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Hierarchical Request-Size-Aware Flash Translation Layer Based on Page-Level Mapping

机译:基于页面级映射的分层请求 - 大小感知闪光翻译层

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Owing to the increasing Internet population, there has been an explosion in the amount of digital data generated and also an increase in data complexity. This trend is called big data paradigm. As the Internet of Things (IoT) takes center stage, the growth of data will continue to increase. Therefore, the demand for mass storage devices that have high access speed is increasing. Industry has been paying attention to flash memories that can process large amounts of data at high speed. It will be a good alternative for storing and processing ever-increasing amounts of data because of low power consumption, high shock resistance, portability and fast access speed. However, the write speed is about 10-20 times slower than the read speed in flash memory. In addition, write operations are not allowed to be performed with in-place updates. Garbage collection mechanism is proposed in order to solve the problem incurred by the not-in place update property of write operations. However, garbage collection mechanism unavoidably causes overhead of additional internal operations, which leads to performance degradation. In this paper, to prevent performance degradation caused by garbage collection, we propose a request-size-aware flash translation layer (RSaFTL) and a hierarchical request-size-aware flash translation layer (HiRSaFTL). They are designed based on page-level address translation. In RSaFTL and HiRSaFTL, page-sized data with high temporal locality cluster into a special area called active blocks by exploiting the property of realistic traces. As a result of the experiments, RSaFTL and HiRSaFTL reduce the number of pages migrated during garbage collections by up to 17.9% and 21.3%, respectively, compared with pure page-level flash transition layer.
机译:由于互联网人口越来越多,产生了数字数据量的爆炸性,并且数据复杂性的增加也是增加。这种趋势称为大数据范式。随着事物互联网(物联网)采取中心阶段,数据的增长将继续增加。因此,对具有高接近速度的大容量存储装置的需求增加。行业一直关注闪存,可以高速处理大量数据。由于低功耗,高抗冲击性,便携性和快速访问速度,这将是存储和处理不断增加的数据量的替代方案。但是,写入速度比闪存中的读取速度慢约10-20倍。此外,不允许使用就地更新执行写操作。提出了垃圾收集机制,以解决写入操作的Not-In更新属性所产生的问题。然而,垃圾收集机制不可避免地导致额外的内部操作的开销,这导致性能下降。在本文中,为了防止由垃圾收集引起的性能劣化,我们提出了一个请求大小感知的闪光翻译层(RSAFTL)和分层请求大小感知闪光翻译层(HIRSAFTL)。它们是根据页面级地址转换设计的。在rsaftl和hirsaftl中,通过利用现实迹象的属性,使用高时间位置群集的页面大小的数据到一个名为活动块的特殊区域。由于实验,RSAFTL和HIRSAFTL与垃圾收集期间迁移的页数分别在与纯页面级闪光转换层相比,分别在垃圾收集期间迁移的页数高达17.9%和21.3%。

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