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An in-depth study of next generation interface for emerging non-volatile memories

机译:对新一代界面进行新兴的非易失性记忆的深入研究

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Non-Volatile Memory Express (NVMe) is designed with the goal of unlocking the potential of low-latency, randomaccess, memory-based storage devices. Specifically, NVMe employs various rich communication and queuing mechanism that can ideally schedule four billion I/O instructions for a single storage device. To explore NVMe with assorted user scenarios, we model diverse interface-level design parameters such as PCI Express, NVMe protocol, and different rich queuing mechanisms by considering a wide spectrum of host-level system configurations. In this work, we also assemble a comprehensive memory stack with different types of emerging NVM technologies, which can give us detailed NVMe related statistics like I/O request lifespans and I/O thread-related parallelism. Our evaluation results reveal that, i) while NVMe handshaking is light-weight for flash memory that uses block-based accesses (Block NVM), it can impose tremendous overheads for memristor technology (DRAM-like NVM), ii) in contrast to the common expectation, the performance of an NVMe-equipped system may not improve in a scalable fashion as the queue depth and the number of queues increase, and iii) more- and deeperqueue systems atop a Block NVM can significantly suffer from tremendous host-side memory requirements, whereas a DRAMlike NVM can cause frequent system stalls due to NVMe's inefficient interrupt service routine.
机译:非易失性存储器Express(NVME)旨在启动低延迟,随机性,基于内存存储设备的潜力的目标。具体而言,NVME采用各种丰富的通信和排队机制,理想地可以安排单个存储设备的四亿I / O指令。为了探索NVME与什锦用户方案,我们通过考虑广频的主级系统配置,模拟不同的接口级设计参数,如PCI Express,NVME协议和不同的额排排队机制。在这项工作中,我们还可以组装具有不同类型的新兴NVM技术的全面的内存堆栈,这可以给我们详细的NVME相关统计数据,如I / O请求寿命和I / O与I / O线程相关的并行性。我们的评价结果​​表明,I)虽然NVME握手是使用基于块的访问(块NVM)的闪存的轻量级,但它可以对比的映射器技术(DRAM-Lime NVM),ii)强加巨大的开销常见期望,配备NVME的系统的性能可能不会以可扩展的方式改进,因为队列深度和III的队列数量增加,而III)块NVM的较高和较高的系统可以显着遭受巨大的主机侧存储器要求,而DRAMLIKE NVM由于NVME的低效中断服务程序而导致频繁的系统摊位。

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