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Optimal choice of parameters for particle swarm optimization

张丽平俞欢军胡上序

2005浙江大学学报:A卷英文版Engineering被引 16

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摘要

The constriction factor method (CFM) is a new variation of the basic particle swarm optimization (PSO), which has relatively better convergent nature. The effects of the major parameters on CFM were systematically investigated based on some benchmark functions. The constriction factor, velocity constraint, and population size all have significant impact on the performance of CFM for PSO. The constriction factor and velocity constraint have optimal values in practical application, and improper choice of these factors will lead to bad results. Increasing population size can improve the solution quality, although the computing time will be longer. The characteristics of CFM parameters are described and guidelines for determining parameter values are given in this paper.

引用本文(GB/T 7714)

张丽平, 俞欢军, 胡上序. Optimal choice of parameters for particle swarm optimization[J]. 浙江大学学报:A卷英文版, 2005.

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