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Modeling the temperature bias of power consumption for nanometer-scale CPUs in application processors

机译:为应用处理器中的纳米级CPU的功耗温度偏差建模

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We introduce and experimentally validate a new macro-level model of the CPU temperature/power relationship within nanometer-scale application processors or system-on-chips. By adopting a holistic view, this model is able to take into account many of the physical effects that occur within such systems. Together with two algorithms described in the paper, our results can be used, for instance by engineers designing power or thermal management units, to cancel the temperature-induced bias on power measurements. This will help them gather temperature-neutral power data while running multiple instance of their benchmarks. Also power requirements and system failure rates can be decreased by controlling the CPU's thermal behavior. Even though it is usually assumed that the temperature/power relationship is exponentially related, there is however a lack of publicly available physical temperature/power measurements to back up this assumption, something our paper corrects. Via measurements on two pertinent platforms sporting nanometer-scale application processors, we show that the power/temperature relationship is indeed very likely exponential over a 20°C to 85°C temperature range. Our data suggest that, for application processors operating between 20°C and 50°C, a quadratic model is still accurate and a linear approximation is acceptable.
机译:我们介绍并实验验证了纳米级应用处理器或片上系统中CPU温度/功率关系的新宏级别模型。通过采用整体视图,该模型能够考虑到此类系统中发生的许多物理效应。结合本文中描述的两种算法,我们的结果可用于设计工程师或设计功率或热管理单元的设备,以消除功率测量中温度引起的偏差。这将帮助他们在运行多个基准测试实例时收集温度无关的功率数据。此外,通过控制CPU的热行为,可以降低电源要求和系统故障率。尽管通常假设温度/功率关系呈指数关系,但是仍然缺乏公开可用的物理温度/功率测量来支持该假设,我们的论文对此进行了纠正。通过在两个相关的使用纳米级应用处理器的平台上进行的测量,我们表明,在20°C至85°C的温度范围内,功率/温度关系确实很可能呈指数关系。我们的数据表明,对于在20°C至50°C之间运行的应用处理器,二次模型仍然是准确的,并且线性近似值是可以接受的。

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