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Dynamic service selection with QoS constraints and inter-service correlations using cooperative coevolution

机译:具有协同约束的QoS约束和服务间关联的动态服务选择

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Building business processes by Web services in cloud computing has become the hotspot of service applications. Due to the complexity and uncertainty of business environment, QoS violations of service processes often take place at run-time. To rapidly recover from failures and minimize their impacts on the original execution plan of service processes, dynamic service selection is urgently needed once potential QoS violations are detected. However, existing research works do not fully investigate QoS constraints and inter-service correlations, as well as the breach penalty caused by service adjustment. In this paper, we present a new cooperative coevolutionary approach for dynamic service selection with QoS constraints and inter-service correlations. First, a novel formal model for the dynamic service selection problem with QoS constraints and inter-service correlations is presented. Second, a Double Information based Cooperative Coevolutionary algorithm (DICC) is proposed which uses Potter's cooperative coevolutionary framework and provides both local and global knowledge for the dynamic service selection optimization. Finally, we develop a prototype system to apply our approach and adopt different test cases to show that our DICC approach performs more effectively and efficiently than existing algorithms.
机译:通过Web服务在云计算中构建业务流程已成为服务应用程序的热点。由于业务环境的复杂性和不确定性,经常会在运行时违反服务流程的QoS。为了从故障中快速恢复并最大程度地减少对服务流程的原始执行计划的影响,一旦检测到潜在的QoS违规,就急需动态选择服务。但是,现有的研究工作并未完全研究QoS约束和服务间的相互关系,以及因服务调整而造成的违约金。在本文中,我们提出了一种新的合作协同进化方法,用于具有QoS约束和服务间相关性的动态服务选择。首先,针对服务质量约束和服务间相关性的动态服务选择问题,提出了一种新颖的形式化模型。其次,提出了一种基于双重信息的协同协同进化算法(DICC),该算法利用了Potter的协同协同进化框架,为动态服务选择优化提供了本地和全局知识。最后,我们开发了一个原型系统来应用我们的方法并采用不同的测试案例,以证明我们的DICC方法比现有算法更有效地执行。

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