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A Lightweight Method to Evaluate Effect of Approximate Memory with Hardware Performance Monitors

机译:一种使用硬件性能监视器评估近似内存影响的轻量级方法

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The latency and the energy consumption of DRAM are serious concerns because (1) the latency has not improved much for decades and (2) recent machines have huge capacity of main memory. Device-level studies reduce them by shortening the wait time of DRAM internal operations so that they finish fast and consume less energy. Applying these techniques aggressively to achieve approximate memory is a promising direction to further reduce the overhead, given that many data-center applications today are to some extent robust to bit-flips. To advance research on approximate memory, it is required to evaluate its effect to applications so that both researchers and potential users of approximate memory can investigate how it affects realistic applications. However, hardware simulators are too slow to run workloads repeatedly with different parameters. To this end, we propose a lightweight method to evaluate effect of approximate memory. The idea is to count the number of DRAM internal operations that occur to approximate data of applications and calculate the probability of bit-flips based on it, instead of using heavy-weight simulators. The evaluation shows that our system is 3 orders of magnitude faster than cycle accurate simulators, and we also give case studies of evaluating effect of approximate memory to some realistic applications.
机译:DRAM的延迟和能耗非常令人担忧,因为(1)延迟几十年来没有太大改善,并且(2)最近的机器具有巨大的主存储器容量。设备级研究通过缩短DRAM内部操作的等待时间来减少它们,从而使它们快速完成并消耗较少的能量。鉴于当今许多数据中心应用程序在某种程度上对位翻转具有鲁棒性,因此积极地应用这些技术以实现近似的内存是进一步降低开销的有希望的方向。为了推进对近似存储器的研究,需要评估其对应用的影响,以便研究人员和近似存储器的潜在用户都可以研究其如何影响实际应用。但是,硬件模拟器太慢,无法使用不同的参数重复运行工作负载。为此,我们提出了一种轻量级的方法来评估近似内存的效果。这个想法是计算出现在DRAM中的内部操作的数量,以近似于应用程序的数据,并据此计算位翻转的可能性,而不是使用重量级的模拟器。评估表明,我们的系统比周期精确仿真器快3个数量级,并且我们还提供了一些案例研究,以评估近似内存对某些实际应用的影响。

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