Code size efficiency in global scheduling for ILP processors

Huiyang Zhou, T. Conte
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引用次数: 21

Abstract

In global scheduling for ILP processors, region-enlarging optimizations, especially tail duplication, are commonly used. The code size increase due to such optimizations, however, raises serious concerns about the affected I-cache and TLB performance. In this paper, we propose a quantitative measure of the code size efficiency at compile time for any code size related optimization. Then, based on the efficiency of tail duplication, we propose the solutions to two related problems: (1) how to achieve the best performance for a given code size increase, (2) how to get the optimal code size efficiency for any program. Our study shows that code size increase has a significant but varying impact on IPC, e.g., the first 2% code size increase results in 18.5% increase in static IPC, but less than 1% when the given code size further increases from 20% to 30%. We then use this feature to define the optimal code size efficiency and to derive a simple, yet robust threshold scheme finding it. The experimental results using SPECint95 benchmarks show that this threshold scheme finds the optimal efficiency accurately. While the optimal efficiency results show an average increase of 2% in code size, the improved I-cache performance is observed and a speedup of 17% over the natural treegion results is achieved.
ILP处理器全局调度中的代码大小效率
在ILP处理器的全局调度中,区域扩大优化,特别是尾部复制,是常用的优化方法。然而,由于这种优化而增加的代码大小引起了对受影响的I-cache和TLB性能的严重关注。在本文中,我们提出了一个量化的代码大小效率在编译时的任何代码大小相关的优化措施。然后,基于尾重复的效率,我们提出了两个相关问题的解决方案:(1)如何在给定的代码量增量下获得最佳性能;(2)如何获得任何程序的最优代码量效率。我们的研究表明,代码大小的增加对IPC有显著但不同的影响,例如,前2%的代码大小增加导致静态IPC增加18.5%,但当给定代码大小进一步从20%增加到30%时,不到1%。然后,我们使用这个特征来定义最佳代码大小效率,并推导出一个简单而健壮的阈值方案来找到它。使用SPECint95基准测试的实验结果表明,该阈值方案能够准确地找到最优效率。虽然最佳效率结果显示代码大小平均增加了2%,但可以观察到改进的I-cache性能,并且比自然区域结果实现了17%的加速提升。
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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