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Fitting discrete phase-type distribution from censored and truncated observations with pre-specified hazard sequence

机译:从预先指定的危险序列拟合截断和截断的观察分离的离散相位分布

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摘要

Phase-type distribution allows approximation of non-Markovian models, which permits to analyze complex systems under Markovian deterioration. In addition, reliability data is often composed of truncated and censored observations. This paper presents a novel approach that fits a restricted class of discrete phase-type distribution through pre-specified hazard sequence from incomplete observations. Numerical results are shown using Balakrishnan's mimicked power transformers dataset. Furthermore, it can be used to fit transition probabilities of maintenance optimization's Markov decision process models from incomplete reliability data. (C) 2020 Elsevier B.V. All rights reserved.
机译:相型分布允许近似非马尔可夫模型,这允许在马尔科维亚恶化下分析复杂系统。 此外,可靠性数据通常由截断和审查的观察结果组成。 本文介绍了一种新的方法,通过预先观察,通过预先指定的危险序列来拟合限制的离散相位分布。 使用Balakrishnan模仿电力变压器数据集显示了数值结果。 此外,它可用于拟合维护优化的Markov决策过程模型的过渡概率从不完全可靠性数据。 (c)2020 Elsevier B.V.保留所有权利。

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