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Energy Aware Persistence: Reducing the Energy Overheads of Persistent Memory

机译:能量感知持久性:减少持久内存的能量开销

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Next generation byte addressable nonvolatile memory (NVM) technologies like PCM are attractive for end-user devices as they offer memory scalability as well as fast persistent storage. In such environments, NVM's limitations of slow writes and high write energy are magnified for applications that need atomic, consistent, isolated and durable (ACID) updates. This is because, for satisfying correctness (ACI), application state must be frequently flushed from all intermediate buffers, including processor cache, and to support durability (D) guarantees, that state must be logged. This increases NVM access and more importantly results in additional CPU instructions. This paper proposes Energy Aware Persistence (EAP). To develop EAP, we first show that the energy related overheads for maintaining durability are significant. We then propose energy-efficient durability principles that mitigate those costs, an example being flexible logging that switch between performance and energy-efficient modes and a memory management technique that trades capacity for energy. Finally, we propose relaxed durability (ACI-RD) mechanism used under critical low energy conditions that do not affect correctness. The initial results for several realistic applications and benchmark show up to 2x reduction in CPU and NVM energy usage relative to a traditional ACID-based persistence.
机译:诸如PCM之类的下一代字节可寻址非易失性存储器(NVM)技术对最终用户设备具有吸引力,因为它们可提供内存可伸缩性以及快速的持久性存储。在这样的环境中,对于需要原子,一致,隔离和持久(ACID)更新的应用程序,NVM对慢速写和高写能量的局限性被放大了。这是因为,为了满足正确性(ACI),必须经常从所有中间缓冲区(包括处理器缓存)中清除应用程序状态,并且为了支持持久性(D)保证,必须记录该状态。这增加了NVM的访问,更重要的是导致了其他CPU指令。本文提出了能源感知持久性(EAP)。为了开发EAP,我们首先表明维持寿命所需的与能源有关的开销是巨大的。然后,我们提出了可以降低这些成本的节能耐用​​性原则,例如,灵活的日志记录可以在性能模式和节能模式之间进行切换,而内存管理技术可以以能源为代价进行交换。最后,我们提出了在不影响正确性的关键低能条件下使用的松弛耐久性(ACI-RD)机制。几个实际应用程序和基准测试的初步结果表明,与传统的基于ACID的持久性相比,CPU和NVM能耗降低了2倍。

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