MO2TOS: Multi-Fidelity Optimization with Ordinal Transformation and Optimal Sampling

Author:

Xu Jie1,Zhang Si2,Huang Edward1,Chen Chun-Hung1,Lee Loo Hay3,Celik Nurcin4

Affiliation:

1. Department of System Engineering and Operations Research, George Mason University, Fairfax, VA 22030, United States

2. Department of Management Science and Engineering, Shanghai University, Shanghai 200444, China

3. Department of Industrial and Systems Engineering, The National University of Singapore, Kent Ridge 119260, Singapore

4. Department of Industrial Engineering, The University of Miami, Coral Gables, FL 33146, USA

Abstract

Simulation optimization can be used to solve many complex optimization problems in automation applications such as job scheduling and inventory control. We propose a new framework to perform efficient simulation optimization when simulation models with different fidelity levels are available. The framework consists of two novel methodologies: ordinal transformation (OT) and optimal sampling (OS). The OT methodology uses the low-fidelity simulations to transform the original solution space into an ordinal space that encapsulates useful information from the low-fidelity model. The OS methodology efficiently uses high-fidelity simulations to sample the transformed space in search of the optimal solution. Through theoretical analysis and numerical experiments, we demonstrate the promising performance of the multi-fidelity optimization with ordinal transformation and optimal sampling (MO2TOS) framework.

Publisher

World Scientific Pub Co Pte Lt

Subject

Management Science and Operations Research,Management Science and Operations Research

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