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Spatiotemporal salient points for visual recognition of human actions

机译:时空显着点,用于视觉识别人类行为

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This paper addresses the problem of human-action recognition by introducing a sparse representation of image sequences as a collection of spatiotemporal events that are localized at points that are salient both in space and time. The spatiotemporal salient points are detected by measuring the variations in the information content of pixel neighborhoods not only in space but also in time. An appropriate distance metric between two collections of spatiotemporal salient points is introduced, which is based on the chamfer distance and an iterative linear time-warping technique that deals with time expansion or time-compression issues. A classification scheme that is based on relevance vector machines and on the proposed distance measure is proposed. Results on real image sequences from a small database depicting people performing 19 aerobic exercises are presented.
机译:本文通过引入图像序列的稀疏表示作为时空事件的集合来解决人类动作识别问题,这些事件分布在时空上显着的点上。通过不仅在空间而且在时间上测量像素邻域的信息内容的变化来检测时空显着点。介绍了两个时空凸点集合之间的适当距离度量,该度量基于倒角距离和处理时间扩展或时间压缩问题的迭代线性时间扭曲技术。提出了一种基于相关向量机和提出的距离度量的分类方案。呈现了来自小型数据库的真实图像序列的结果,该数据库描述了人们进行的19次有氧运动。

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