DocumentCode :
3601894
Title :
Design and Evaluation of an Automatic Extraventricular Drainage Control System
Author :
Misgeld, Berno J. E. ; Elixmann, Inga M. ; Fahnster, Lars ; Walter, Marian ; Weinzierl, Martin ; Steudel, Wolf-Ingo ; Leonhardt, Steffen
Author_Institution :
Dept. of Med. Inf. Technol., RWTH Aachen Univ., Aachen, Germany
Volume :
23
Issue :
6
fYear :
2015
Firstpage :
2283
Lastpage :
2292
Abstract :
Until this day, the drainage of cerebrospinal fluid, as necessary in case of an acute increased intracranial pressure, is conducted manually by adjusting the hydrostatic height of an external drainage bag. The associated problems with the manual open-loop control strategy are an increasing pressure error over time periods involving no correction and the inherent risk of an overdrainage, which may occur, for example, after changes of the patient´s upper body inclination angle. In this paper, an automatic control strategy is suggested to alleviate these problems thereby increasing the patient´s safety and the overall quality of the therapy. The automatic controller presented in this paper is designed for our newly developed intelligent external ventricular drainage system. The proposed controller has to guarantee robustness and performance in face of uncertain patient intracranial dynamics and nonlinearities associated with the actuator. The controller is thus designed to guarantee robust performance using a mixed uncertainty modeling approach and extended by a self-scheduling approach to compensate for input nonlinearities. Controller performance is validated in nonlinear simulations, an experimental test setup, and animal experiments, involving pigs with an artificially induced hydrocephalus.
Keywords :
compensation; control nonlinearities; control system synthesis; hydrostatics; medical control systems; open loop systems; patient treatment; robust control; uncertain systems; automatic extraventricular drainage control system design; automatic extraventricular drainage control system evaluation; cerebrospinal fluid; controller design; external drainage bag; hydrostatic height; induced hydrocephalus; input nonlinearity compensation; intelligent external ventricular drainage system; intracranial pressure; mixed uncertainty modeling approach; open-loop control strategy; overdrainage risk; patient safety; patient upper body inclination angle; pressure error; robust performance; self-scheduling approach; therapy quality; uncertain patient intracranial dynamics; Actuators; Cranial pressure; Intracranial system; Medical treatment; Robust control; Uncertainty; External ventricular drainage (EVD); hydrocephalus; intracranial pressure (ICP); robust control; robust control.;
fLanguage :
English
Journal_Title :
Control Systems Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6536
Type :
jour
DOI :
10.1109/TCST.2015.2413377
Filename :
7087388
Link To Document :
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