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Generalized swarm intelligence algorithms with domain-specific heuristics

Matrenin, P.Myasnichenko, V.Sdobnyakov, N.Sokolov, D.Fidanova, S.Kirilov, L.Mikhov, R.
IAES International Journal of Artificial Intelligence (IJ-AI) (Sinta 1)Vol. 0 No. 01 Maret 2021
DOI10.11591/ijai.v10.i1.pp157-165

Abstrak

In recent years, hybrid approaches on population-based algorithms are more often applied in industrial settings. In this paper, we present the approach of a combination of universal, problem-free Swarm Intelligence (SI) algorithms with simple deterministic domain-specific heuristic algorithms. The approach focuses on improving efficiency by sharing the advantages of domain-specific heuristic and swarm algorithms. A heuristic algorithm helps take into account the specifics of the problem and effectively translate the positions of agents (particle, ant, bee) into the problem's solution. And a Swarm algorithm provides an increase in the adaptability and efficiency of the approach due to stochastic and self-organized properties. We demonstrate this approach on two non-trivial optimization tasks: scheduling problem and finding the minimum distance between 3D isomers.

Kata Kunci

Domain-specific heuristicJob-shop schedulingNanoclustersParticle swarm optimizationPotential energy surfaceSwarm intelligence

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Generalized swarm intelligence algorithms with domain-specific heuristics | IAES International Journal of Artificial Intelligence (IJ-AI) | Publiora