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Branch-and-bound algorithm for efficient reliability analysis of general coherent systems

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arxiv 2410.22363 v1 pith:WPD2IORF submitted 2024-10-27 math.OC cs.SYeess.SY

classification math.OCcs.SYeess.SY
keywords analysiscoherentsystemsalgorithmgeneralreliabilitysystemthey
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Branch and bound algorithms have been developed for reliability analysis of coherent systems. They exhibit a set of advantages; in particular, they can find a computationally efficient representation of a system failure or survival event, which can be re-used when the input probability distributions change over time or when new data is available. However, existing branch-and-bound algorithms can handle only a limited set of system performance functions, mostly network connectivity and maximum flow. Furthermore, they run redundant analyses on component vector states whose system state can be inferred from previous analysis results. This study addresses these limitations by proposing branch and bound for reliability analysis of general coherent systems} (BRC) algorithm: an algorithm that automatically finds minimal representations of failure/survival events of general coherent systems. Computational efficiency is attained by dynamically inferring importance of component events from hitherto obtained results. We demonstrate advantages of the BRC method as a real-time risk management tool by application to the Eastern Massachusetts highway benchmark network.

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  1. A novel stratified sampler with unbalanced refinement for network reliability assessment

    stat.ME 2025-06 conditional novelty 6.0 of 10

    A refined stratified sampler for network reliability uses cluster-based strata and conditional Bernoulli sampling, with variance reductions shown on power flow and water supply examples.

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