Using linear regression to characterize data coherency traffic

Jean-Thomas Acquaviva, F. Quessette
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Abstract

This paper proposes an algorithm to dynamically characterize the coherency traffic occurring in DSM architectures. This algorithm strongly relies on linear regressions to isolate lines among the traffic. The main features are a dynamic algorithm, robustness toward the noise and production of fine characterizations of the traffic. At the end the regularity is summarized in a set of regression lines found and some statistics are provided. The driving idea is while scientific code is widely considered as highly structured, a precise quantification may expose the underlying regularity due the code data structures. We describe the algorithm step by step and give results that show the relevance of the approach.
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使用线性回归表征数据一致性流量
本文提出了一种动态表征DSM体系结构中发生的相干业务的算法。该算法强烈依赖线性回归来隔离流量之间的线路。该算法的主要特点是采用动态算法,对噪声具有较强的鲁棒性,并能产生较好的交通特征。最后用一组发现的回归线总结了这种规律性,并提供了一些统计数据。驱动思想是,虽然科学代码被广泛认为是高度结构化的,但精确的量化可能会暴露出代码数据结构的潜在规律性。我们一步一步地描述了该算法,并给出了显示该方法相关性的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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