DocumentCode :
1637801
Title :
An approach to stopping criteria for multi-objective optimization evolutionary algorithms: The MGBM criterion
Author :
Martí, Luis ; García, Jesus ; Berlanga, Antonio ; Molina, José M.
Author_Institution :
Dept. of Inf., Univ. Carlos III de Madrid, Leganes
fYear :
2009
Firstpage :
1263
Lastpage :
1270
Abstract :
In this work we put forward a comprehensive study on the design of global stopping criteria for multi-objective optimization. We describe a novel stopping criterion, denominated MGBM criterion that combines the mutual domination rate (MDR) improvement indicator with a simplified Kalman filter that is used for evidence gathering process. The MDR indicator, which is introduced along, is a special purpose solution meant for the stopping task. It is capable of gauging the progress of the optimization with a low computational cost and therefore suitable for solving complex or many-objective problems. The viability of the proposal is established by comparing it with some other possible alternatives. It should be noted that, although the criteria discussed here are meant for MOPs and MOEAs, they could be easily adapted to other softcomputing or numerical methods by substituting the local improvement metric with a suitable one.
Keywords :
Kalman filters; evolutionary computation; numerical analysis; optimisation; Kalman filter; evidence gathering process; multiobjective optimization evolutionary algorithms; mutual domination rate improvement indicator; numerical methods; softcomputing; Algorithm design and analysis; Artificial intelligence; Computational efficiency; Current measurement; Design optimization; Evolutionary computation; Informatics; Monitoring; Optimization methods; Proposals;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Evolutionary Computation, 2009. CEC '09. IEEE Congress on
Conference_Location :
Trondheim
Print_ISBN :
978-1-4244-2958-5
Electronic_ISBN :
978-1-4244-2959-2
Type :
conf
DOI :
10.1109/CEC.2009.4983090
Filename :
4983090
Link To Document :
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