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Gait recognition using linear time normalization

机译:使用线性时间归一化的步态识别

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摘要

We present a novel system for gait recognition. Identity recognition and verification are based on the matching of linearly time-normalized gait walking cycles. A novel feature extraction process is also proposed for the transformation of human silhouettes into low-dimensional feature vectors consisting of average pixel distances from the center of the silhouette. By using the best-performing of the proposed methodologies, improvements of 8-20% in recognition and verification performance are seen in comparison to other known methodologies on the "Gait Challenge" database. (c) 2005 Pattern Recognition Society. Published by Elsevier Ltd. All rights reserved.
机译:我们提出了一种新型的步态识别系统。身份识别和验证基于线性时间标准化步态行走周期的匹配。还提出了一种新颖的特征提取过程,用于将人的轮廓转换为低维特征向量,该低维特征向量由距轮廓中心的平均像素距离组成。通过使用最佳方法,与“步态挑战”数据库上的其他已知方法相比,识别和验证性能提高了8-20%。 (c)2005模式识别学会。由Elsevier Ltd.出版。保留所有权利。

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