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Unsupervised Video Action Clustering via Motion-Scene Interaction Constraint

机译:通过运动场景交互约束无监督的视频操作群集

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摘要

In the past few years, scene contextual information has been increasingly used for action understanding with promising results. However, unsupervised video action clustering using context has been less explored, and existing clustering methods cannot achieve satisfactory performances. In this paper, we propose a novel unsupervised video action clustering method by using the motion-scene interaction constraint (MSIC). The proposed method takes the unique static scene and dynamic motion characteristics of video action into account, and develops a contextual interaction constraint model under a self-representation subspace clustering framework. First, the complementarity of multi-view subspace representation in each context is explored by single-view and multi-view constraints. Afterward, the context-constrained affinity matrix is calculated and the MSIC is introduced to mutually regularize the disagreement of subspace representation in scene and motion. Finally, by jointly constraining the complementarity of multi-views and the consistency of multi-contexts, an overall objective function is constructed to guarantee the video action clustering result. The experiments on four video benchmark datasets (Weizmann, KTH, UCFsports, and Olympic) demonstrate that the proposed method outperforms the state-of-the-art methods.
机译:在过去几年中,现场上下文信息越来越多地用于采取有希望的结果的行动理解。但是,使用上下文的无监督视频操作群集较少甚至不太探索,并且现有的群集方法无法实现令人满意的性能。在本文中,我们通过使用运动场景交互约束(MSIC)提出了一种新颖的无监督视频动作聚类方法。所提出的方法考虑了视频动作的独特静态场景和动态运动特性,并在自表示子空间聚类框架下开发了一个上下文交互约束模型。首先,通过单视图和多视图约束探索每个上下文中的多视图子空间表示的互补性。之后,计算上下文受限的亲和矩阵,并引入MSIC以相互规范场景和运动中的子空间表示的分歧。最后,通过共同约束多视图的互补和多上下文的一致性,构建了整体目标函数以保证视频动作聚类结果。四个视频基准数据集(Weizmann,Kth,UCFSports和Olympic)的实验证明了所提出的方法优于最先进的方法。

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