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Analysis of Gait Features between Loaded and Normal Gait

机译:加载和正常步态之间的步态特征分析

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摘要

Ever since the beginning of research on gait recognition, the main focus has been on investigating gait as a biometric. For security surveillance systems, the detection of suspicious behavior is considered to be more relevant than the recognition of identity, which applies more to security authentication systems. Hence, this research uses gait features as cues to detect suspicious behavior. In this work, the effect of load bearing on gait is investigated by analyzing the kinematics parameters between normal and loaded gaits to find out the ground truth between them. The focus is on two features computed throughout a video sequence: silhouette attributes attraction and limbs angular displacements attraction. The silhouette attributes use the area and center of mass of objects. The volunteers were carrying 5kg, 10kg, 15kg and 20kg weights in a bag pack attached either to the back or to the front of their bodies. The results show that silhouette area can be a useful descriptor for discriminating between loaded and normal gait. The second feature (limbs angular displacements attraction) also gives a positive result (92.2%) for both loads starting from 10kg attached at the back and front of subjects.
机译:自从步态认可研究开始以来,主要焦点一直在研究步态作为生物识别。对于安全监控系统,可疑行为的检测被认为比对身份的识别更加相关,这适用于安全认证系统。因此,本研究使用步态特征作为检测可疑行为的提示。在这项工作中,通过分析正常和加载的Gaits之间的运动学参数来研究负载轴承对步态的影响,以找出它们之间的地面真相。重点是在整个视频序列中计算的两个特征:剪影属性景点和肢体角位移吸引力。剪影属性使用对象的区域和核心。志愿者携带5公斤,10kg,15kg和20kg,在袋子包上,附着在其身体的背部或前部。结果表明,轮廓区域可以是用于区分加载和正常步态的有用描述符。第二个特征(肢体角位移吸引力)还为两个载荷的阳性结果(92.2%)提供从受试者背面和前面的10kg开始。

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