打击犯罪的步态模式:统计评估

K. Sulovská, S. Belaskova, M. Adamek
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引用次数: 10

摘要

在人类历史上,犯罪行为无处不在。现代技术为识别罪犯带来了新的机会。其中一个机会是对录像进行分析,这可能是在犯罪过程中或犯罪前后拍摄的。视频分析可分为识别分析两类,分别通过外部识别一个人。双足运动是人类在解剖生理特征的基础上进行的运动。目前,许多实验室都在对人的步态进行测试,以了解通过两足运动进行识别是否可行。我们研究的目的是使用来自VICON动作捕捉系统的3D数据中的2D组件进行深度统计分析。本文介绍了一项关于不同条件下不同步态模式的基础研究的最新结果。这项研究包含了12名参与者的数据。从这些测量得到的曲线进行排序,平均和统计测试,以估计这种生物特征的稳定性和独特性。结果表明,一些点的显著性较好,而另一些点的显著性不显著。然而,本文的结果只是对不同条件下步态模式进行更深入、更精确分析的初始阶段。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Gait patterns for crime fighting: statistical evaluation
The criminality is omnipresent during the human history. Modern technology brings novel opportunities for identification of a perpetrator. One of these opportunities is an analysis of video recordings, which may be taken during the crime itself or before/after the crime. The video analysis can be classed as identification analyses, respectively identification of a person via externals. The bipedal locomotion focuses on human movement on the basis of their anatomical-physiological features. Nowadays, the human gait is tested by many laboratories to learn whether the identification via bipedal locomotion is possible or not. The aim of our study is to use 2D components out of 3D data from the VICON Mocap system for deep statistical analyses. This paper introduces recent results of a fundamental study focused on various gait patterns during different conditions. The study contains data from 12 participants. Curves obtained from these measurements were sorted, averaged and statistically tested to estimate the stability and distinctiveness of this biometrics. Results show satisfactory distinctness of some chosen points, while some do not embody significant difference. However, results presented in this paper are of initial phase of further deeper and more exacting analyses of gait patterns under different conditions.
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