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CHAOTIC CHARACTERISATION OF FRONTAL NORMAL GAIT FOR HUMAN IDENTIFICATION

机译:人体识别前正常步态的混沌特征

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Human recognition using gait features in predominantly frontal-normal motion has been described in this paper. Compared to current methods for gait identification, this allows convenient combination of other biometrics using a single camera. We analyse how this motion yields more dynamic information, allowing us to characterise gait in a new way, using nonlinear dynamics of time series normally used in chaos theory. Using chaotic measures to identify humans by their gait is a significant precedent. Phase-space analysis of trajectories of a set of Moving Light Displays (MLDs) provides sufficient information for identification of people by their gait. A number of experiments has been set up to demonstrate the viability of this approach which contribute to the relatively unexplored area of fusion of face with gait. This provides a more robust identification scheme.
机译:本文已经描述了使用步态特征的人力识别主要是正常运动。与目前的步态方法相比,这允许使用单个相机方便的其他生物识别技术组合。我们分析了这种运动如何产生更多的动态信息,允许我们以新的方式表征步态,使用通常用于混沌理论中的时间序列的非线性动态。使用混沌措施来识别人类的步态是一个重要的先例。一组移动灯显示器(MLD)的轨迹的相位空间分析提供了足够的信息,以通过它们的步态识别人。已经建立了许多实验来证明这种方法的可行性,这有助于与步态相对未开发的面孔融合。这提供了更强大的识别方案。

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