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Fast action proposals for human action detection and search

机译:用于人类行动检测和搜索的快速行动提案

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In this paper we target at generating generic action proposals in unconstrained videos. Each action proposal corresponds to a temporal series of spatial bounding boxes, i.e., a spatio-temporal video tube, which has a good potential to locate one human action. Assuming each action is performed by a human with meaningful motion, both appearance and motion cues are utilized to measure the actionness of the video tubes. After picking those spatiotemporal paths of high actionness scores, our action proposal generation is formulated as a maximum set coverage problem, where greedy search is performed to select a set of action proposals that can maximize the overall actionness score. Compared with existing action proposal approaches, our action proposals do not rely on video segmentation and can be generated in nearly real-time. Experimental results on two challenging datasets, MSRII and UCF 101, validate the superior performance of our action proposals as well as competitive results on action detection and search.
机译:在本文中,我们针对在不受约束的视频中生成通用行动提案。每个动作提案对应于颞型空间限定盒,即时空视频管,其具有定位一种人类动作的良好潜力。假设每个动作由人类进行有意义的运动来执行,所以使用外观和运动提示来测量视频管的效果。在挑选那些高actionsness分数的时空路径之后,我们的行动提案生成被制定为最大集合覆盖问题,其中执行贪婪搜索以选择一组动作提案,可以最大化整体actionsives得分。与现有行动提案方法相比,我们的行动提案不依赖于视频分割,并且可以在几乎实时生成。在两个具有挑战性的数据集,MSRII和UCF 101上的实验结果验证了我们行动提案的卓越性能以及行动检测和搜索的竞争结果。

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