随机Petri网下随机过程的表征

G. Ciardo, R. German, C. Lindemann
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引用次数: 267

摘要

随机Petri网与广义半马尔可夫过程(GSMPs)是同构的,但模拟是其唯一可行的求解方法。作者探索了SPN类的层次结构,其中建模能力降低以换取越来越有效的解决方案。广义随机Petri网(GSPNs)、确定性和随机Petri网(DSPNs)、半马尔可夫随机Petri网(SM-SPNs)、定时Petri网(TPNs)和广义定时Petri网(GTPNs)是这一层次结构中的特殊条目。通过嵌入马尔可夫链的方法(dspn只是这类中的一个例子)和状态离散化的方法获得了如何计算解析解的附加类spn,作者不仅将其应用于连续时间情况(ph型分布),而且还将其应用于离散情况
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A characterization of the stochastic process underlying a stochastic Petri net
Stochastic Petri nets (SPNs) with generally distributed firing times are isomorphic to generalized semi-Markov processes (GSMPs), but simulation is the only feasible approach for their solution. The authors explore a hierarchy of SPN classes where modeling power is reduced in exchange for an increasingly efficient solution. Generalized stochastic Petri nets (GSPNs), deterministic and stochastic Petri nets (DSPNs), semi-Markovian stochastic Petri nets (SM-SPNs), timed Petri nets (TPNs), and generalized timed Petri nets (GTPNs) are particular entries in the hierarchy. Additional classes of SPNs for which it is shown how to compute an analytical solution are obtained by the method of the embedded Markov chain (DSPNs are just one example in this class) and state discretization, which the authors apply not only to the continuous-time case (PH-type distributions), but also to the discrete case.<>
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