Toward quality EDA tools and tool flows through high-performance computing

Aaron N. Ng, I. Markov
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引用次数: 6

Abstract

As the scale and complexity of VLSI circuits increase, electronic design automation (EDA) tools become much more sophisticated and are held to increasing standards of quality. New-generation EDA tools must work correctly on a wider range of inputs, have more internal states, take more effort to develop, and offer fertile ground for programming mistakes. Ensuring quality of a commercial tool in realistic design flows requires rigorous simulation, non-trivial computational resources, accurate reporting of results and insightful analysis. However, time-to-market pressures encourage EDA engineers and chip designers to look elsewhere. Thus, the recent availability of cheap Linux clusters and Grids shifts the bottleneck from hardware to logistical tasks, i.e., the speedy collection, reporting and analysis of empirical results. To be practically feasible, such tasks must be automated; they leverage high-performance computing to improve EDA tools. In this work we outline a possible infrastructure solution, called bX, explore relevant use models and describe our computational experience. In a specific application, we use bX to automatically build Pareto curves required for accurate performance analysis of randomized algorithms.
通过高性能计算实现高质量的EDA工具和工具流
随着超大规模集成电路的规模和复杂性的增加,电子设计自动化(EDA)工具变得更加复杂,并且保持越来越高的质量标准。新一代EDA工具必须在更广泛的输入范围内正确工作,具有更多的内部状态,需要更多的开发努力,并为编程错误提供肥沃的土壤。在现实的设计流程中确保商业工具的质量需要严格的模拟、重要的计算资源、准确的结果报告和深刻的分析。然而,上市时间的压力促使EDA工程师和芯片设计师将目光转向别处。因此,最近廉价的Linux集群和网格将瓶颈从硬件转移到后勤任务,即快速收集、报告和分析经验结果。为了切实可行,这些任务必须实现自动化;他们利用高性能计算来改进EDA工具。在这项工作中,我们概述了一个可能的基础设施解决方案,称为bX,探索相关的使用模型并描述我们的计算经验。在一个特定的应用程序中,我们使用bX自动构建精确的随机算法性能分析所需的Pareto曲线。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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