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A Multi-resolution Action Recognition Algorithm Using Wavelet Domain Features

机译:使用小波域特征的多分辨率动作识别算法

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This paper proposes a novel approach for human action recognition using multi-resolution feature extraction based on the two-dimensional discrete wavelet transform (2D-DWT). Action representations can be considered as image templates, which can be useful for understanding various actions or gestures as well as for recognition and analysis. An action recognition scheme is developed based on extracting features from the frames of a video sequence. The proposed feature selection algorithm offers the advantage of very low feature dimensionality and therefore lower computational burden. It is shown that the use of wavelet-domain features enhances the distinguish ability of different actions, resulting in a very high within-class compactness and between-class separability of the extracted features, while certain undesirable phenomena, such as camera movement and change in camera distance from the subject, are less severe in the frequency domain. Principal component analysis is performed to further reduce the dimensionality of the feature space. Extensive experimentations on a standard benchmark database confirm that the proposed approach offers not only computational savings but also a very recognition accuracy.
机译:本文提出了一种基于二维离散小波变换(2D-DWT)的多分辨率特征提取的人类动作识别的新方法。行动表示可以被视为图像模板,这对于了解各种操作或手势以及识别和分析非常有用。基于来自视频序列帧的提取特征来开发动作识别方案。所提出的特征选择算法提供了非常低的特征维度的优点,从而降低计算负担。结果表明,使用小波域特征来增强不同动作的区分能力,导致提取特征的课堂内容和级别间可分离性,而某些不期望的现象,例如相机运动和变化频域中的距离对象的相机距离不太严重。进行主成分分析以进一步降低特征空间的维度。标准基准数据库的广泛实验证实,该方法不仅提供计算储蓄,而且提供了非常识别的准确性。

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