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Parameterized Architecture-Level Dynamic Thermal Models for Multicore Microprocessors

机译:多核微处理器的参数化体系结构级动态热模型

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In this article, we propose a new architecture-level parameterized dynamic thermal behavioral modeling algorithm for emerging thermal-related design and optimization problems for high-performance multicore microprocessor design. We propose a new approach, called ParThermPOF, to build the parameterized thermal performance models from the given accurate architecture thermal and power information. The new method can include a number of variable parameters such as the locations of thermal sensors in a heat sink, different components (heat sink, heat spreader, core, cache, etc.), thermal conductivity of heat sink materials, etc. The method consists of two steps: first, a response surface method based on low-order polynomials is applied to build the parameterized models at each time point for all the given sampling nodes in the parameter space. Second, an improved Generalized Pencil-Of-Function (GPOF) method is employed to build the transfer-function-based behavioral models for each time-varying coefficient of the polynomials generated in the first step. Experimental results on a practical quad-core microprocessor show that the generated parameterized thermal model matches the given data very well. The compact models by ParThermPOF offer two order of magnitudes speedup over the commercial thermal analysis tool FloTHERM on the given examples. ParThermPOF is very suitable for design space exploration and optimization where both time and system parameters need to be considered.
机译:在本文中,我们针对高性能多核微处理器设计中出现的与热相关的设计和优化问题,提出了一种新的体系结构级参数化动态热行为建模算法。我们提出了一种新的方法,称为ParThermPOF,可以从给定的准确架构热和功率信息构建参数化的热性能模型。新方法可以包括许多可变参数,例如散热器中的热传感器的位置,不同的组件(散热器,散热器,核心,高速缓存等),散热器材料的热导率等。包括两个步骤:首先,应用基于低阶多项式的响应面方法在每个时间点为参数空间中所有给定的采样节点建立参数化模型。其次,采用改进的广义功能铅笔(GPOF)方法为第一步中生成的多项式的每个时变系数建立基于传递函数的行为模型。在实际的四核微处理器上的实验结果表明,所生成的参数化热模型与给定数据非常匹配。在给定的示例中,ParThermPOF的紧凑模型比商用热分析工具FloTHERM提供了两个数量级的加速。 ParThermPOF非常适合需要同时考虑时间和系统参数的设计空间探索和优化。

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