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Discovering Motion Patterns for Human Action Recognition

机译:发现动作模式以进行人类动作识别

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In this paper, we propose a novel Spatiotemporal Interest Point (MC-STIP) detector based on the coherent motion pattern around each voxel in videos. Our detector defines the local peaks of optical flow as the interest points in the motion coherence volumes of videos. A concatenating histogram of 2D gradients is introduced to describe each interest point as the descriptor. Moreover, we introduce a Topic Matrix Video Representation (T-Mat) for videos. Our representation not only captures the global hidden topics but also preserves the shared discriminative information among the interest point descriptors. We conduct our experiments on three benchmark datasets to recognize human actions using Support Vector Machines with four different kernels. The experiments demonstrate the effectiveness of our new approach.
机译:在本文中,我们基于视频中每个体素周围的相干运动模式,提出了一种新颖的时空兴趣点(MC-STIP)检测器。我们的检测器将光流的局部峰值定义为视频运动相干量中的兴趣点。引入了2D梯度的级联直方图,以将每个兴趣点描述为描述符。此外,我们介绍了视频的主题矩阵视频表示(T-Mat)。我们的表示不仅捕获了全局隐藏的主题,而且还保留了兴趣点描述符之间共享的区分性信息。我们在三个基准数据集上进行实验,以使用具有四个不同内核的支持向量机来识别人类行为。实验证明了我们新方法的有效性。

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