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Power Agnostic Technique for Efficient Temperature Estimation of Multicore Embedded Systems

机译:功率不可知技术,用于多核嵌入式系统的高效温度估算

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Temperature plays an increasingly important role in the overall performance and reliability of a computing system. Multi-and many-core systems provide an opportunity to manage the overall temperature profile by cleverly designing the application-to-core mapping and the associated scheduling policies. An uncontrolled temperature profile may lead to an unplanned performance loss, since the system activates protective mechanisms such as voltage and/or frequency scaling to cool itself. Similarly, deep thermal cycles with high frequency lead to severe deterioration in the overall reliability of the system. Design space exploration tools are often used to optimize binding and scheduling choices based on a given set of constraints and objectives, thus motivating the need for fast and accurate temperature estimation techniques. We argue that the currently available techniques are not an ideal fit to design space exploration tools, and suggest a system level technique which is based on application fingerprinting. It does not need any information about the processor floorplan, the physical and thermal structure, or about power consumption. Instead, its temperature estimation is based on a set of application-specific calibration runs and associated temperature measurements using available built-in sensors. We show that a given application possesses a unique thermal signature on the system it executes on, which provides a computationally fast method to calculate accurate temperature traces. Extensive experimental studies show that our technique can estimate temperature on all cores of a system to within 5°C, and is three orders of magnitude faster than state of the art numerical simulators like Hotspot.
机译:温度在计算系统的整体性能和可靠性中起着越来越重要的作用。多核和多核系统通过巧妙地设计应用程序到核的映射以及相关的调度策略,提供了管理总体温度曲线的机会。不受控制的温度曲线可能会导致计划外的性能损失,因为系统会激活诸如电压和/或频率调节之类的保护机制来冷却自身。类似地,具有高频率的深热循环会导致系统整体可靠性的严重下降。设计空间探索工具通常用于基于给定的一组约束和目标来优化绑定和调度选择,从而激发了对快速准确的温度估算技术的需求。我们认为当前可用的技术不是设计空间探索工具的理想选择,并提出了一种基于应用程序指纹的系统级技术。它不需要有关处理器布局图,物理和散热结构或功耗的任何信息。取而代之的是,其温度估算基于一组特定的应用程序校准运行以及使用可用的内置传感器进行的相关温度测量。我们显示给定的应用程序在其执行的系统上具有唯一的热特征,这提供了一种计算快速的方法来计算准确的温度曲线。大量的实验研究表明,我们的技术可以将系统所有内核的温度估计在5°C以内,并且比诸如Hotspot之类的最新数字模拟器快三个数量级。

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