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Category-Blind Human Action Recognition: A Practical Recognition System

机译:盲人行为识别:一种实用的识别系统

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Existing human action recognition systems for 3D sequences obtained from the depth camera are designed to cope with only one action category, either single-person action or two-person interaction, and are difficult to be extended to scenarios where both action categories co-exist. In this paper, we propose the category-blind human recognition method (CHARM) which can recognize a human action without making assumptions of the action category. In our CHARM approach, we represent a human action (either a single-person action or a two-person interaction) class using a co-occurrence of motion primitives. Subsequently, we classify an action instance based on matching its motion primitive co-occurrence patterns to each class representation. The matching task is formulated as maximum clique problems. We conduct extensive evaluations of CHARM using three datasets for single-person actions, two-person interactions, and their mixtures. Experimental results show that CHARM performs favorably when compared with several state-of-the-art single-person action and two-person interaction based methods without making explicit assumptions of action category.
机译:从深度相机获得的用于3D序列的现有人类动作识别系统被设计为仅处理一个动作类别,即单人动作或两人互动,并且难以扩展到两个动作类别共存的场景。在本文中,我们提出了一种类别盲人识别方法(CHARM),该方法可以在不对动作类别进行假设的情况下识别人类动作。在我们的CHARM方法中,我们使用运动原语的同时出现来表示人类动作(单人动作或两人互动)类。随后,我们将动作实例的运动原始同现模式与每个类表示形式进行匹配,从而对动作实例进行分类。匹配任务被表述为最大派系问题。我们使用三个用于单人动作,两人互动及其混合的数据集对CHARM进行了广泛的评估。实验结果表明,与几种最先进的单人动作和基于两人交互的方法相比,CHARM在没有明确定义动作类别的情况下,表现良好。

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