实现异构集群的性能一致性

Changxun Wu, R. Burns
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引用次数: 7

摘要

基于哈希的随机化是集群和分布式系统中用于负载管理的强大技术。它提供了统一的分布、高效的寻址、很少的共享状态和可伸缩性。然而,简单的基于哈希的随机化无法处理倾斜和异质性,因此在许多环境中无法实现负载平衡。虚拟处理器是解决简单随机化问题的一种方法。我们评估了异构、共享磁盘集群的另一种负载管理方案。我们的方案使用一种称为自适应非均匀(ANU)随机化的技术[2003]直接调整基于哈希的随机负载放置,并且比虚拟处理器方法更有利。它提供了共享状态较少的虚拟处理器的负载平衡优势。它还自动适应工作负载和集群配置更改,例如故障和恢复以及添加或删除服务器,而无需人工参与。实验结果表明,该方案优于虚拟处理器,并可与现有的负载均衡算法相媲美。它们还表明,我们的系统在移动最小负载的同时,在所有服务器上保持一致的性能。
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Achieving performance consistency in heterogeneous clusters
Hash-based randomization is a powerful technique used in clusters and distributed systems for load management. It offers uniform distribution, efficient addressing, little shared state, and scalability. However, simple hash-based randomization is unable to deal with skew and heterogeneity and, therefore, cannot achieve load balance in many environments. Virtual processors have been proposed as a solution to simple randomization's problem. We evaluate an alternative load management scheme for heterogeneous, shared-disk clusters. Our scheme directly tunes hash-based randomized load placement using a technique called adaptive, nonuniform (ANU) randomization [2003] and compares favorably to the virtual processor approach. It provides the load balancing benefits of virtual processors with less shared state. It also automatically adapts to workload and cluster configuration changes, such as failure and recovery and adding or removing servers, without human involvement. Experimental results show that our scheme outperforms virtual processors and performs comparably to prescient load-balancing algorithms. They also show that our system maintains consistent performance across all servers while moving a minimal amount of load.
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