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Classification of Normal and Pathological Gait in Young Children Based on Foot Pressure Data

机译:基于脚压数据的幼儿正常和病理步态分类

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摘要

Human gait recognition, an active research topic in computer vision, is generally based on data obtained from images/videos. We applied computer vision technology to classify pathology-related changes in gait in young children using a foot-pressure database collected using the GAITRite walkway system. As foot positioning changes with children's development, we also investigated the possibility of age estimation based on this data. Our results demonstrate that the data collected by the GAITRite system can be used for normal/pathological gait classification. Combining age information and normal/pathological gait classification increases the accuracy of the classifier. This novel approach could support the development of an accurate, real-time, and economic measure of gait abnormalities in children, able to provide important feedback to clinicians regarding the effect of rehabilitation interventions, and to support targeted treatment modifications.
机译:人体步态识别,计算机愿景中的活跃研究主题通常基于从图像/视频获得的数据。 我们应用计算机视觉技术使用使用Gaitrite Walkway系统收集的脚压数据库来分类与幼儿步态相关的病理学相关变化。 随着儿童发展的脚定位变化,我们还研究了基于此数据的年龄估计的可能性。 我们的结果表明,Gaitrite系统收集的数据可用于正常/病理步态分类。 结合年龄信息和正常/病理步态分类增加了分类器的准确性。 这种新的方法可以支持发展儿童步态异常的准确,实时和经济衡量标准,能够为临床医生提供重要反馈,并对康复干预措施的影响,并支持有针对性的治疗修改。

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