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Policy-Aware Service Composition: Predicting Parallel Execution Performance of Composite Services

机译:策略感知服务组合:预测组合服务的并行执行性能

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摘要

With the increasing volume of data to be analysed, one of the challenges in Service Oriented Architecture (SOA) is to make web services efficient in processing large-scale data. Parallel execution and cloud technologies are the keys to speed-up the service invocation. In SOA, service providers typically employ policies to limit parallel execution of the services based on arbitrary decisions. In order to attain optimal performance improvement, users need to adapt to the services policies. A composite service is a combination of several atomic services provided by various providers. To use parallel execution for greater composite service efficiency, the degree of parallelism (DOP) of the composite services need to be optimized by considering the policies of all atomic services. We propose a model that embeds service policies into formulae to calculate composite service performance. From the calculation, we predict the optimal DOP for the composite service, where it attains the best performance. Extensive experiments are conducted on real-world translation services. We use several measures such as mean prediction error (MPE), mean absolute deviation (MAD) and tracking signal (TS) to evaluate our model. The analysis results show that our proposed model has good prediction accuracy in identifying optimal DOPs for composite services.
机译:随着要分析的数据量的增加,面向服务的体系结构(SOA)面临的挑战之一是使Web服务高效地处理大规模数据。并行执行和云技术是加快服务调用速度的关键。在SOA中,服务提供者通常会根据任意决定采用策略来限制服务的并行执行。为了获得最佳的性能改进,用户需要适应服务策略。组合服务是由各种提供程序提供的几种原子服务的组合。为了使用并行执行以提高组合服务的效率,需要考虑所有原子服务的策略来优化组合服务的并行度(DOP)。我们提出了一个模型,该模型将服务策略嵌入公式中以计算综合服务性能。通过计算,我们可以预测组合服务获得最佳性能的最佳DOP。在现实世界的翻译服务上进行了广泛的实验。我们使用诸如均值预测误差(MPE),均值绝对偏差(MAD)和跟踪信号(TS)的多种度量来评估我们的模型。分析结果表明,我们的模型在确定复合服务的最佳DOP方面具有良好的预测精度。

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