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Reduced-Space Multi-Fidelity Bayesian Optimization of Process Simulation Models

Niki Triantafyllou, Andrea Bernardi, Maria M. Papathanasiou

Latestcs.CLcs.LGcs.AIcs.CV
arXiv ID
2609.17440 v1
Category
Submitted
2026-09-15

Abstract

Optimizing industrial process flowsheets is often computationally prohibitive due to the high cost of rigorous simulations and the curse of dimensionality inherent in complex design spaces. To address these challenges, we present a reduced-space multi-fidelity Bayesian optimization (RS-MFBO) framework designed for high-dimensional, expensive black-box functions. The approach integrates Global Sensitivity Analysis (GSA) for dimensionality reduction with a fidelity-augmented Gaussian process that captures correlations between low-cost approximations and expensive high-fidelity evaluations. A cost-aware acquisition strategy, augmented with cooldown and promotion mechanisms, adaptively guides the allocation of samples across fidelities. The framework is validated on two distinct industrial process simulators: a plasmid DNA bioprocess in SuperPro Designer and a green fuel synthesis plant in Aspen HYSYS. Results across diverse economic and physical objectives demonstrate that the proposed method substantially reduces the number of high-fidelity simulator evaluations while maintaining competitive optimization performance compared to single-fidelity baselines. These results highlight RS-MFBO as a scalable, simulator-agnostic approach for cost-constrained black-box optimization.

Comment: Accepted at the 20th Learning and Intelligent Optimization Conference (LION 20), 2026. Corrected author version. This version corrects a typo in the mathematical description of the multi-fidelity covariance kernel in Section 3.2

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