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2024 | OriginalPaper | Chapter

Stochastic Kriging-Based Optimization Applied in Direct Policy Search for Decision Problems in Infrastructure Planning

Authors : Cibelle Dias de Carvalho Dantas Maia, Rafael Holdorf Lopez

Published in: Proceedings of the 6th International Symposium on Uncertainty Quantification and Stochastic Modelling

Publisher: Springer International Publishing

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Abstract

The chapter delves into the innovative use of Stochastic Kriging-based optimization in direct policy search for infrastructure planning problems. It introduces a powerful algorithm, Sequential Kriging Optimization (SKO), which integrates stochastic surrogate modeling and robust optimization techniques to handle uncertain or noisy data efficiently. The SKO method is applied to a generic infrastructure planning problem, where it outperforms traditional methods like the cross-entropy approach by providing more accurate results with fewer computational resources. The chapter also discusses the advantages of using smoothed variance evaluations in the stochastic Kriging framework, which enhances the accuracy of the predictive model. The research highlights the potential of this approach in various fields, including transportation, energy, and water resource management, by showcasing its ability to optimize complex decision problems under uncertainty.

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Metadata
Title
Stochastic Kriging-Based Optimization Applied in Direct Policy Search for Decision Problems in Infrastructure Planning
Authors
Cibelle Dias de Carvalho Dantas Maia
Rafael Holdorf Lopez
Copyright Year
2024
DOI
https://doi.org/10.1007/978-3-031-47036-3_18

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