Multi-dimensional incremental loop fusion for data locality

Sven Verdoolaege, M. Bruynooghe, Gerda Janssens, F. Catthoor
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引用次数: 69

Abstract

Affine loop transformations have often been used for program optimization. Usually their focus lies on single loop nests. A few recent approaches also handle global programs with multiple loop nests but they are not really scalable towards realistic applications with dozens of nests. To reduce complexity, we split affine transformations into a linear transformation step and a translation step. This translation step can be used to perform general multidimensional loop fusion. We show that loop fusion can be performed incrementally and provide a greedy algorithm, which we illustrate on a simple example. Finally, we present a heuristic for data locality and provide some experimental results.
数据局部性的多维增量环路融合
仿射循环变换常用于程序优化。通常它们关注的是单环巢。最近的一些方法也可以处理具有多个循环巢的全局程序,但它们并不能真正扩展到具有数十个巢的实际应用程序中。为了降低复杂度,我们将仿射变换分为线性变换和平移两个步骤。此转换步骤可用于执行一般多维循环融合。我们证明了循环融合可以增量地进行,并提供了一个贪婪算法,我们用一个简单的例子来说明。最后,我们提出了一种启发式的数据定位方法,并给出了一些实验结果。
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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