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Thermosiphon: A thermal aware NUCA architecture for write energy reduction of the STT-MRAM based LLCs

机译:热虹吸管:具有热敏性的NUCA架构,可减少基于STT-MRAM的LLC的写能量

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As the speed gap of the modern processor and the off-chip main memory enlarges, on-chip cache capacity increases to sustain the performance scaling. As a result, the cache power occupies a large portion of the total power budget. STT-MRAM (Spin Transfer Torque Magnetic Memory) is proposed as a promising solution for the low power cache design due to its high integration density and ultra-low leakage. Nevertheless, the high write power and latency of STT-MRAM become new barriers for the commercialization of this emerging technology. In this paper, we investigate the thermal effect on the access performance of STT-MRAM and observe that the temperature can affect the write delay and energy significantly. Then, we explore the NUCA (Non-Uniform Cache Access) design of the CMPs (Chip-Multi-Processors)with STT-MRAM based LLC (Last Level Cache). A thermal aware data migration policy, called “Thermosiphon”, which takes advantage of the thermal property of STT-MRAM, is proposed to reduce the LLC write energy. This policy splits the LLC into different regions based on the thermal distribution and adaptively migrate write intensive data considering the temperature gradient among different thermal regions. Compared to the conventional NUCA design, our proposed design can save 22.5% write energy with negligible hardware overhead.
机译:随着现代处理器和片外主存储器的速度差距扩大,片上高速缓存容量增加,以维持性能扩展。结果,缓存功率占据了总功率预算的很大一部分。由于其高集成度和超低泄漏性,建议将STT-MRAM(自旋转移扭矩磁存储器)用作低功耗高速缓存设计的有前途的解决方案。然而,STT-MRAM的高写入功率和等待时间成为该新兴技术商业化的新障碍。在本文中,我们研究了热效应对STT-MRAM的访问性能的影响,并观察到温度会显着影响写入延迟和能量。然后,我们探索基于基于STT-MRAM的LLC(上级缓存)的CMP(芯片多处理器)的NUCA(非统一缓存访问)设计。提出了一种利用STT-MRAM的热特性的称为“ Thermosiphon”的热感知数据迁移策略,以减少LLC的写入能量。该策略根据热分布将LLC划分为不同的区域,并考虑到不同热区域之间的温度梯度,自适应迁移写入密集型数据。与传统的NUCA设计相比,我们提出的设计可以节省22.5%的写入能量,而硬件开销却可以忽略不计。

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