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Mean-Field-Analysis of Coding versus Replication in Cloud Storage Systems

机译:云存储系统中编码与复制的均值分析

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摘要

We study cloud-storage systems with a very large number of files stored in a very large number of servers. In such systems, files are either replicated or coded to ensure reliability, i.e., file recovery from server failures. This redundancy in storage can further be exploited to improve system performance (mean file access delay) through appropriate load-balancing (routing) schemes. However, it is unclear whether coding or replication is better from a system performance perspective since the corresponding queueing analysis of such systems is, in general, quite difficult except for the trivial case when the system load asymptotically tends to zero. Here, we study the more difficult case where the system load is not asymptotically zero. Using the fact that the system size is large, we obtain a mean-field limit for the steady-state distribution of the number of file access requests waiting at each server. We then use the mean-field limit to show that, for a given storage capacity per file, coding strictly outperforms replication at all traffic loads while improving reliability. Further, the factor by which the performance improves in the heavy-traffic is at least as large as in the light-traffic case. Finally, we validate these results through extensive simulations.
机译:我们研究了在大量服务器中存储着大量文件的云存储系统。在这种系统中,文件被复制或编码以确保可靠性,即从服务器故障中恢复文件。通过适当的负载平衡(路由)方案,可以进一步利用存储中的这种冗余来提高系统性能(平均文件访问延迟)。但是,从系统性能的角度来看,编码还是复制是否更好尚不明确,因为通常,此类系统的相应排队分析非常困难,除了琐碎的情况(当系统负载渐近趋于零时)。在这里,我们研究更困难的情况,即系统负载不是渐近为零。利用系统规模大这一事实,我们获得了在每个服务器上等待的文件访问请求数量的稳态分布的平均域限制。然后,我们使用均值域限制来表明,对于给定的每个文件存储容量,在提高可靠性的同时,在所有流量负载下编码的性能均严格胜过复制。此外,在交通繁忙的情况下提高性能的因素至少与在交通繁忙的情况下一样大。最后,我们通过广泛的仿真来验证这些结果。

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