从while-loop仿射程序中自动推导多面体过程网络

D. Nadezhkin, T. Stefanov
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引用次数: 8

摘要

进程网络(PNs)是一种合适的并行计算模型(MoC),用于以并行形式指定嵌入式流应用程序,从而促进到嵌入式并行执行平台的有效映射。不幸的是,使用并行MoC指定应用程序是非常困难且非常容易出错的任务。为了克服相关的困难,存在一个从静态仿射嵌套循环程序(sanlp)派生特定多面体过程网络(PPN)的自动化程序。这个过程在pn编译器中实现。然而,有许多应用,如多媒体应用,信号处理等,具有自适应和动态的行为,不能表示为sanlp。因此,为了处理更多的动态应用程序,在本文中,我们讨论了一个重要的问题,即我们是否可以在保持执行编译时分析和派生ppn的能力的同时放宽sanlp的一些限制。实现这一点将显著扩展可以以自动化方式并行化的应用程序的范围。本文的主要贡献是将带有while循环的仿射嵌套循环程序自动转换为输入输出等效ppn的第一种方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automatic derivation of polyhedral process networks from while-loop affine programs
The Process Networks (PNs) is a suitable parallel model of computation (MoC) used to specify embedded streaming applications in a parallel form facilitating the efficient mapping onto embedded parallel execution platforms. Unfortunately, specifying an application using a parallel MoC is very difficult and highly error-prone task. To overcome the associated difficulties, an automated procedure exists for derivation of a specific polyhedral process networks (PPN) from static affine nested loop programs (SANLPs). This procedure is implemented in the pn complier. However, there are many applications, e.g., multimedia applications, signal processing, etc., that have adaptive and dynamic behavior which can not be expressed as SANLPs. Therefore, in order to handle more dynamic applications, in this paper we address the important question whether we can relax some of the restrictions of the SANLPs while keeping the ability to perform compile-time analysis and to derive PPNs. Achieving this would significantly extend the range of applications that can be parallelized in an automated way. The main contribution of this paper is a first approach for automated translation of affine nested loops programs with while-loops into input-output equivalent PPNs.
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