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Person identity recognition on motion capture data using label propagation

机译:使用标签传播对运动捕捉数据进行人员身份识别

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摘要

Most activity-based person identity recognition methods operate on video data. Moreover, the vast majority of these methods focus on gait recognition. Obviously, recognition of a subject's identity using only gait imposes limitations to the applicability of the corresponding methods whereas a method capable of recognizing the subject's identity from various activities would be much more widely applicable. In this paper, a new method for activity-based identity recognition operating on motion capture data, that can recognize the subject's identity from a variety of activities is proposed. The method combines an existing approach for feature extraction from motion capture sequences with a label propagation algorithm for classification. The method and its variants (including a novel one, that takes advantage of the fact that, in certain cases, both activity and person identity labels might exist for the labeled sequences) have been tested in two different datasets. Experimental analysis proves that the proposed approach provides very good person identity recognition results, surpassing those obtained by two other methods.
机译:大多数基于活动的人员身份识别方法都对视频数据进行操作。而且,这些方法中的绝大多数都集中在步态识别上。显然,仅使用步态来识别受试者的身份会限制相应方法的适用性,而能够从各种活动中识别受试者的身份的方法将更广泛地适用。在本文中,提出了一种新的基于活动的身份识别的方法,该方法用于对运动捕获数据进行操作,该方法可以从各种活动中识别对象的身份。该方法将用于从运动捕获序列中提取特征的现有方法与用于分类的标签传播算法相结合。已经在两个不同的数据集中测试了该方法及其变体(包括一种新颖的方法,该方法利用的事实是,在某些情况下,标记的序列可能同时存在活动和个人身份标记)。实验分析证明,所提出的方法提供了非常好的人的身份识别结果,超过了其他两种方法获得的结果。

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