A general iterative technique for approximate throughput computation of stochastic marked graphs

J. Campos, J. Colom, H. Jungnitz, M. Suárez
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引用次数: 22

Abstract

A general iterative technique for approximate throughput computation of stochastic strongly connected marked graphs is presented. It generalizes a previous technique based on net decomposition through a single input-single output cut, allowing the split the model through any cut. The approach has two basic foundations. First, a deep understanding of the qualitative behavior of marked graphs leads to a general decomposition technique. Second, after the decomposition phase, an iterative response time approximation method is applied for the computation of the throughput. Experimental results on several examples generally have an error of less than 3%. The state space is usually reduced by more than one order of magnitude; therefore, the analysis of otherwise intractable systems is possible.<>
随机标记图近似吞吐量计算的一般迭代技术
提出了随机强连通标记图近似吞吐量计算的一种通用迭代技术。它通过单个输入-单个输出切割推广了先前基于净分解的技术,允许通过任何切割分割模型。这种方法有两个基本基础。首先,对标记图的定性行为的深刻理解导致了一般的分解技术。其次,在分解阶段之后,采用迭代响应时间逼近法计算吞吐量。几个算例的实验结果误差一般在3%以内。状态空间通常减少一个数量级以上;因此,分析其他难以处理的系统是可能的。
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