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Runtime Thermal Management for 3-D Chip-Multiprocessors With Hybrid SRAM/MRAM L2 Cache

机译:具有混合SRAM / MRAM L2高速缓存的3-D芯片多处理器的运行时热管理

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Nonvolatile memory such as magnetic RAM (MRAM) offers high cell density and low leakage power while suffering from long write latency and high write energy, compared with SRAM. 3-D integration technology using through-silicon vias enables stacking disparate memory technologies (e.g., SRAM and MRAM) together onto chip-multiprocessors (CMPs). The use of hybrid memories as an on-chip cache can take advantage of the best characteristics that each technology offers. However, the inherent high power density and heat removal limitation in 3-D integrated circuits may incur temperature-related problems. In this paper, we propose a runtime thermal management method for CMPs with the 3-D stacked hybrid SRAM/MRAM L2 cache. The proposed method combines dynamic cache management such as resource allocation, way-based power gating, and data migration with dynamic voltage and frequency scaling of processing cores in a temperature- and energy-aware manner. Experimental results show that the proposed runtime method with the 3-D stacked hybrid L2 cache offers up to 107.37% (55.28% on average) performance improvement and 88.47% (47.65% on average) energy efficiency improvement compared with existing thermal management methods with 3-D stacked SRAM-based L2 cache.
机译:与SRAM相比,诸如磁RAM(MRAM)之类的非易失性存储器具有较高的单元密度和较低的泄漏功率,同时具有较长的写入延迟和较高的写入能量。使用硅通孔的3-D集成技术可将不同的存储技术(例如SRAM和MRAM)堆叠在一起到芯片多处理器(CMP)上。将混合存储器用作片上缓存可以利用每种技术提供的最佳特性。但是,3-D集成电路固有的高功率密度和散热限制可能会引起与温度相关的问题。在本文中,我们提出了一种具有3-D堆叠混合SRAM / MRAM L2高速缓存的CMP运行时热管理方法。所提出的方法将动态缓存管理(例如资源分配,基于方式的功率门控和数据迁移)与处理内核的动态电压和频率缩放以温度和能量感知的方式相结合。实验结果表明,与现有的3种热管理方法相比,带有3-D堆栈混合L2缓存的运行时方法可提供高达107.37%(平均55.28%)的性能改进和88.47%(平均47.65%)的能效改进。 -D堆叠的基于SRAM的L2高速缓存。

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