DocumentCode :
2511318
Title :
A dynamically evolving learning network for intelligent control
Author :
Crosscope, John R. ; Bonnell, Ronald D.
Author_Institution :
Center for Machine Intelligence, South Carolina Univ., Columbia, SC, USA
fYear :
1988
fDate :
24-26 Aug 1988
Firstpage :
529
Lastpage :
533
Abstract :
A variation on the adaptive learning network (ALN), which is used for dynamic system identification is discussed. The dynamically evolving ALN (DEALN) is self-organizing and operates online to generate a model of a dynamic plant. The network evolves the necessary structure and parameter values to mimic and predict the plant to within a specified tolerance. An intelligent controller can use the DEALN to simulate the plant, perform diagnoses, and plan coarse and fine control strategies. A high-level intelligent planner can also generate and program lower-level control laws to be implemented by the network, much as a human automates a skill. Results of an initial implementation which indicate that an online self-structuring learning network can be developed are presented
Keywords :
adaptive systems; artificial intelligence; identification; learning systems; self-adjusting systems; DEALN; adaptive learning network; adaptive systems; artificial intelligence; dynamic system identification; intelligent control; learning systems; self-structuring learning; Adaptive control; Adaptive systems; Automatic control; Humans; Intelligent control; Intelligent sensors; Machine intelligence; Machine learning; Programmable control; State-space methods;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Control, 1988. Proceedings., IEEE International Symposium on
Conference_Location :
Arlington, VA
ISSN :
2158-9860
Print_ISBN :
0-8186-2012-9
Type :
conf
DOI :
10.1109/ISIC.1988.65487
Filename :
65487
Link To Document :
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