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Human Action Recognition Based on Locality Constrained Linear Coding and Two-dimensional Spatial-temporal Templates

机译:基于局部性的人类行动识别限制线性编码和二维空间 - 时间模板

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Human action recognition is a challenging and active research area in computer vision. In this paper, we propose a simple yet effective method, called the locality-constrained linear coding (LLC) based two-dimensional spatial-temporal templates, to learn a discriminative representation for human action recognition. Our proposed method calculates two-dimensional spatial-temporal templates from each human action sequence as the global features to describe the human action information. To describe the local detailed features better, we construct a multi-layer patches descriptor by spatial pyramid matching (SPM) method. And we encode the patches descriptor by using LLC algorithm to obtain a coding with underlying properties of better construction and local smooth sparsity for human action recognition. To evaluate the proposed method, we evaluate and compare our algorithm with some state-of-the-art methods on both Weizmann and DHA datasets. Experimental results show that our method outperforms some state-of-the-art methods.
机译:人类行动识别是计算机视觉中有挑战性和积极的研究领域。在本文中,我们提出了一种简单而有效的方法,称为地区限制线性编码(LLC)的二维空间 - 时间模板,以学习人类行动识别的鉴别性表示。我们所提出的方法从每个人类行动序列计算从每个人类行动序列的二维空间 - 时间模板作为描述人类行动信息的全局特征。要更好地描述本地详细功能,我们通过空间金字塔匹配(SPM)方法构造多层修补程序描述符。并且我们通过使用LLC算法对修补程序描述符进行编码,以获得具有更好构造和局部平滑稀疏性的底层属性的人类行动识别。为了评估所提出的方法,我们将我们的算法评估并比较Weizmann和DHA数据集的一些最先进的方法。实验结果表明,我们的方法优于一些最先进的方法。

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