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Stochastic Estimation of Arm Mechanical Impedance During Robotic Stroke Rehabilitation

Jerome J. Palazzolo, Mark Ferraro, Hermano Igo Krebs, Daniel Lynch, Bruce T. Volpe, Neville Hogan

Year
2007
Citations
85

Abstract

This paper presents a stochastic method to estimate the multijoint mechanical impedance of the human arm suitable for use in a clinical setting, e.g., with persons with stroke undergoing robotic rehabilitation for a paralyzed arm. In this context, special circumstances such as hypertonicity and tissue atrophy due to disuse of the hemiplegic limb must be considered. A low-impedance robot was used to bring the upper limb of a stroke patient to a test location, generate force perturbations, and measure the resulting motion. Methods were developed to compensate for input signal coupling at low frequencies apparently due to human-machine interaction dynamics. Data was analyzed by spectral procedures that make no assumption about model structure. The method was validated by measuring simple mechanical hardware and results from a patient's hemiplegic arm are presented.

Keywords

RehabilitationContext (archaeology)Mechanical impedanceStroke (engine)Rehabilitation roboticsRobotic armPhysical medicine and rehabilitationComputer scienceRobotElectrical impedance

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