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Voltage-Drop Aware Analytical Placement by Global Power Spreading for Mixed-Size Circuit Designs

机译:用于混合尺寸电路设计的全局功率散布的压降感知分析位置

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Excessive supply voltage drops in a circuit may lead to significant circuit performance degradation and even malfunction. To handle this problem, existing power delivery aware placement algorithms model voltage drops as an optimization objective. We observe that directly minimizing the voltage drops in the objective function might not resolve voltage-drop violations effectively and might cause problems in power-integrity convergence. To remedy this deficiency, in this paper, we propose new techniques to incorporate device power spreading forces into a mixed-size analytical placement framework. Unlike the state-of-the-art previous work that handles the worst voltage-drop spots one by one, our approach simultaneously and globally spreads all the blocks with voltage-drop violations to desired locations directly to minimize the violations. To apply the power force, we model macro current density and power rails for our placement framework to derive desired macro/cell locations. To further improve the solution quality, we propose an efficient mathematical transformation to adjust the power force direction and magnitude. Experimental results show that our approach can substantially improve the voltage drops, wirelength, and runtime over the previous work.
机译:电路中的过多电源电压降可能导致电路性能显着下降甚至出现故障。为了解决这个问题,现有的具有功率传递意识的布局算法将压降建模为优化目标。我们观察到,直接最小化目标函数中的电压降可能无法有效解决电压降违规问题,并可能导致功率完整性收敛问题。为了弥补这一不足,在本文中,我们提出了将设备功率扩散力纳入混合尺寸分析放置框架的新技术。与先前处理最坏的电压降点的最新技术不同,我们的方法同时且全局地将所有违反电压降的模块直接分布到所需位置,以最大程度地减少违规。为了施加力量,我们为布局框架对宏电流密度和电源轨建模,以得出所需的宏/单元位置。为了进一步提高求解质量,我们提出了一种有效的数学变换来调整动力方向和大小。实验结果表明,与以前的工作相比,我们的方法可以大大改善电压降,线长和运行时间。

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