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E³: A Multiobjective Optimization Framework for SLA-Aware Service Composition

机译:E³:SLA感知服务组合的多目标优化框架

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摘要

In Service-Oriented Architecture, each application is often designed as a set of abstract services, which defines its functions. A concrete service(s) is selected at runtime for each abstract service to fulfill its function. Since different concrete services may operate at different quality of service (QoS) measures, application developers are required to select an appropriate set of concrete services that satisfies a given Service-Level Agreement (SLA) when a number of concrete services are available for each abstract service. This problem, the QoS-aware service composition problem, is known NP-hard, which takes a significant amount of time and costs to find optimal solutions (optimal combinations of concrete services) from a huge number of possible solutions. This paper proposes an optimization framework, called E^3, to address the issue. By leveraging a multiobjective genetic algorithm, E^3 heuristically solves the QoS-aware service composition problem in a reasonably short time. The algorithm E^3 proposes can consider multiple SLAs simultaneously and produce a set of Pareto solutions, which have the equivalent quality to satisfy multiple SLAs.
机译:在面向服务的体系结构中,每个应用程序通常被设计为一组抽象服务,这些服务定义了其功能。在运行时为每个抽象服务选择一个或多个具体服务以履行其功能。由于不同的具体服务可能以不同的服务质量(QoS)措施运行,因此当每个摘要有大量具体服务可用时,要求应用程序开发人员选择一组满足给定服务水平协议(SLA)的合适的具体服务。服务。这个问题是QoS感知的服务组合问题,已知为NP-hard,需要大量时间和成本才能从大量可能的解决方案中找到最佳解决方案(具体服务的最佳组合)。本文提出了一个优化框架,称为E ^ 3,以解决该问题。通过利用多目标遗传算法,E ^ 3可以在相当短的时间内启发式解决QoS感知服务组合问题。 E ^ 3提出的算法可以同时考虑多个SLA,并产生一组Pareto解,其质量满足多个SLA。

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