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A New View-Invariant Feature for Cross-View Gait Recognition

机译:跨视图步态识别的新视图不变功能

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Human gait is an important biometric feature which is able to identify a person remotely. However, change of view causes significant difficulties for recognizing gaits. This paper proposes a new framework to construct a new view-invariant feature for cross-view gait recognition. Our view-normalization process is performed in the input layer (i.e., on gait silhouettes) to normalize gaits from arbitrary views. That is, each sequence of gait silhouettes recorded from a certain view is transformed onto the common canonical view by using corresponding domain transformation obtained through invariant low-rank textures (TILTs). Then, an improved scheme of procrustes shape analysis (PSA) is proposed and applied on a sequence of the normalized gait silhouettes to extract a novel view-invariant gait feature based on procrustes mean shape (PMS) and consecutively measure a gait similarity based on procrustes distance (PD). Comprehensive experiments were carried out on widely adopted gait databases. It has been shown that the performance of the proposed method is promising when compared with other existing methods in the literature.
机译:人的步态是重要的生物特征,能够远程识别一个人。但是,改变视角会给步态识别带来很大困难。本文提出了一个新的框架,以构建新的视图不变特征,用于跨视图步态识别。我们的视图归一化过程是在输入层(即步态轮廓)上执行的,以从任意视图归一化步态。也就是说,通过使用通过不变的低秩纹理(TILT)获得的相应域转换,将从某个视图记录的步态轮廓的每个序列转换为普通规范视图。然后,提出了一种改进的步态分析方法(PSA),并将其应用于归一化步态轮廓序列,以基于步态平均形状(PMS)提取新的视图不变步态特征,并基于步态连续测量步态相似度距离(PD)。在广泛采用的步态数据库上进行了综合实验。已经表明,与文献中其他现有方法相比,该方法的性能是有希望的。

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