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A Regression-Based Analytic Model for Dynamic Resource Provisioning of Multi-Tier Applications

机译:基于回归的多层应用程序动态资源配置分析模型

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The multi-tier implementation has become the industry standard for developing scalable client-server enterprise applications. Since these applications are performance sensitive, effective models for dynamic resource provisioning and for delivering quality of service to these applications become critical. Workloads in such environments are characterized by client sessions of interdependent requests with changing transaction mix and load over time, making model adaptivity to the observed workload changes a critical requirement for model effectiveness. In this work, we apply a regression-based approximation of the CPU demand of client transactions on a given hardware. Then we use this approximation in an analytic model of a simple network of queues, each queue representing a tier, and show the approximation''s effectiveness for modeling diverse workloads with a changing transaction mix over time. Using the TPCW benchmark and its three different transaction mixes we investigate factors that impact the efficiency and accuracy of the proposed performance prediction models. Experimental results show that this regression-based approach provides a simple and powerful solution for efficient capacity planning and resource provisioning of multi-tier applications under changing workload conditions.
机译:多层实现已成为开发可伸缩客户端服务器企业应用程序的行业标准。由于这些应用程序对性能敏感,因此用于动态资源供应以及向这些应用程序提供服务质量的有效模型变得至关重要。在这样的环境中,工作负载的特点是相互依赖的请求的客户端会话,随着时间的推移,事务组合和负载会发生变化,这使得模型对观察到的工作负载的适应性成为模型有效性的关键要求。在这项工作中,我们在给定硬件上应用了基于客户端事务的CPU需求的基于回归的近似值。然后,我们在一个简单的队列网络的分析模型中使用此近似值,每个队列代表一个层,并显示近似值在建模随时间变化的事务混合的各种工作负载方面的有效性。使用TPCW基准及其三种不同的交易组合,我们调查了影响所提出的绩效预测模型的效率和准确性的因素。实验结果表明,这种基于回归的方法为在不断变化的工作负载条件下进行多层应用程序的有效容量规划和资源配置提供了一种简单而强大的解决方案。

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