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A Molecular Interactions-Based Social Learning Particle Swarm Optimization Algorithm
- Source :
- IEEE Access, Vol 8, Pp 135661-135674 (2020)
- Publication Year :
- 2020
- Publisher :
- IEEE, 2020.
-
Abstract
- Social learning particle swarm optimization (SL-PSO) allows individuals to learn from others to improve the scalability with easy parameter settings. However, it still suffers from the poor convergence for those multi-modal problems due to the loss of swarm diversity. To improve both the diversity and the convergence, this paper proposes a novel algorithm to apply the mechanism of molecular interactions to SL-PSO, in which the molecular attraction aims to improve the convergence, and the molecular repulsion intends to enhance the diversity. In the experiments, we compare our algorithm with the SL-PSO algorithm and other representative PSO and evolutionary algorithms on 49 benchmark functions. The results show the performance of the proposed algorithm is better than that of the SL-PSO algorithm and other representative PSO and evolutionary algorithms on average. This work builds the solid foundation for the integration of the molecular interaction mechanism with PSO and other optimization algorithms.
- Subjects :
- General Computer Science
Computer science
Evolutionary algorithm
MathematicsofComputing_NUMERICALANALYSIS
02 engineering and technology
ComputingMethodologies_ARTIFICIALINTELLIGENCE
diversity
03 medical and health sciences
0302 clinical medicine
0202 electrical engineering, electronic engineering, information engineering
General Materials Science
Molecular interactions
learning
particle swarm optimization
General Engineering
Swarm behaviour
Particle swarm optimization
Social learning
Benchmark (computing)
020201 artificial intelligence & image processing
lcsh:Electrical engineering. Electronics. Nuclear engineering
Convergence
Algorithm
lcsh:TK1-9971
030217 neurology & neurosurgery
molecular interactions
Subjects
Details
- Language :
- English
- ISSN :
- 21693536
- Volume :
- 8
- Database :
- OpenAIRE
- Journal :
- IEEE Access
- Accession number :
- edsair.doi.dedup.....526697f0099e7ac67b9dc5beaa5e5620