具有延迟修复的容错系统可靠性模型仿真的自适应重要抽样方案

J. Carrasco
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引用次数: 3

摘要

本文针对具有延迟修复的容错系统的连续时间马尔可夫链模型进行了仿真研究。首先给出了给定重要抽样方案满足有界相对误差性质的充分条件。利用这些充分条件,注意到许多先前提出的重要采样技术,如失效偏置和平衡失效偏置满足该性质。在此基础上,对失效转移距离偏置和平衡失效转移距离偏置两种重要采样方案进行了改进,提出了一种新的重要采样方案,该方案不仅易于实现,而且比简单的失效偏置和平衡失效偏置方案对平衡系统更有效。用实例说明了新的适应重要性抽样方案对平衡和不平衡系统的效率提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Adapted importance sampling schemes for the simulation of dependability models of fault-tolerant systems with deferred repair
This paper targets the simulation of continuous-time Markov chain models of fault-tolerant systems with deferred repair. We start by stating sufficient conditions for a given importance sampling scheme to satisfy the bounded relative error property. Using those sufficient conditions, it is noted that many previously proposed importance sampling techniques such as failure biasing and balanced failure biasing satisfy that property. Then, we adapt the importance sampling schemes failure transition distance biasing and balanced failure transition distance biasing so as to develop new importance sampling schemes which can be implemented with moderate effort and at the same time can be proved to be more efficient for balanced systems than the simpler failure biasing and balanced failure biasing schemes. The increased efficiency for both balanced and unbalanced systems of the new adapted importance sampling schemes is illustrated using examples.
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