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Evolutionary optimization of user intent recognition for transfemoral amputees

机译:跨股截肢者用户意图识别的进化优化

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Lower-limb prosthetic legs help amputees regain their walking ability. User intent recognition is utilized to infer human gait mode (fast walk, slow walk, etc.) so the controller can be adjusted depending on the detected gait mode. In this paper, mechanical sensor data is collected from an able-bodied subject and used for user intent recognition. Feature extraction, principal component analysis, correlation analysis, and K-nearest neighbor methods are used, modified, and optimized with an evolutionary algorithm for improved performance. The optimized system successfully classifies four different walking modes with an accuracy of 96%.
机译:下肢假肢帮助截肢者恢复步行能力。利用用户意图识别来推断人的步态模式(快步,慢步等),因此可以根据检测到的步态模式来调整控制器。在本文中,机械传感器数据是从健全的主体中收集的,并用于用户意图识别。使用特征提取,主成分分析,相关性分析和K最近邻方法,并通过进化算法对其进行了改进和优化,以提高性能。经过优化的系统成功分类了四种不同的步行模式,准确性为96%。

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