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Two-person interaction recognition via spatial multiple instance embedding

机译:通过空间多实例嵌入进行两人互动识别

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摘要

In this work, we look into the problem of recognizing two-person interactions in videos. Our method integrates multiple visual features in a weakly supervised manner by utilizing an embedding-based multiple instance learning framework. In our proposed method, first, several visual features that capture the shape and motion of the interacting people are extracted from each detected person region in a video. Then, two-person visual descriptors are formed. Since the relative spatial locations of interacting people are likely to complement the visual descriptors, we propose to use spatial multiple instance embedding, which implicitly incorporates the distances between people into the multiple instance learning process. Experimental results on two benchmark datasets validate that using two-person visual descriptors together with spatial multiple instance learning offers an effective way for inferring the type of the interaction. (C) 2015 Elsevier Inc. All rights reserved.
机译:在这项工作中,我们研究了识别视频中两人互动的问题。我们的方法通过利用基于嵌入的多实例学习框架,以弱监督的方式集成了多个视觉功能。在我们提出的方法中,首先,从视频中每个检测到的人区域中提取捕获交互人的形状和动作的多个视觉特征。然后,形成两人视觉描述符。由于交互的人的相对空间位置可能会补充视觉描述符,因此我们建议使用空间多实例嵌入,这将人与人之间的距离隐含地纳入了多实例学习过程中。在两个基准数据集上的实验结果证明,结合使用两个人的视觉描述符和空间多实例学习,可以提供一种推断交互类型的有效方法。 (C)2015 Elsevier Inc.保留所有权利。

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