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Moving-window dynamic optimization: design of stimulation profiles for walking.

作者信息

Dosen Strahinja, Popović Dejan B

机构信息

Center for Sensory Motor Interaction, Aalborg University, Aalborg 9220, Denmark.

出版信息

IEEE Trans Biomed Eng. 2009 May;56(5):1298-309. doi: 10.1109/TBME.2009.2013935. Epub 2009 Feb 6.

DOI:10.1109/TBME.2009.2013935
PMID:19203884
Abstract

The overall goal of the research is to improve control for electrical stimulation-based assistance of walking in hemiplegic individuals. We present the simulation for generating offline input (sensors)-output (intensity of muscle stimulation) representation of walking that serves in synthesizing a rule-base for control of electrical stimulation for restoration of walking. The simulation uses new algorithm termed moving-window dynamic optimization (MWDO). The optimization criterion was to minimize the sum of the squares of tracking errors from desired trajectories with the penalty function on the total muscle efforts. The MWDO was developed in the MATLAB environment and tested using target trajectories characteristic for slow-to-normal walking recorded in healthy individual and a model with the parameters characterizing the potential hemiplegic user. The outputs of the simulation are piecewise constant intensities of electrical stimulation and trajectories generated when the calculated stimulation is applied to the model. We demonstrated the importance of this simulation by showing the outputs for healthy and hemiplegic individuals, using the same target trajectories. Results of the simulation show that the MWDO is an efficient tool for analyzing achievable trajectories and for determining the stimulation profiles that need to be delivered for good tracking.

摘要

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