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Classification of plantar foot alterations by fuzzy cognitive maps against multi-layer perceptron neural network

机译:用模糊认知地图对多层射击性神经网络进行平跖脚改变的分类

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摘要

Load distribution analysis on foot surface allows knowing human mechanical behavior and aids the doctor in the detection of gait disorders like, the risk of foot ulcerations, leg discrepancy, and footprint alterations. Plantar pressure data combined with techniques that use integral reasoning produce easy understanding medical tools for assisting in treatment, early detection, and the development of preventive strategies. The present research compares the classification of human plantar foot alterations using Fuzzy Cognitive Maps (FCM) trained by Genetic Algorithm (GA) against a Multi-Layer Perceptron Neural Network (MLPNN). One hundred and fifty-one subject volunteers (aged 7-77) were classified previously with the flat foot (n = 70) and cavus foot (n = 81) by specialized physicians of the Piedica diagnostic center. The trial walking was conducted using plantar pressure platforms FreeMed (R). The foot surface was divided into 14 areas that included toe 1 st to 5th, metatarsal joint 1st to 5th, lateral midfoot, medial midfoot, lateral heel, and medial heel. Pressure data were normalized for each area. Better performance in the classification using small amounts of data were found by using Fuzzy rather than non-Fuzzy approach. (c) 2020 Nalecz Institute of Biocybernetics and Biomedical Engineering of the Polish Academy of Sciences. Published by Elsevier B.V. All rights reserved.
机译:脚踏板的负载分配分析允许了解人类的机械行为,并辅助医生在检测步态障碍,脚溃疡的风险,腿部差异和足迹改变。 Purtorar压力数据与使用整体推理的技术相结合,可以轻松理解医疗工具,以协助治疗,早期检测和预防策略的发展。本研究比较了利用遗传算法(GA)训练的模糊认知地图(FCM)对多层Perceptron神经网络(MLPNN)进行人跖脚改变的分类。先前用Pietica诊断中心的专门医生分类为一百五十一项主题志愿者(7-77岁)以平坦的脚(n = 70)和cavus脚(n = 81)分类。试验行走是使用Foremed(R)的Purtorar压力平台进行的。脚表面分为14个区域,其中包括葡萄趾1至第五,跖骨关节第一至第五,侧面中足,内侧,侧链,侧链和内侧鞋跟。压力数据对于每个区域进行标准化。通过使用模糊而不是非模糊方法,找到使用少量数据的分类中的更好性能。 (c)2020纳尔梁兹生物庭院研究所和波兰科学院生物医学工程。 elsevier b.v出版。保留所有权利。

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