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Alita: Comprehensive Performance Isolation through Bias Resource Management for Public Clouds

机译:Alita:通过偏见的公共云管理资源管理综合性能隔离

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The tenants of public cloud platforms share hard-ware resources on the same node, resulting in the potential for performance interference (or malicious attacks). A tenant is able to degrade the performance of its neighbors on the same node significantly through overuse of the shared memory bus, last level cache (LLC)/memory bandwidth, and power. To eliminate such unfairness we propose Alita, a runtime system consisting of an online interference identifier and adaptive interference eliminator. The interference identifier monitors hardware and system-level event statistics to identify resource polluters. The eliminator improves the performance of normal applications by throttling only the resource usage of polluters. Specifically, Alita adopts bus lock sparsification, bias LLC/bandwidth isolation, and selective power throttling to throttle the resource usage of polluters. Results for an experimental platform and in-production cloud platform with 30,000 nodes demonstrate that Alita significantly improves the performance of co-located virtual machines in the presence of resource polluters based on system-level knowledge.
机译:公共云平台的租户在同一节点上共享硬件资源,从而导致性能干扰(或恶意攻击)。租户能够通过过度使用共享内存总线,最后级别高速缓存(LLC)/内存带宽和电源,显着降低相同节点上的邻居在同一节点上的性能。为了消除此类不公平,我们提出了Alita,该运行时系统由在线干扰标识符和自适应干扰消除器组成。干扰标识符监视硬件和系统级事件统计信息以识别资源污染物。 Eliminator通过仅限于污染者的资源使用来提高正常应用的性能。具体而言,Alita采用总线锁定稀疏,偏置LLC /带宽隔离,以及选择性功率限制,以节流污染器的资源使用。实验平台和生产中的云平台具有30,000个节点的结果表明,基于系统级知识的资源污染物,Alita显着提高了共同虚拟机的性能。

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