软资源分配对n层应用可扩展性的影响

Qingyang Wang, Simon Malkowski, D. Jayasinghe, Pengcheng Xiong, C. Pu, Yasuhiko Kanemasa, Motoyuki Kawaba, L. Harada
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引用次数: 55

摘要

良好的性能和效率(例如,就高质量的服务和资源利用而言)是云环境中的重要目标。通过对n层应用程序基准测试(RUBBoS)的广泛测量,我们发现整体系统性能对适当分配软资源(例如,服务器线程池大小)非常敏感。不适当的软资源分配会迅速显著降低应用程序的整体性能。具体地说,线程池的分配不足和过度分配都可能导致其他资源的瓶颈,因为存在重要的依赖关系。由于这些相关的瓶颈,我们已经观察到一些不明显的现象。例如,Apache web服务器中的线程数量可能会限制总的有用吞吐量,从而导致C-JDBC集群中间件的CPU利用率随着工作负载的增加而降低。我们提供了一种实用的迭代解决方案,通过运算排队定律和测量数据的算法组合来应对这一挑战。我们的研究结果表明,软资源分配在复杂系统(如云环境中的n层应用程序)的性能可扩展性中起着核心作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Impact of Soft Resource Allocation on n-Tier Application Scalability
Good performance and efficiency, in terms of high quality of service and resource utilization for example, are important goals in a cloud environment. Through extensive measurements of an n-tier application benchmark (RUBBoS), we show that overall system performance is surprisingly sensitive to appropriate allocation of soft resources (e.g., server thread pool size). Inappropriate soft resource allocation can quickly degrade overall application performance significantly. Concretely, both under-allocation and over-allocation of thread pool can lead to bottlenecks in other resources because of non-trivial dependencies. We have observed some non-obvious phenomena due to these correlated bottlenecks. For instance, the number of threads in the Apache web server can limit the total useful throughput, causing the CPU utilization of the C-JDBC clustering middleware to decrease as the workload increases. We provide a practical iterative solution approach to this challenge through an algorithmic combination of operational queuing laws and measurement data. Our results show that soft resource allocation plays a central role in the performance scalability of complex systems such as n-tier applications in cloud environments.
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