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CAD: concatenated action descriptor for one and two person(s), using silhouette and silhouette's skeleton

机译:CAD:使用轮廓和轮廓的骨架,一个和两个人的串联动作描述符

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This study introduces an action descriptor that has the ability to perform human action recognition efficiently for one and two person(s). The authors' proposed descriptor computes information like motion, spatial-temporal, diversion with respect to the centroid, critical point and keypoint detection, whereas the existing approaches lack to address this information efficiently. Action descriptors are developed from signature-based optical flow, signature-based corner points and binary robust invariant scalable keypoints. These action descriptors are applied to silhouette and silhouette's skeleton frames. These aforementioned action descriptors lead to developing the concatenated action descriptor (CAD). In order to develop action descriptors, the reference video frame plays an important role. Weizmann (one person) and both clean and noise versions of SBU Kinect Interaction (two persons) datasets are used for the evaluation of their proposed descriptors. On the other hand, classifications are performed by using support vector machine. Experimental results demonstrate that CAD not only outperforms among the entire proposed descriptors, but also provides better performance as compared to state-of-the-art approaches.
机译:这项研究介绍了一种动作描述符,该描述符可以有效地对一个人和两个人执行人类动作识别。作者提出的描述符可计算运动,时空,相对于质心的转移,临界点和关键点检测等信息,而现有方法缺乏有效解决此信息的方法。动作描述符是从基于签名的光流,基于签名的角点和二进制鲁棒不变可扩展关键点开发的。这些动作描述符适用于轮廓和轮廓的骨架。这些前面提到的动作描述符导致开发级联动作描述符(CAD)。为了开发动作描述符,参考视频帧起着重要的作用。 Weizmann(一个人)以及SBU Kinect Interaction(两个人)数据集的干净版本和噪声版本都用于评估其建议的描述符。另一方面,使用支持向量机进行分类。实验结果表明,与最新方法相比,CAD不仅在所有建议的描述符中表现出色,而且还提供了更好的性能。

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