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队列研究中步态运动学的独特性。

Uniqueness of gait kinematics in a cohort study.

机构信息

Department of Mechanical Engineering, Korea Advanced Institute of Science and Technology, 291 Daehak-ro, Yuseong-gu, Daejeon, 34141, Republic of Korea.

Department of Orthopedic Surgery, Seoul National University Bundang Hospital, Seongnam, Republic of Korea.

出版信息

Sci Rep. 2021 Jul 27;11(1):15248. doi: 10.1038/s41598-021-94815-z.

Abstract

Gait, the style of human walking, has been studied as a behavioral characteristic of an individual. Several studies have utilized gait to identify individuals with the aid of machine learning and computer vision techniques. However, there is a lack of studies on the nature of gait, such as the identification power or the uniqueness. This study aims to quantify the uniqueness of gait in a cohort. Three-dimensional full-body joint kinematics were obtained during normal walking trials from 488 subjects using a motion capture system. The joint angles of the gait cycle were converted into gait vectors. Four gait vectors were obtained from each subject, and all the gait vectors were pooled together. Two gait vectors were randomly selected from the pool and tested if they could be accurately classified if they were from the same person or not. The gait from the cohort was classified with an accuracy of 99.71% using the support vector machine with a radial basis function kernel as a classifier. Gait of a person is as unique as his/her facial motion and finger impedance, but not as unique as fingerprints.

摘要

步态,即人类行走的方式,一直被作为个体的行为特征进行研究。已有多项研究利用步态识别技术,借助机器学习和计算机视觉来识别个体。然而,关于步态的本质,例如识别能力或独特性,还缺乏相关研究。本研究旨在量化队列中步态的独特性。通过运动捕捉系统,在 488 名受试者进行正常行走试验的过程中,获取其全身各关节的三维运动学数据。将步态周期的关节角度转换为步态向量。从每个受试者中获取 4 个步态向量,然后将所有步态向量汇总在一起。从这些向量池中随机选择 2 个步态向量,并测试它们是否可以被准确分类,即它们是否来自同一个人。使用具有径向基函数核的支持向量机作为分类器,队列中的步态被分类的准确率达到了 99.71%。一个人的步态与他/她的面部运动和手指阻抗一样独特,但不如指纹独特。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c720/8316524/56b1bd3e5571/41598_2021_94815_Fig1_HTML.jpg

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