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Extended GSPN modeling and reduction algorithms for rapid performance analysis of service composition system

机译:扩展的GSPN建模和归约算法,用于服务组合系统的快速性能分析

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A service composition system can be constructed via integration and collaboration of many component services. The system performance needs to be obtained rapidly for the purpose of dynamic and adaptive management. An EGSPN (Extended Generalized Stochastic Petri Net) model is presented to reflect the service composition system with complex timing constraints in a compact and comprehensible manner. The various categories of timing constraints are associated to place, transition and arc of EGSPN respectively. Furthermore, in order to accelerate the calculation of system performance and to avoid the explosion of state space, a set of model reduction rules are presented. The corresponding reduction algorithms are designed to achieve automatic model reduction. The experiments based on multiform models indicate that a large model can be reduced within satisfying period. The algorithms can help to make rapid performance analysis of service composition system.
机译:可以通过许多组件服务的集成和协作来构建服务组合系统。为了动态和自适应管理,需要快速获得系统性能。提出了一种EGSPN(扩展广义随机Petri网)模型,以紧凑且可理解的方式反映具有复杂时序约束的服务组合系统。时序约束的各种类别分别与EGSPN的位置,过渡和弧线相关。此外,为了加快系统性能的计算并避免状态空间的爆炸,提出了一组模型约简规则。设计了相应的归约算法以实现自动模型归约。基于多形式模型的实验表明,在满意的时间内可以缩小大型模型。该算法有助于对服务组合系统进行快速性能分析。

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