A nanopass framework for commercial compiler development

Andrew W. Keep, R. Dybvig
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引用次数: 28

Abstract

Contemporary compilers must typically handle sophisticated high-level source languages, generate efficient code for multiple hardware architectures and operating systems, and support source-level debugging, profiling, and other program development tools. As a result, compilers tend to be among the most complex of software systems. Nanopass frameworks are designed to help manage this complexity. A nanopass compiler is comprised of many single-task passes with formally defined intermediate languages. The perceived downside of a nanopass compiler is that the extra passes will lead to substantially longer compilation times. To determine whether this is the case, we have created a plug replacement for the commercial Chez Scheme compiler, implemented using an updated nanopass framework, and we have compared the speed of the new compiler and the code it generates against the original compiler for a large set of benchmark programs. This paper describes the updated nanopass framework, the new compiler, and the results of our experiments. The compiler produces faster code than the original, averaging 15-27% depending on architecture and optimization level, due to a more sophisticated but slower register allocator and improvements to several optimizations. Compilation times average well within a factor of two of the original compiler, despite the slower register allocator and the replacement of five passes of the original 10 with over 50 nanopasses.
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用于商业编译器开发的纳米框架
现代编译器通常必须处理复杂的高级源语言,为多种硬件体系结构和操作系统生成高效的代码,并支持源级调试、分析和其他程序开发工具。因此,编译器往往是最复杂的软件系统之一。纳米ass框架旨在帮助管理这种复杂性。纳米通道编译器由许多具有正式定义的中间语言的单任务通道组成。纳米通道编译器的缺点是额外的通道将导致更长的编译时间。为了确定情况是否如此,我们为商业Chez Scheme编译器创建了一个插件替代品,使用更新的纳米ass框架实现,我们将新编译器的速度及其生成的代码与大量基准程序的原始编译器进行了比较。本文介绍了更新的纳米ass框架,新的编译器,以及我们的实验结果。编译器生成的代码比原始代码快,根据体系结构和优化级别的不同,平均速度为15-27%,这是由于使用了更复杂但更慢的寄存器分配器以及对若干优化的改进。编译时间平均在原始编译器的两倍之内,尽管寄存器分配器较慢,并且用超过50个纳米粒子替换了原来10次中的5次。
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