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A novel Approach to Human Gait Recognition using possible Speed Invariant features

机译:一种使用可能的速度不变特征的新型人类步态识别方法

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In this paper a new area based technique is proposed for deriving gait signatures by decomposing the human body into three independent structural segments such as head node, arm swing and leg swing areas. Initially, all the feature points are represented as the sides of an n-sided polygon for calculating the area of each region. This technique induces surplus noise in the feature points which is in turn reflected in the human identification problem. This drawback inspires us to compute the area of each region by constructing a convex hull of the feature points in order to obtain certain key speed invariant features. Classification results demonstrate the ability of proposed feature extraction techniques using Bayes' classifier, distance metrics, and the proposed polynomial based distance metric. The performance analysis of various classifiers has been evaluated using Receiver Operating Characteristics (ROC) curve and the Cumulative Match Characteristics Curve (CMC) after performing N-fold cross validation technique.
机译:在本文中,提出了一种新的基于区域的技术,用于通过将人体分解为三个独立的结构部分(如头节点,手臂摆动和腿部摆动区域)来获得步态特征。最初,所有特征点都表示为n边多边形的边,用于计算每个区域的面积。该技术在特征点中引起多余的噪声,这又反映在人类识别问题中。这个缺点激励我们通过构造特征点的凸包来计算每个区域的面积,以获得某些关键的速度不变特征。分类结果证明了使用贝叶斯分类器,距离度量以及基于多项式的距离度量提出的特征提取技术的能力。在执行N折交叉验证技术后,已使用接收器工作特征(ROC)曲线和累积匹配特征曲线(CMC)评估了各种分类器的性能分析。

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