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Global Optimisation of Black-Box Functions with Generative Models in the Wasserstein Space

P. 2394–2401.
Ramazyan T., Hushchyn M., Derkach D.

We propose a new uncertainty estimator for gradient-free optimisation of black-box simulators using deep generative surrogate models. Optimisation of these simulators is especially challenging for stochastic simulators and higher dimensions. To address these issues, we utilise a deep generative surrogate approach to model the black box response for the entire parameter space. We then leverage this knowledge to estimate the proposed uncertainty based on the Wasserstein distance - the Wasserstein uncertainty. This approach is employed in a posterior agnostic gradient-free optimisation algorithm that minimises regret over the entire parameter space. A series of tests were conducted to demonstrate that our method is more robust to the shape of both the black box function and the stochastic response of the black box than state-of-the-art methods, such as efficient global optimisation with a deep Gaussian process surrogate.

Language: English
Full text
DOI
Keywords: Wasserstein distanceгенеративное моделированиесуррогатное моделированиеМетрика ВассерштейнаSurrogate modellingбезградиентная оптимизацияGenerative ModellingGradient-free optimisation
Publication based on the results of:
Study of Accurate Fast Simulation Models Using Machine Learning Methods: Solutions Tests (2024)

In book

ECAI 2024. 27th European Conference on Artificial Intelligence, October 19 – 24 October 2024, Santiago de Compostela, Spain – Including 13th Conference on Prestigious Applications of Intelligent Systems (PAIS 2024)
IOS Press, 2024.
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