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Thermally Adaptive Cache Access Mechanisms for 3D Many-Core Architectures

机译:用于3D多核架构的热自适应缓存访问机制

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A compelling confluence of technology and application trends in which the cost, execution time, and energy of applications are being dominated by the memory system is driving the industry to 3D packages for future microarchitectures. However, these packages result in high heat fluxes and increased thermal coupling challenging current thermal solutions. Conventional design approaches utilize design margins that correspond to worst case temperatures and process corners leading to a significant impact on system level performance. This paper advocates a design approach based on microarchitecture adaptation to device-level temperature-dependent delay variations to realize average case performance that is superior to which can be achieved by using worst case design margins. We demonstrate this approach with adaptation principles for the last level cache (LLC) in a 3D many-core architecture. We propose and evaluate two adaptation mechanisms. In the first case, the access time to the LLC from the L1 tracks the LLC's temperature-delay variations. In the second case, the processor DVFS state tracks the LLC temperature as a negative feedback. Compared to a worst case design baseline, the full system simulation results show that both approaches increase the IPC by over 20 percent, and improve the energy efficiency by up to 3 percent.
机译:内存系统主导着应用程序的成本,执行时间和能量,这是技术和应用程序趋势的令人信服的融合,这正驱使整个行业采用3D封装来实现未来的微体系结构。然而,这些封装导致高热通量和增加的热耦合,对当前的热解决方案提出了挑战。常规设计方法利用的设计裕量对应最坏情况下的温度和工艺拐角,从而对系统级性能产生重大影响。本文提倡一种基于微架构的设计方法,以适应器件级温度相关的延迟变化,以实现平均性能,该性能优于使用最坏情况的设计余量可以实现的平均性能。我们使用3D多核体系结构中的最后一级缓存(LLC)的自适应原理演示了这种方法。我们提出并评估了两种适应机制。在第一种情况下,从L1到LLC的访问时间跟踪LLC的温度延迟变化。在第二种情况下,处理器DVFS状态将LLC温度跟踪为负反馈。与最坏情况的设计基准相比,整个系统的仿真结果表明,这两种方法均可以将IPC提高20%以上,并将能源效率提高3%。

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