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Predictive Autonomicity of Web Services in the MAWeS Framework | Science Publications

机译:MAWeS框架中Web服务的预测自治性|科学出版物

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> In Web Services designs classical optimization techniques are not applicable. A possible solution to guarantee critical requirements is the use of an autonomic architecture, able to auto-configure and to auto-tune. This study presents MAWeS (MetaPL/HeSSE Autonomic Web Services), a framework whose aim is to support the development of self-optimizing predictive autonomic systems for Web service architectures. It adopts a simulation-based methodology, which allows to predict system performance in different status and load conditions. The predicted results are used for a feedforward control of the system, which self-tunes before the new conditions and the subsequent performance losses are actually observed.
机译: >在Web服务设计中,经典的优化技术不适用。保证关键要求的可能解决方案是使用能够自动配置和自动调整的自主体系结构。这项研究提出了MAWeS(MetaPL / HeSSE自主Web服务),该框架旨在支持针对Web服务体系结构的自优化预测自主系统的开发。它采用基于仿真的方法,可以预测不同状态和负载条件下的系统性能。预测结果用于系统的前馈控制,该控制会在实际观察到新条件和后续性能损失之前进行自我调整。

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