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Scalable Analysis of Mesh-Based Clock Distribution Networks Using Application-Specific Reduced Order Modeling

机译:使用专用降阶建模的基于网格的时钟分配网络的可扩展分析

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Clock meshes possess inherent low clock skews and excellent immunity to process-voltage-temperature variations, and have increasingly found their way to high-performance integrated circuit designs. However, analysis of such massively coupled networks is significantly hindered by the sheer size of the network and tight coupling between non-tree interconnects and large numbers of clock drivers. While the SPICE simulation of large clock meshes is often intractable, standard interconnect model order reduction algorithms also fail due to the large number of input/output ports introduced by clock drivers. The presented approach is motivated by the key observation of the steady-state operation of the clock networks while its efficiency is facilitated by exploring new clock-mesh specific harmonic-weighted model order reduction algorithm and locality analysis via port sliding. The scalability of the analysis is significantly improved by eliminating the need for computing infeasible multi-port passive reduced order interconnect models with large port count and decomposing the overall task into very tractable and naturally parallelizable model generation and fast Fourier transform/inverse-fast Fourier transform operations, all on a per driver or per sink basis. We demonstrate the application of our approach by feasibly analyzing large clock meshes with excellent accuracy.
机译:时钟网格具有固有的低时钟偏斜,并且对过程电压-温度变化具有出色的抗扰性,并且越来越多地发现它们可以用于高性能集成电路设计。但是,由于网络的庞大规模以及非树互连和大量时钟驱动器之间的紧密耦合,严重阻碍了此类大规模耦合网络的分析。虽然大型时钟网格的SPICE仿真通常很棘手,但是由于时钟驱动器引入了大量的输入/输出端口,因此标准的互连模型降阶算法也失败了。提出的方法是通过对时钟网络稳态操作的关键观察来激发的,而通过探索新的特定于时钟网格的谐波加权模型降阶算法和通过端口滑动的局部性分析来提高其效率。通过消除对不可行的具有大端口数的多端口无源降阶互连模型的计算,并将整个任务分解为非常易处理且自然可并行化的模型生成以及快速傅里叶变换/逆快速傅里叶变换,可以显着提高分析的可伸缩性所有操作均基于每个驱动程序或每个接收器进行。通过切实可行地分析大型时钟网格,我们演示了该方法的应用。

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