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sEMG Based Gait Phase Recognition for Children with Spastic Cerebral Palsy

机译:痉挛性脑瘫儿童的Semg基步态识别

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The goal of this study was to examine the optimal strategies for the recognition of gait phase based on surface electromyogram (sEMG) of leg muscles while children with cerebral palsy (CP) walked on a treadmill. Ten children with CP were recruited to participate in this study. sEMG from eight leg muscles and leg position signals were recorded while subjects walked on a treadmill. The position signals of left and right legs were used to develop a five gait sub-phases classifier, i.e., mid stance, terminal stance, pre-swing, mid swing, and terminal swing. Seven feature sets of sEMG signals were tested in recognizing the five gait sub-phases of children with CP. Results from this study indicated that the recognition performance of mean absolute value and zero crossing was better than that with other feature sets when using support vector machine (average classification accuracy was 89.40%). Further, we found that the performance of gait phase recognition is relatively better in pre-swing than other sub-phases, and the performance of gait phase recognition is relatively poorer in mid-swing than other sub-phases. Results from this study may be used to develop an intention-driven robotic gait training system/paradigm for assisting walking in children with CP through robotic training.
机译:本研究的目标是研究基于腿部肌肉(SEMG)的腿部肌肉(SEMG)识别步态阶段的最佳策略,而脑瘫(CP)的儿童在跑步机上行走。有十个有CP的儿童被招募参加这项研究。在跑步机上散步时,记录来自八个腿部肌肉和腿位置信号的SEMG。左腿和右腿的位置信号用于开发五个步态子相分类器,即中型,终端姿势,预摆动,中转和终端摆动。测试了七种特征SEMG信号,在识别CP儿童的五个步态子阶段时进行了测试。本研究的结果表明,当使用支持向量机时,平均绝对值和零交叉的识别性能优于其他特征集(平均分类精度为89.40%)。此外,我们发现步态阶段识别的性能比其他子相的预先摆动相对较好,并且步态阶段识别的性能比其他子相比相对较差。本研究的结果可用于开发有意驱动的机器人步态培训系统/范式,以协助通过机器人训练在CP的儿童中散步。

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