DocumentCode :
1331875
Title :
Optimal digital filtering for tremor suppression
Author :
Gonzalez, Juan G. ; Heredia, Edwin A. ; Rahman, Tariq ; Barner, Kenneth E. ; Arce, Gonzalo R.
Author_Institution :
Dept. of Electr. & Comput. Eng., Delaware Univ., Newark, DE, USA
Volume :
47
Issue :
5
fYear :
2000
fDate :
5/1/2000 12:00:00 AM
Firstpage :
664
Lastpage :
673
Abstract :
Remote manually operated tasks such as those found in teleoperation, virtual reality, or joystick-based computer access, require the generation of an intermediate electrical signal which is transmitted to the controlled subsystem (robot arm, virtual environment, or a cursor in a computer screen). When human movements are distorted, for instance, by tremor, performance can be improved by digitally filtering the intermediate signal before it reaches the controlled device. This paper introduces a novel tremor filtering framework in which digital equalizers are optimally designed through pursuit tracking task experiments. Due to inherent properties of the man-machine system, the design of tremor suppression equalizers presents two serious problems: 1) performance criteria leading to optimizations that minimize mean-squared error are not efficient for tremor elimination and 2) movement signals show ill-conditioned autocorrelation matrices, which often result in useless or unstable solutions. To address these problems, a new performance indicator in the context of tremor is introduced, and the optimal equalizer according to this new criterion is developed, III-conditioning of the autocorrelation matrix is overcome using a novel method which we call pulled-optimization. Experiments performed with artificially induced vibrations and a subject with Parkinson´s disease show significant improvement in performance. Additional results, along with MATLAB source code of the algorithms, and a customizable demo for PC joysticks, are available on the Internet at http://tremor-suppression.com.
Keywords :
digital filters; diseases; equalisers; interactive devices; man-machine systems; muscle; neurophysiology; virtual reality; MATLAB source code; PC joysticks; Parkinson´s disease; artificially induced vibrations; autocorrelation matrix; computer screen; controlled subsystem; customizable demo; digital equalizers; http://tremor-suppression.com; human movements; ill-conditioned autocorrelation matrices; intermediate electrical signal; intermediate signal; joystick-based computer access; man-machine system; mean-squared error; movement signals; optimal digital filtering; optimal equalizer; performance criteria; pulled-optimization; pursuit tracking task experiments; remote manually operated tasks; robot arm; teleoperation; tremor suppression; virtual environment; virtual reality; Autocorrelation; Digital filters; Distortion; Equalizers; Filtering; Man machine systems; Robot control; Signal generators; Virtual environment; Virtual reality; Algorithms; Computer Peripherals; Equipment Design; Humans; Parkinson Disease; Robotics; Signal Processing, Computer-Assisted; Tremor; Vibration;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/10.841338
Filename :
841338
Link To Document :
بازگشت