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A Comparison of Four Neural Networks Algorithms on Locomotion Intention Recognition of Lower Limb Exoskeleton Based on Multi-source Information

摘要Lower Limb Exoskeletons(LLEs)are receiving increasing attention for supporting activities of daily living.In such active systems,an intelligent controller may be indispensable.In this paper,we proposed a locomotion intention recognition system based on time series data sets derived from human motion signals.Composed of input data and Deep Learning(DL)algo-rithms,this framework enables the detection and prediction of users'movement patterns.This makes it possible to predict the detection of locomotion modes,allowing the LLEs to provide smooth and seamless assistance.The pre-processed eight subjects were used as input to classify four scenes:Standing/Walking on Level Ground(S/WOLG),Up the Stairs(US),Down the Stairs(DS),and Walking on Grass(WOG).The result showed that the ResNet performed optimally compared to four algorithms(CNN,CNN-LSTM,ResNet,and ResNet-Att)with an approximate evaluation indicator of 100%.It is expected that the proposed locomotion intention system will significantly improve the safety and the effectiveness of LLE due to its high accuracy and predictive performance.

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作者 Duojin Wang [1] Xiaoping Gu [2] Hongliu Yu [1] 学术成果认领
作者单位 Institute of Rehabilitation Engineering and Technology,University of Shanghai for Science and Technology,516 Jungong Road,Shanghai 200093,China;Shanghai Engineering Research Center of Assistive Devices,516 Jungong Road,Shanghai 200093,China [1] Institute of Rehabilitation Engineering and Technology,University of Shanghai for Science and Technology,516 Jungong Road,Shanghai 200093,China [2]
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DOI 10.1007/s42235-023-00435-w
发布时间 2024-03-27(万方平台首次上网日期,不代表论文的发表时间)
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仿生工程学报(英文版)

仿生工程学报(英文版)

2024年21卷1期

224-235页

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