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Integrated Placement and Skew Optimization for Rotary Clocking

机译:旋转时钟的集成放置和偏斜优化

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The clock distribution network is a key component of any synchronous VLSI design. High power dissipation and pressure volume temperature-induced variations in clock skew have started playing an increasingly important role in limiting the performance of the clock network. Rotary clocking is a novel technique which employs unterminated rings formed by differential transmission lines to save power and reduce skew variability. Despite its appealing advantages, rotary clocking requires flip-flop locations to match predesigned clock skew on rotary clock rings. This requirement poses a difficult chicken-and-egg problem which prevents its wide application. In this paper, we propose an integrated placement and skew scheduling methodology to break this hurdle, making rotary clocking compatible with practical design flows. A network flow based flip-flop assignment algorithm and a cost-driven skew optimization algorithm are developed. We also present an integer linear programming formulation that minimizes maximum capacitance loaded at any of the rotary rings, thereby maximizing the operating frequency. Experimental results on benchmark circuits show that our method can reduce the tapping cost (measured as the total length of the wire segments connecting the rotary rings to the clock sinks) for rotary clocking by 33%-53%
机译:时钟分配网络是任何同步VLSI设计的关键组成部分。高功耗和压力体积温度引起的时钟偏斜变化已开始在限制时钟网络性能方面发挥越来越重要的作用。旋转时钟是一种新颖的技术,它采用由差分传输线形成的无端环来节省功率并减少偏斜可变性。尽管旋转时钟具有吸引人的优势,但仍需要触发器位置来匹配旋转时钟环上的预先设计的时钟偏斜。该要求带来了困难的“鸡和蛋”问题,从而妨碍了其广泛应用。在本文中,我们提出了一种集成的布局和偏斜调度方法来打破这一障碍,使旋转时钟与实际设计流程兼容。开发了一种基于网络流的触发器分配算法和一种成本驱动的时滞优化算法。我们还提出了一种整数线性规划公式,该公式可以最大程度地减小在任何旋转环上加载的最大电容,从而最大化工作频率。在基准电路上的实验结果表明,我们的方法可以将旋转时钟的分接头成本(以将旋转环与时钟接收器相连的线段的总长度衡量)降低33%-53%

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