DocumentCode :
2657063
Title :
A neuro fuzzy control algorithm using a new extrapolation methodology
Author :
Vargas, Alex Ortiz ; Giménez-Martínez, V.
Author_Institution :
GRIAL, Univ. Pontificia Balivariana, Medellin, Colombia
Volume :
1
fYear :
2000
fDate :
2000
Firstpage :
444
Abstract :
Describes a new procedure to implement a fuzzy control algorithm, based on an approach to the well-known “fuzzy model-reference learning control” (FMRLC) algorithm, and the use of an artificial neural net (ANN) to improve its initialization. In this approach, according to the spreading matrix (extrapolator), once the current fired rules have been adapted, the adaptation is extrapolated to their neighbors. The non-explored rules near the explored ones are then prepared to be used in the future. The final rule matrix for a given input reference to the plant (a tanker in this case) could then be considered as the desired output for this input reference. So, the whole experience gained by the control could be learned by an ANN, which may be used as an expert to give a rule base initialization to be used in later situations. Various simulations and their results are shown and compared, with and without the ANN, as an example of the performance of this algorithm
Keywords :
extrapolation; fuzzy control; fuzzy neural nets; intelligent control; learning systems; model reference adaptive control systems; neurocontrollers; adaptive algorithm; algorithm performance; artificial neural net; automatic controller; extrapolation methodology; fired rule adaptation; fuzzy model-reference learning control algorithm; intelligent control; neuro-fuzzy control algorithm; nonexplored rules; plant input reference; rule base initialization; rule matrix; simulations; spreading matrix; tanker; Adaptive algorithm; Artificial neural networks; Automatic control; Extrapolation; Fuzzy control; Fuzzy neural networks; Hydraulic actuators; Intelligent control; Inverse problems; Marine vehicles;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Knowledge-Based Intelligent Engineering Systems and Allied Technologies, 2000. Proceedings. Fourth International Conference on
Conference_Location :
Brighton
Print_ISBN :
0-7803-6400-7
Type :
conf
DOI :
10.1109/KES.2000.885852
Filename :
885852
Link To Document :
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