Formalizing Loop-Carried Dependencies in Coq for High-Level Synthesis

Florian Faissole, G. Constantinides, David B. Thomas
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引用次数: 3

Abstract

High-level synthesis (HLS) tools such as VivadoHLS interpret C/C++ code supplemented by proprietary optimization directives called pragmas. In order to perform loop pipelining, HLS compilers have to deal with non-trivial loop-carried data dependencies. In VivadoHLS, the dependence pragma could be used to enforce or to eliminate such dependencies, but, the behavior of this directive is only informally specified through examples. Most of the time programmers and the compiler seem to agree on what the directive means, but the accidental misuse of this pragma can lead to the silent generation of an erroneous register-transfer level (RTL) design, meaning code that previously worked may break with newer more aggressively optimised releases of the compiler. We use the Coq proof assistant to formally specify and verify the behavior of the VivadoHLS dependence pragma. We first embed the syntax and the semantics of a tiny imperative language Imp in Coq and specify a conformance relation between an Imp program and a dependence pragma based on data-flow transformations. We then implement semi-automated methods to formally verify such conformance relations for non-nested loop bodies.
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高级合成中Coq中环携带依赖性的形式化
高级综合(HLS)工具,如VivadoHLS,解释C/ c++代码,并辅以称为pragmas的专有优化指令。为了执行循环流水线,HLS编译器必须处理重要的循环携带的数据依赖关系。在VivadoHLS中,依赖pragma可以用来加强或消除这种依赖,但是,这个指令的行为只是通过示例非正式地指定的。大多数情况下,程序员和编译器似乎都同意该指令的含义,但意外误用该pragma可能会导致无声地生成错误的寄存器传输级别(RTL)设计,这意味着以前工作的代码可能会被更新的更积极优化的编译器版本破坏。我们使用Coq证明助手来正式指定和验证VivadoHLS依赖pragma的行为。我们首先在Coq中嵌入微小的命令式语言Imp的语法和语义,并指定Imp程序和基于数据流转换的依赖pragma之间的一致性关系。然后,我们实现半自动化的方法来正式验证非嵌套循环体的一致性关系。
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