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Lower limbs motion intention detection by using pattern recognition

机译:基于模式识别的下肢运动意图检测

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Electromyographic (EMG) signals processing allows to perform the detection of the intention of movement of the limbs of the human body in order to further use this decision to control wearable devices. For instance, robotic exoskeletons main objective consist of a human-robot interface capable of understanding the user's intention and reacting appropriately to provide the required assistance in an opportune way. In this paper, we study the performance of superficial EMG intended to design a intent pattern recognition based on Artificial Neural Networks (ANN) trained by the Levenberg-Marquardt method. Experiments consisting in 231 EMG records corresponding to 13 lower limbs muscles from 21 healthy subjects were considered. The EMG signals were randomly divided into the following sets: 70 % for training, 15 % for validation and 15 % for evaluation. The ANN-based pattern recognition was evaluated sample per sample with the movement intention annotations (target) and after the training operation end, the performance was evaluated in relation to the events (number of steps). The results show an accuracy of 90,96% sample per sample and 94,88% for an based on events evaluation. These findings motivates the use of this methodology for the classification of the motion intention detection in subjects with pathologies in the lower limbs.
机译:肌电图(EMG)信号处理允许执行人体四肢运动意图的检测,以便进一步使用此决定来控制可穿戴设备。例如,机器人外骨骼的主要目标包括人机界面,该界面能够理解用户的意图并做出适当反应,以适当的方式提供所需的帮助。在本文中,我们研究了表面肌电图的性能,该肌电图旨在基于Levenberg-Marquardt方法训练的人工神经网络(ANN)设计意图模式识别。考虑了由231个EMG记录组成的实验,这些记录对应于21位健康受试者的13下肢肌肉。 EMG信号随机分为以下几组:用于训练的70%,用于验证的15%和用于评估的15%。对基于ANN的模式识别进行了评估,每个样本带有运动意图注释(目标),并且在训练操作结束后,根据事件(步骤数)评估了性能。结果显示,根据事件评估,每个样本的准确度为90.96%,对于事件评估为94.88%。这些发现激发了这种方法在下肢病变患者的运动意图检测分类中的应用。

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