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首页> 外文期刊>IEEE Transactions on Computer-Aided Design of Integrated Circuits and Systems >Leveraging Prior Knowledge for Effective Design-Space Exploration in High-Level Synthesis
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Leveraging Prior Knowledge for Effective Design-Space Exploration in High-Level Synthesis

机译:利用高级别合成有效设计空间探索的先验知识

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摘要

High-Level Synthesis (HLS) tools allow the generation of a large variety of hardware implementations from the same specification by setting different optimization directives. Each combination of HLS directives returns an implementation of the target application that is based on a particular microarchitecture. Designers are interested only in the subset of implementations that correspond to Pareto-optimal points in the performance versus cost design space. Finding this subset is hard because the relationship between the HLS directives and the Pareto-optimal implementations cannot be foreseen. Hence, designers must default to an exploration of the design space through many time-consuming HLS runs. We present a methodology that infers knowledge from past design explorations to identify high-quality directives for new target applications. To this end, we formulate a novel abstract representation of applications and their associated configuration spaces, introduce a similarity metric to compare quantitatively the configuration spaces of different applications, and a method to infer actionable information from a source space to a target space. The experimental results with the MachSuite benchmarks show that our approach retrieves close approximations of the Pareto frontier of best-performing implementations for the target application, in exchange for a small number of HLS runs.
机译:高级合成(HLS)工具通过设置不同的优化指令,可以从相同的规范生成各种硬件实现。 HLS指令的每个组合都返回基于特定微校验结构的目标应用程序的实现。设计人员仅在对应于性能与成本设计空间中对应于帕累托的最优点的实现中感兴趣。找到该子集很难,因为HLS指令与帕累托最优实现之间的关系无法预见。因此,设计人员必须默认通过许多耗时的HLS运行来探索设计空间。我们提出了一种从过去的设计探索中获取知识的方法,以确定新目标应用的高质量指令。为此,我们制定了一种新的应用程序及其相关配置空间的新型抽象表示,引入相似度量来比较不同应用的配置空间,以及一种从源空间推断到目标空间的可操作信息的方法。使用Machsuite基准测试的实验结果表明,我们的方法检索帕累托前沿对目标应用的最佳实现的近似近似,以换取少量HLS运行。

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