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A graph-based approach for detecting common actions in motion capture data and videos

机译:一种基于图形的方法,用于检测运动捕捉数据和视频中的公共动作

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We present a novel solution to the problem of detecting common actions in time series of motion capture data and videos. Given two action sequences, our method discovers all pairs of common subsequences, i.e. subsequences that represent the same or similar action. This is achieved in a completely unsupervised manner, i.e., without any prior knowledge of the type of actions, their number and their duration. These common subsequences (commonalities) may be located anywhere in the original sequences, may differ in duration and may be performed under different conditions e.g., by a different actor. The proposed method performs a very efficient graph-based search on the matrix of pairwise distances of frames of the two sequences. This search is supported by an objective function that captures the trade off between the similarity of the common subsequences and their lengths. The proposed method has been evaluated quantitatively on challenging datasets and in comparison to state of the art approaches. The obtained results demonstrate that the proposed method outperforms the state of the art methods both in the quality of the obtained solutions and in computational performance. (C) 2018 Elsevier Ltd. All rights reserved.
机译:我们提出了一种对检测时间序列中的常见动作的问题的新解决方案。考虑到两个动作序列,我们的方法发现了所有的公共子序列,即表示相同或类似动作的子序列。这是以完全无人监督的方式实现的,即,没有任何先前的行动类型的知识,它们的数量及其持续时间。这些常见的子序列(共度)可以位于原始序列中的任何位置,可能持续时间不同,并且可以在不同的条件下执行,例如,由不同的演员执行。所提出的方法对两个序列的帧的成对距离的矩阵执行非常有效的图形搜索。此搜索得到了一个客观函数支持,该函数捕获常用子序列的相似性与其长度之间的折衷。所提出的方法已经定量地对具有挑战性的数据集进行了评估,并且与现有技术的状态相比。所得结果表明,所提出的方法优于所获得的解决方案的质量和计算性能的现有技术的状态。 (c)2018年elestvier有限公司保留所有权利。

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