SOCRATES: Simulation Optimization with Correlated Replicas and Adaptive Trajectory Evaluations
Haoting Zhang, Haoxian Chen, Donglin Zhan, Hanyang Zhao, Henry Lam, Wenpin Tang, David Yao, Zeyu Zheng

TL;DR
SOCRATES introduces an LLM-driven, adaptive two-stage framework for simulation optimization, automating system modeling and algorithm selection to improve efficiency and customization in complex stochastic systems.
Contribution
It presents a novel two-stage approach using LLMs to automate system modeling and optimize simulation algorithms adaptively, enhancing efficiency and flexibility.
Findings
Effective system structure discovery from textual descriptions.
Sample-efficient evaluation of baseline algorithms.
Adaptive hybrid optimization schedule improves performance.
Abstract
The field of simulation optimization (SO) encompasses various methods developed to optimize complex, expensive-to-sample stochastic systems. Established methods include, but are not limited to, ranking-and-selection for finite alternatives and surrogate-based methods for continuous domains, with broad applications in engineering and operations management. The recent advent of large language models (LLMs) offers a new paradigm for exploiting system structure and automating the strategic selection and composition of these established SO methods into a tailored optimization procedure. This work introduces SOCRATES (Simulation Optimization with Correlated Replicas and Adaptive Trajectory Evaluations), a novel two-stage procedure that leverages LLMs to automate the design of tailored SO algorithms. The first stage constructs an ensemble of digital replicas of the real system. An LLM is…
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Taxonomy
TopicsSimulation Techniques and Applications · Advanced Multi-Objective Optimization Algorithms · Metaheuristic Optimization Algorithms Research
