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Moving toward gray box predictive models at micro-architecture level by investigating program inherent parallelism

机译:通过研究程序固有的并行性,转向微体系结构级别的灰盒预测模型

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Predictive modeling has gained much attention in last decade aiming the evaluation of different design points in Design Space Exploration (DSE) process. However, predictive model construction still requires costly simulations for every new and unseen application. To reduce the number of simulations, several cross program performance prediction schemes are developed. These schemes can be more efficient if they use application characteristics or signature. The main challenge is to find the best representative characteristics and how they contribute to predictive models. In this paper, we introduce a characteristic to represent the inherent parallelism of applications and to measure performance sensitivity to issue width changes. We show that this characteristic can better predict inherent parallelism than data dependency distance and instruction mix, which are proposed by previous works.
机译:在过去的十年中,预测性建模已经引起了广泛的关注,其目的是评估设计空间探索(DSE)过程中的不同设计点。但是,预测模型的构建仍然需要对每个新的和未看到的应用进行昂贵的仿真。为了减少仿真次数,开发了几种跨程序性能预测方案。如果这些方案使用应用程序特征或签名,则可能会更有效。主要挑战是找到最佳的代表性特征以及它们如何对预测模型做出贡献。在本文中,我们引入了一种特性,以表示应用程序固有的并行性,并测量对发行宽度变化的性能敏感性。我们表明,该特性可以比以前的工作提出的数据依赖距离和指令混合更好地预测固有并行性。

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