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The Virtual Write Queue: Coordinating DRAM and Last-Level Cache Policies

机译:虚拟写队列:协调DRAM和最后一级缓存策略

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In computer architecture, caches have primarily been viewed as a means to hide memory latency from the CPU. Cache policies have focused on anticipating the CPU's data needs, and are mostly oblivious to the main memory. In this paper, we demonstrate that the era of many-core architectures has created new main memory bottlenecks, and mandates a new approach: coordination of cache policy with main memory characteristics. Using the cache for memory optimization purposes, we propose a Virtual Write Queue which dramatically expands the memory controller's visibility of processor behavior, at low implementation overhead. Through memory-centric modification of existing policies, such as scheduled writebacks, this paper demonstrates that performance-limiting effects of highly-threaded architectures can be overcome. We show that through awareness of the physical main memory layout and by focusing on writes, both read and write average latency can be shortened, memory power reduced, and overall system performance improved. Through full-system cycle-accurate simulations of SPEC cpu2006, we demonstrate that the proposed Virtual Write Queue achieves an average 10.9% system-level throughput improvement on memory-intensive workloads, along with an overall reduction of 8.7% in memory power across the whole suite.
机译:在计算机架构中,缓存主要被视为隐藏CPU内存延迟的方法。缓存策略侧重于预期CPU的数据需求,并且主要忘记主内存。在本文中,我们证明了许多核心架构的时代已经创建了新的主内存瓶颈,并制定了一种新方法:具有主存储器特性的缓存策略的协调。使用缓存进行内存优化目的,我们提出了一种虚拟写入队列,该队列在低实现开销时大大扩展了存储器控制器行为的可见性。通过以内存为中心的修改现有策略,例如预定的回写,本文展示了可以克服高线程架构的性能限制效果。我们表明,通过对物理主存储器布局的认识以及通过重点关注,可以缩短读写平均延迟,降低内存功率,以及整体系统性能提高。通过全系统循环精确模拟规范CPU2006,我们证明了建议的虚拟写入队列实现了对内存密集型工作负载的平均10.9%的系统级吞吐量改进,以及整个内存电源的总体减少了8.7%套房。

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