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Convergence analysis of the discrete consensus-based optimization algorithm with random batch interactions and heterogeneous noises

Authors
Ko, DongnamHa, Seung-YealJin, ShiKim, Doheon
Issue Date
Jun-2022
Publisher
World Scientific Publishing Co
Keywords
Consensus; external noise; interacting particle system; random batch interactions; randomly switching network topology
Citation
Mathematical Models and Methods in Applied Sciences, v.32, no.06, pp 1071 - 1107
Pages
37
Indexed
SCIE
SCOPUS
Journal Title
Mathematical Models and Methods in Applied Sciences
Volume
32
Number
06
Start Page
1071
End Page
1107
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/111093
DOI
10.1142/S0218202522500245
ISSN
0218-2025
1793-6314
Abstract
We present stochastic consensus and convergence of the discrete consensus-based optimization (CBO) algorithm with random batch interactions and heterogeneous external noises. Despite the wide applications and successful performance in many practical simulations, the convergence of the discrete CBO algorithm was not rigorously investigated in such a generality. In this work, we introduce a generalized discrete CBO algorithm with a weighted representative point and random batch interactions, and show that the proposed discrete CBO algorithm exhibits stochastic consensus and convergence toward the common equilibrium state exponentially fast under suitable assumptions on system parameters. For this, we recast the given CBO algorithm with random batch interactions as a discrete consensus model with a random switching network topology, and then we use the mixing property of interactions over sufficiently long time interval to derive stochastic consensus and convergence estimates in mean square and almost sure senses. Our proposed analysis significantly improves earlier works on the convergence analysis of CBO models with full batch interactions and homogeneous external noises.
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ERICA 소프트웨어융합대학 (ERICA 수리데이터사이언스학과)
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