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Generalized Augmented Lagrangian and Its Applications to VLSI Global Placement*

机译:广义增强拉格朗日及其在VLSI全球布局中的应用 *

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摘要

Global placement dominates the circuit placement process in its solution quality and efficiency. With increasing design complexity and various design constraints, it is desirable to develop an efficient, high-quality global placement algorithm for modern large-scale circuit designs. In this paper, we first analyze the properties of four nonlinear optimization methods (the quadratic penalty method, the Lagrange multiplier method, and two augmented Lagrangian methods) for global placement, and then develop a generalized augmented Lagrangian method to solve this problem. Our proposed method preserves the advantages of the quadratic penalty method and the augmented Lagrangian method, and provides a smooth progress from the quadratic penalty method to the augmented Lagrangian method. We prove that the proposed generalized augmented Lagrangian method is globally convergent for the original global placement problem, even with different constraints. Compared with the other four popular optimization methods, experimental results show that our method achieves the best quality and is robust for handling different objectives. In particular, our generalized augmented Lagrangian formulation is theoretically sound and can solve generic large-scale constrained nonlinear optimization problems, which are widely used in many fields.
机译:整体布局以其解决方案的质量和效率主导着电路布局过程。随着设计复杂度的增加和各种设计约束,期望为现代大规模电路设计开发一种高效,高质量的全局布局算法。在本文中,我们首先分析了用于全局布局的四种非线性优化方法(二次惩罚法,拉格朗日乘数法和两种增广的拉格朗日方法)的性质,然后开发了广义的增广的拉格朗日方法来解决此问题。我们提出的方法保留了二次惩罚方法和增强拉格朗日方法的优点,并提供了从二次惩罚方法到扩展拉格朗日方法的平稳进展。我们证明,即使具有不同的约束条件,提出的广义增强拉格朗日方法对于原始的全局布局问题也是全局收敛的。与其他四种流行的优化方法相比,实验结果表明我们的方法达到了最佳质量,并且对于处理不同目标具有鲁棒性。特别是,我们的广义增广拉格朗日公式在理论上是合理的,可以解决通用的大规模约束非线性优化问题,这些问题在许多领域都得到了广泛使用。

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