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VIEW-INDEPENDENT HUMAN ACTION RECOGNITION BASED ON MULTI-VIEW ACTION IMAGES AND DISCRIMINANT LEARNING

机译:基于多视图行动图像和判别学习的观点独立的人力行动识别

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In this paper a novel view-independent human action recognition method is proposed. A multi-camera setup is used to capture the human body from different viewing angles. Actions are described by a novel action representation, the so-called multi-view action image (MVAI), which effectively addresses the camera viewpoint identification problem, i.e., the identification of the position of each camera with respect to the person's body. Linear Discriminant Analysis is applied on the MVAIs in order to to map actions to a discriminant feature space where actions are classified by using a simple nearest class centroid classification scheme. Experimental results denote the effectiveness of the proposed action recognition approach.
机译:在本文中,提出了一种新的观看型无关的人体行动识别方法。多摄像机设置用于捕获来自不同观察角的人体。通过新颖的动作表示来描述动作,即所谓的多视图动作图像(MVAI),其有效地解决了相机视点识别问题,即,相对于人体的主体的识别每个相机的位置。线性判别分析应用于MVAIS,以便将动作映射到判别特征空间,其中通过使用简单的最接近的类心针分类方案对动作进行分类。实验结果表示拟议的行动识别方法的有效性。

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