An overlap-based human gait cycle detection

K. Sugandhi, Farha Fatina Wahid, P. Nikesh, G. Raju
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引用次数: 7

Abstract

Identification of a person by his/her style of walking is referred as gait recognition. Gait is one among the biometric used for human identification. In gait recognition, an inevitable step for accurate feature extraction is gait cycle detection. In this paper, a novel gait cycle detection algorithm based on the concept of overlap between legs during locomotion is proposed. To identify overlap, zero-crossing counts of silhouette frames as well as bottom halves of silhouette frames are considered. The efficiency of this algorithm is tested using normal walking sequence of subjects with 90° viewing angle from CASIA B as well as TUM-IITKGP human gait databases. The results obtained shows that gait cycle can be easily and efficiently detected with zero-crossing count of silhouette frames. Further zero-crossing counts taken from bottom halves of silhouette frames gives better performance.
基于重叠的人体步态周期检测
通过一个人的走路方式来识别他/她被称为步态识别。步态是用于人体识别的生物特征之一。在步态识别中,准确提取特征的必要步骤是步态周期检测。本文提出了一种基于腿间重叠概念的步态周期检测算法。为了识别重叠,考虑了剪影帧的过零计数和剪影帧的下半部分。通过CASIA B和TUM-IITKGP人体步态数据库中受试者90°视角的正常行走序列,验证了该算法的有效性。结果表明,利用轮廓帧的过零计数可以方便、有效地检测步态周期。进一步的零交叉计数从下半部轮廓帧提供更好的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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