Gait Biometric Recognition Using Direct Classification, TSVM, SVM and Neural Network

S. Senthil Kumar, V. Kathiresan
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引用次数: 1

Abstract

Gait recognition is the process of identifying an individual by the manner in which they walk. Using gait as a biometric is a relatively new area of study, within the realms of computer vision. It has been receiving growing interest within the computer vision community and a number of gait metrics have been developed. The term gait recognition to signify the identification of an individual from a video sequence of the subject walking. This does not mean that gait is limited to walking, it can also be applied to running or any means of movement on foot. While gait has several attractive properties as a biometric there are several confounding factors such as variations due to footwear, terrain, fatigue, injury, and passage of time. Examples of motion that are gaits include walking, running, jogging, and climbing stairs. Sitting down, picking up an object, and throwing and object are all coordinated motions, but they are not cyclic. Jumping jacks are coordinated and cyclic, but do not result in locomotion. The use of gait as a biometric for human identification is still young when compared to methods that use voice, finger prints, or faces.
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基于直接分类、TSVM、SVM和神经网络的步态生物识别
步态识别是通过一个人走路的方式来识别他的过程。在计算机视觉领域内,使用步态作为生物识别技术是一个相对较新的研究领域。它在计算机视觉社区中受到越来越多的关注,并且已经开发了许多步态度量。步态识别这一术语表示从受试者行走的视频序列中识别个体。这并不意味着步态仅限于步行,它也可以应用于跑步或任何步行的运动方式。虽然步态作为生物特征有几个吸引人的特性,但也有一些混淆因素,如由于鞋类、地形、疲劳、损伤和时间的流逝而引起的变化。步态运动的例子包括走路、跑步、慢跑和爬楼梯。坐下来,拿起一个物体,扔东西都是协调的动作,但它们不是循环的。开合跳是协调和循环的,但不导致运动。与使用声音、指纹或面部的方法相比,将步态作为人类身份识别的生物特征仍然很年轻。
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