Fast memory state synchronization for virtualization-based fault tolerance

Maohua Lu, T. Chiueh
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引用次数: 42

Abstract

migration and thus enables a new form of fault tolerance that is completely transparent to applications and operating systems. While initial prototypes show promise, virtualization-based fault-tolerant architecture still experiences substantial performance overhead especially for data-intensive workloads. The main performance challenge of virtualizationbased fault tolerance is how to synchronize the memory states of the Master and Slave in a way that minimizes the end-to-end impact on the application performance. This paper describes three optimization techniques for memory state synchronization: fine-grained dirty region identification, speculative state transfer, and synchronization traffic reduction using active slave, and presents a comprehensive performance study of these techniques under three realistic workloads, the TPC-E benchmark, the SPECsfs 2008 CIFS benchmark, and a Microsoft Exchange workload. We show that these three techniques can each reduce the amount of end-of-epoch synchronization traffic by a factor of up to 7, 15 and 5, respectively.
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基于虚拟化容错的快速内存状态同步
迁移,从而支持一种对应用程序和操作系统完全透明的新形式的容错。虽然最初的原型显示出了希望,但基于虚拟化的容错架构仍然有很大的性能开销,特别是对于数据密集型工作负载。基于虚拟化的容错的主要性能挑战是如何以最小化对应用程序性能的端到端影响的方式同步主服务器和从服务器的内存状态。本文描述了内存状态同步的三种优化技术:细粒度脏区域识别、推测状态传输和使用主动slave减少同步流量,并在三种实际工作负载(TPC-E基准测试、SPECsfs 2008 CIFS基准测试和Microsoft Exchange工作负载)下对这些技术进行了全面的性能研究。我们表明,这三种技术分别可以将历元结束同步通信量减少多达7、15和5倍。
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