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Alleviating Hot Data Write Back Effect for Shingled Magnetic Recording Storage Systems

机译:减轻带状磁记录存储系统的热数据回写效应

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Shingled magnetic recording (SMR) is a novel technology that can significantly increase the disk capacity and reduce the cost. However, this new technology leads to write constraint that prohibits random writes to SMR disks. In order to solve this, current solutions utilize a persistent cache (PC) to change random writes to sequential ones. By doing this, nevertheless, the hot-data write-back effect will be triggered which inevitably incurs extra read-modify-write (RMW) operations. This paper presents a cache management scheme called dual-buffer to manage the overall SMR space, by which the PC is partitioned into the persistent buffer and the filter buffer. It leaves hot data in the filter buffer and moves cold data back to the SMR disk so that the hot data write-back effect can be alleviated. Since the PC may contain a large amount of valid data, dual-buffer also presents a prediction-based dynamic configuration strategy so hot data can be cached as much as possible. We conducted a series of experiments with synthetic traces. Experimental results show that our dual-buffer scheme can shorten the average response time by 51.66% on average and reduce the total number of RMW operations by 98.76% on average compared to the previous work.
机译:带状磁记录(SMR)是一项新颖的技术,可以显着增加磁盘容量并降低成本。但是,这项新技术导致禁止写随机写入SMR磁盘的写约束。为了解决此问题,当前的解决方案利用持久性高速缓存(PC)将随机写入更改为顺序写入。但是,通过这样做,将触发热数据回写效应,这不可避免地会引起额外的读-修改-写(RMW)操作。本文提出了一种称为双缓冲区的高速缓存管理方案,以管理整个SMR空间,通过该方案,PC可分为持久性缓冲区和过滤器缓冲区。它将热数据留在过滤器缓冲区中,并将冷数据移回SMR磁盘,以便减轻热数据回写的影响。由于PC可能包含大量有效数据,因此双缓冲区还提供了基于预测的动态配置策略,因此可以尽可能多地缓存热数据。我们用合成痕迹进行了一系列实验。实验结果表明,与以前的工作相比,我们的双缓冲区方案平均可以将平均响应时间缩短51.66%,并将RMW操作的总数平均减少98.76%。

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