect individuals' identity. In order to set up such a system, we have used Fourier, Wavelet, and Multi-wavelet transforms. Using images from the USF dataset version 1.7, the results obtained indicate that SA4 Multi-wavelet transforms prove more efficient in extracting suitable features than Fourier and wavelet transforms, and combined with one-versus-one Support Vector Machine, they can provide a 85.7 % recognition accuracy rate. Our proposed method shows higher accuracy and precision compared to other frequency based methods.
机译:通过步行风格的人类认可是最新的生物识别方法之一。通过使用这种生物识别,即使在低可见性时也可以识别个体。我们的目标是为计算机系统提供这种能力。换句话说,我们打算通过处理可以反映个人身份的视频图像提取适当的功能。为了设置这样的系统,我们使用了傅立叶,小波和多小波变换。使用来自USF数据集1.7版本的图像,所以得到的结果表明SA4多小波变换比傅里叶和小波变换更有效地提取合适的特征,并与一对与一个支持向量机相结合,它们可以提供85.7%识别准确率。与其他基于频率的方法相比,我们所提出的方法显示出更高的准确性和精度。

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