Data-driven optimization of reliability using buffered failure probability
Ji-Eun Byun, Johannes O. Royset

TL;DR
This paper introduces a new data-driven reliability optimization method using buffered failure probability, improving computational efficiency and sensitivity analysis in complex, high-dimensional engineering systems.
Contribution
It develops the buffered optimization and reliability method (BORM), a novel approach that enhances efficiency and handles high-dimensional, nonlinear problems in reliability optimization.
Findings
BORM significantly improves computational efficiency.
The method accurately estimates reliability sensitivity.
Demonstrated effectiveness through three numerical examples.
Abstract
Design and operation of complex engineering systems rely on reliability optimization. Such optimization requires us to account for uncertainties expressed in terms of compli-cated, high-dimensional probability distributions, for which only samples or data might be available. However, using data or samples often degrades the computational efficiency, particularly as the conventional failure probability is estimated using the indicator function whose gradient is not defined at zero. To address this issue, by leveraging the buffered failure probability, the paper develops the buffered optimization and reliability method (BORM) for efficient, data-driven optimization of reliability. The proposed formulations, algo-rithms, and strategies greatly improve the computational efficiency of the optimization and thereby address the needs of high-dimensional and nonlinear problems. In addition, an…
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Taxonomy
TopicsProbabilistic and Robust Engineering Design · Reliability and Maintenance Optimization · Statistical Distribution Estimation and Applications
