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首页> 外文期刊>International journal of embedded and real-time communication systems >Instrumentation-Driven Model Detection and Actor Partitioning for Dataflow Graphs
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Instrumentation-Driven Model Detection and Actor Partitioning for Dataflow Graphs

机译:数据流图的仪器驱动模型检测和Actor分区

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摘要

Dataflow modeling offers a myriad of tools to improve optimization and analysis of signal processing applications, and is often used by designers to help design, implement, and maintain systems on chip for signal processing. However, maintaining and upgrading legacy systems that were not originally designed using dataflow methods can be challenging. Designers often convert legacy code to dataflow graphs by hand, a process that can be difficult and time consuming. In this paper, the authors developed a method to facilitate this conversion process by automatically detecting the dataflow models of the core functions from bodies of legacy code. They focus first on detecting static dataflow models, such as homogeneous and synchronous dataflow, and then present an extension that can also detect dynamic dataflow models. Building on the authors ' algorithms for dataflow model detection, ihey present an iterative actor partitioning process that can be used to partition complex actors into simpler sub-functions that are more prone to analysis techniques.
机译:数据流建模提供了许多工具来改善信号处理应用程序的优化和分析,并且设计人员经常使用它来帮助设计,实现和维护用于信号处理的片上系统。但是,维护和升级最初不是使用数据流方法设计的遗留系统可能具有挑战性。设计人员经常手动将旧代码转换为数据流图,此过程可能既困难又耗时。在本文中,作者开发了一种通过从遗留代码主体自动检测核心功能的数据流模型来促进此转换过程的方法。他们首先专注于检测静态数据流模型,例如同类和同步数据流,然后介绍一种扩展,它也可以检测动态数据流模型。在作者用于数据流模型检测的算法的基础上,ihey提出了一个迭代的actor分区过程,该过程可用于将复杂的actor划分为更易于使用分析技术的更简单的子功能。

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