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Gait classification of twins and non-twins siblings

机译:双胞胎和非双胞胎兄弟姐妹的步态分类

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This paper presents a classification analysis of gait biometric on twins and non-twins siblings. The aim of this paper is to investigate the existence or inexistence of similarity in the gait of twins and compare it to the gait of non-twins siblings. The motivation behind this paper is that a video-based surveillance system may not be able to rely on face biometric alone when dealing with twins. The features used are the angular displacement walking trajectories of lower limbs. Also this paper proposes a gait cycle normalization task via Bezier polynomial root-finding and re-sampling to ensure a robust analysis against differences in walking speed. Two established classifiers, the linear discriminant analysis (LDA) and k-nearest neighbor are used to classify the data sets of twins and non-twins siblings. Results may indicate that there is similarity in the gait of twins.
机译:本文介绍了双胞胎和非双胞胎兄弟姐妹的步态生物特征分类分析。本文的目的是研究双胞胎步态中相似性的存在或不存在,并将其与非双胞胎同胞的步态进行比较。本文的动机在于,基于视频的监视系统在与双胞胎打交道时可能无法仅依靠面部生物特征识别。使用的特征是下肢的角位移行走轨迹。此外,本文还提出了一种通过Bezier多项式根查找和重新采样进行的步态周期归一化任务,以确保针对步行速度差异进行可靠的分析。使用两个已建立的分类器,线性判别分析(LDA)和k近邻法对双胞胎和非双胞胎同胞的数据集进行分类。结果可能表明双胞胎的步态相似。

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