NASA NTRS · 20170000828
Fuzzy Logic Controller Stability Analysis Using a Satisfiability Modulo Theories Approach
Abstract
While many widely accepted methods and techniques exist for validation and verification of traditional controllers, at this time no solutions have been accepted for Fuzzy Logic Controllers (FLCs). Due to the highly nonlinear nature of such systems, and the fact that developing a valid FLC does not require a mathematical model of the system, it is quite difficult to use conventional techniques to prove controller stability. Since safety-critical systems must be tested and verified to work as expected for all possible circumstances, the fact that FLC controllers cannot be tested to achieve such requirements poses limitations on the applications for such technology. Therefore, alternative methods for verification and validation of FLCs needs to be explored. In this study, a novel approach using formal verification methods to ensure the stability of a FLC is proposed. Main research challenges include specification of requirements for a complex system, conversion of a traditional FLC to a piecewise polynomial representation, and using a formal verification tool in a nonlinear solution space. Using the proposed architecture, the Fuzzy Logic Controller was found to always generate negative feedback, but inconclusive for Lyapunov stability.
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Arnett, Timothy, Cook, Brandon, Clark, Matthew A., Rattan, Kuldip. 2017-01-09. Fuzzy Logic Controller Stability Analysis Using a Satisfiability Modulo Theories Approach. https://ntrs.nasa.gov/citations/20170000828
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