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Uniform-in-time propagation of chaos for Consensus-Based Optimization

Uniform-in-time propagation of chaos for Consensus-Based Optimization

来源:Arxiv_logoArxiv
英文摘要

We study the derivative-free global optimization algorithm Consensus-Based Optimization (CBO), establishing uniform-in-time propagation of chaos as well as an almost uniform-in-time stability result for the microscopic particle system. The proof of these results is based on a novel stability estimate for the weighted mean and on a quantitative concentration inequality for the microscopic particle system around the empirical mean. Our propagation of chaos result recovers the classical Monte Carlo rate, with a prefactor that depends explicitly on the parameters of the problem. Notably, in the case of CBO with anisotropic noise, this prefactor is independent of the problem dimension.

Nicolai Gerber、Franca Hoffmann、Dohyeon Kim、Urbain Vaes

计算技术、计算机技术自动化基础理论

Nicolai Gerber,Franca Hoffmann,Dohyeon Kim,Urbain Vaes.Uniform-in-time propagation of chaos for Consensus-Based Optimization[EB/OL].(2025-05-13)[2025-07-16].https://arxiv.org/abs/2505.08669.点此复制

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