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KADLEC, P. ŠEDĚNKA, V.
Original Title
Particle Swarm Optimization for Problems with Variable Number of Dimensions
Type
journal article in Web of Science
Language
English
Original Abstract
Some real-life optimization problems show apart from the dependence on the combination of state variables also the dependence on the complexity of the model describing the problem. Changing model complexity implies changing the number of degrees of freedom (the number of decision space dimensions). A new method called Particle Swarm Optimization for Variable Number of Dimensions is developed here. The well-known particle swarm optimization procedure is modified to handle spaces with variable number of dimensions within a single run. Some well-known benchmark problems are modified to depend on the number of dimensions. Novel performance metrics are defined in the article to evaluate convergence properties of the method. Some recommendations for setting the optimization are made according to results of the method on the proposed benchmark test-suite. The method is compared with the conventional swarm strategies able to solve problems with variable number of dimensions.
Keywords
model selection, particle swarm optimization, evolutionary optimization, variable number of dimensions
Authors
KADLEC, P.; ŠEDĚNKA, V.
Released
27. 4. 2017
Publisher
Taylor and Francis
Location
Londýn, UK
ISBN
0305-215X
Periodical
ENGINEERING OPTIMIZATION
Year of study
49
Number
4
State
United Kingdom of Great Britain and Northern Ireland
Pages from
382
Pages to
399
Pages count
18
URL
http://dx.doi.org/10.1080/0305215X.2017.1316845
BibTex
@article{BUT134370, author="Petr {Kadlec} and Vladimír {Šeděnka}", title="Particle Swarm Optimization for Problems with Variable Number of Dimensions", journal="ENGINEERING OPTIMIZATION", year="2017", volume="49", number="4", pages="382--399", doi="10.1080/0305215X.2017.1316845", issn="0305-215X", url="http://dx.doi.org/10.1080/0305215X.2017.1316845" }