A decomposition approach for stochastic Petri net models

G. Ciardo, Kishor S. Trivedi
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引用次数: 106

Abstract

The authors present a decomposition approach for the solution of large stochastic Petri nets (SPNs). The overall model consists of a set of submodels whose interactions are described by an import graph. Each node of the graph corresponds to a parametrized SPN submodel and an arc from submodel A to submodel B corresponds to a parameter value that B must receive from A. The quantities exchanged between submodels are based on only three primitives. The import graph is normally cyclic, so the solution method is based on fixed point iteration. The authors apply their technique to the analysis of a flexible manufacturing system.<>
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随机Petri网模型的分解方法
提出了求解大型随机Petri网的一种分解方法。整个模型由一组子模型组成,这些子模型的相互作用由导入图描述。图的每个节点对应于一个参数化的SPN子模型,从子模型a到子模型B的弧对应于B必须从a接收的参数值。子模型之间交换的数量仅基于三个原语。由于导入图通常是循环的,所以求解方法是基于不动点迭代。作者将他们的技术应用于柔性制造系统的分析
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