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The Analysis of Plantar Pressure Data Based on Multimodel Method in Patients with Anterior Cruciate Ligament Deficiency during Walking

机译:基于多模型方法的前交叉韧带行走时足底压力数据分析

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摘要

The movement information of the human body can be recorded in the plantar pressure data, and the analysis of plantar pressure data can be used to judge whether the human body motion function is normal or not. A two-meter footscan® system was used to collect the plantar pressure data, and the kinetic and dynamic gait characteristics were extracted. According to the different description of gait characteristics, a set of models was established according to various people to present the movement of lower limbs. By the introduction of algorithm in machine learning, the FCM clustering algorithm is used to cluster the sample set and create a set of models, and then the SVM algorithm was used to identify the new samples, so as to complete the normal and abnormal motion function identification. The multimodel presented in this paper was carried out into the analysis of the anterior cruciate ligament deficiency. This method demonstrated being effective and can provide auxiliary analysis for clinical diagnosis.
机译:可以将人体的运动信息记录在足底压力数据中,并且可以通过对足底压力数据的分析来判断人体运动功能是否正常。使用两米长的footscan®系统收集足底压力数据,并提取动力学和动态步态特征。根据步态特征的不同描述,针对不同人群建立了一套模型,以呈现下肢的运动。通过在机器学习中引入算法,使用FCM聚类算法对样本集进行聚类并创建模型集,然后使用SVM算法识别新样本,从而完成正常和异常运动功能。识别。本文提出的多模型被用于分析前十字韧带缺乏症。该方法证明是有效的,可以为临床诊断提供辅助分析。

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