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VLAD-SSTA: VLAD with Soft Spatio-Temporal Assignment for Action Recognition

机译:VLAD-SSTA:具有用于动作识别的软时空分配的VLAD

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It is important to simultaneously characterize videos with spatial and temporal information, especially for human action recognition, as spatial cue can model the human appearance while the dynamic motion need to be represented by temporal cue. The vector of locally aggregated descriptor (VLAD) whose assignment with the shortage of temporal information, can be regarded as a suboptimal solution for action recognition. In this paper, VLAD with a soft spatio-temporal assignment, named VLAD-SSTA, is proposed to further boost the performance of action recognition by employing the soft assignment with spatio-temporal characteristic. Specifically, the Spatio- Temporal Aware module is creatively devised with a series of 3D convolutions to capture the spatio-temporal characteristic. Experimental results show that the proposed approach yields state-of-the-art performance on challenging datasets.
机译:同时表征具有时空信息的视频非常重要,特别是对于人类动作识别而言,因为空间提示可以模拟人的外观,而动态运动则需要时间提示来表示。缺少时间信息的局部聚合描述符(VLAD)向量可以看作是动作识别的次优解决方案。在本文中,提出了一种具有时空软分配的VLAD,称为VLAD-SSTA,以通过利用具有时空特征的软分配来进一步提高动作识别的性能。具体来说,时空感知模块是通过一系列3D卷积创造性地设计的,以捕获时空特征。实验结果表明,所提出的方法在具有挑战性的数据集上具有最先进的性能。

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