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Thermal Modeling and Management of DRAM Memory Systems

机译:DRAM存储器系统的热建模和管理

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With increasing speed and power density, high-performance memories, including FB-DIMM (Fully Buffered DIMM) and DDR2 DRAM, now begin to require dynamic thermal management (DTM) as processors and hard drives did. The DTM of memories, nevertheless, is different in that it should take the processor performance and power consumption into consideration. Existing schemes have ignored that. In this study, we investigate a new approach that controls the memory thermal issues from the source generating memory activities - the processor. It will smooth the program execution when compared with shutting down memory abruptly, and therefore improve the overall system performance and power efficiency. For multicore systems, we propose two schemes called adaptive core gating and coordinated DVFS. The first scheme activates clock gating on selected processor cores and the second one scales down the frequency and voltage levels of processor cores when the memory is to be overheated. They can successfully control the memory activities and handle thermal emergency. More importantly, they improve performance significantly under the given thermal envelope. Our simulation results show that adaptive core gating improves performance by up to 23.3% (16.3% on average) on a four-core system with FB-DIMM when compared with DRAM thermal shutdown; and coordinated DVFS with control-theoretic methods improves the performance by up to 18.5% (8.3% on average).
机译:随着速度和功率密度的提高,高性能存储器(包括FB-DIMM(全缓冲DIMM)和DDR2 DRAM)现在开始需要处理器和硬盘驱动器进行动态热管理(DTM)。但是,内存的DTM有所不同,因为它应该考虑处理器的性能和功耗。现有方案忽略了这一点。在这项研究中,我们研究了一种新方法,该方法可以控制产生内存活动的源(处理器)的内存热问题。与突然关闭内存相比,它将使程序执行更流畅,从而提高整体系统性能和电源效率。对于多核系统,我们提出了两种方案,分别称为自适应核门控和协调DVFS。第一种方案在选定的处理器内核上激活时钟门控,第二种方案在内存过热时按比例缩小处理器内核的频率和电压电平。他们可以成功地控制内存活动并处理紧急情况。更重要的是,它们在给定的温度范围内可以显着提高性能。我们的仿真结果表明,与DRAM热关机相比,在具有FB-DIMM的四核系统上,自适应核心门控可将性能提高23.3%(平均16.3%)。 DVFS与控制理论方法相协调可将性能提高多达18.5%(平均8.3%)。

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