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Gait-Based Person Identification Robust to Changes in Appearance

机译:基于步态的人识别对外观变化具有鲁棒性

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摘要

The identification of a person from gait images is generally sensitive to appearance changes, such as variations of clothes and belongings. One possibility to deal with this problem is to collect possible subjects' appearance changes in a database. However, it is almost impossible to predict all appearance changes in advance. In this paper, we propose a novel method, which allows robustly identifying people in spite of changes in appearance, without using a database of predicted appearance changes. In the proposed method, firstly, the human body image is divided into multiple areas, and features for each area are extracted. Next, a matching weight for each area is estimated based on the similarity between the extracted features and those in the database for standard clothes. Finally, the subject is identified by weighted integration of similarities in all areas. Experiments using the gait database CASIA show the best correct classification rate compared with conventional methods experiments.
机译:从步态图像识别人通常对外观变化敏感,例如衣服和物品的变化。解决此问题的一种可能性是在数据库中收集可能的对象的外观变化。但是,几乎不可能预先预测所有外观变化。在本文中,我们提出了一种新颖的方法,该方法无需使用预测的外观变化的数据库即可在外观变化的情况下可靠地识别人。在提出的方法中,首先,将人体图像分为多个区域,并提取每个区域的特征。接下来,根据提取的特征与标准服装数据库中特征之间的相似性,估算每个区域的匹配权重。最后,通过所有领域相似性的加权整合来确定主题。与传统方法实验相比,使用步态数据库CASIA进行的实验显示出最佳的正确分类率。

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