Real-time Gait Mode Intent Recognition of a Powered Knee and Ankle Prosthesis for Standing and Walking.

Huseyin Atakan Varol, Frank Sup, Michael Goldfarb
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引用次数: 53

Abstract

This paper describes a real-time gait mode intent recognition approach for the supervisory control of a powered transfemoral prosthesis. The proposed approach infers user intent by recognizing patterns in the prosthesis sensor's signals in real-time, eliminating the need for sound-side instrumentation and allowing fast mode switching. Simple time based features extracted from frames of prosthesis signals are reduced to lower dimensions. Gaussian Mixture Models are trained using an experimental database for gait mode classification. A voting scheme is applied as a post-processing step to increase the robustness of decision making. The effectiveness of the proposed method is shown via gait experiments on a treadmill with a healthy subject using an able bodied adapter.

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站立和行走的动力膝关节和踝关节假体的实时步态模式意图识别。
本文描述了一种实时步态模式意图识别方法,用于动力股骨假体的监控。该方法通过实时识别假体传感器信号中的模式来推断用户意图,消除了对声音侧仪器的需求,并允许快速模式切换。从假体信号帧中提取简单的基于时间的特征,将其降至较低的维数。利用实验数据库对高斯混合模型进行步态分类训练。为了提高决策的鲁棒性,采用了一种投票方案作为后处理步骤。该方法的有效性通过使用健体适配器与健康受试者在跑步机上进行的步态实验来证明。
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