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Gait based authentication using gait information image features

机译:使用步态信息图像功能进行基于步态的身份验证

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Human gait, a soft biometric helps to recognize people by the manner, they walk. This paper presents gait image features based on the information set theory, henceforth these are called gait information image features. The information set stems from a fuzzy set with a view to represent the uncertainty in the information source values using the entropy function. The proposed gait information image (GII) is derived by applying the concept of information set on the frames in one gait cycle and two features named gait information image with energy feature (GII-EF) and gait information image with sigmoid feature (GII-SF) are extracted. Nearest neighbor (NN) classifier is applied to identify the gait. The proposed features are tested on Casia-B dataset, SOTON small database with variations in clothing and carrying conditions and On OU-ISIR Treadmill B database with large variation in clothing conditions. Moreover, experiments are carried out on OU-ISIR Treadmill A database with slight variation in the walking speeds to demonstrate the robustness of the proposed features. (C) 2015 Elsevier B.V. All rights reserved.
机译:人的步态是一种柔软的生物特征,有助于通过人们走路的方式来识别人。本文基于信息集理论提出了步态图像特征,以下将其称为步态信息图像特征。信息集源于模糊集,目的是使用熵函数表示信息源值中的不确定性。提出的步态信息图像(GII)是通过在一个步态周期和两个具有能量特征的步态信息图像(GII-EF)和具有S型特征的步态信息图像(GII-SF)的帧上设置信息的概念得出的)被提取。最近邻居(NN)分类器用于识别步态。在Casia-B数据集,具有服装和携带条件变化的SOTON小型数据库以及在服装条件具有较大变化的OU-ISIR跑步机B数据库上测试了建议的功能。此外,在OU-ISIR跑步机A数据库上进行了实验,步行速度略有变化,以证明所提出功能的鲁棒性。 (C)2015 Elsevier B.V.保留所有权利。

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