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A VLSI global placement solver based on proximal alternating direction method

机译:基于近端交替方向法的VLSI全局置入求解器

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In nonlinear global placement methods, the very large scale integration (VLSI) global placement problem is formulated as a nonlinear mathematical programming problem that contains the wirelength objective and the non-overlapping constraints, and it is usually solved by the penalty function method. In this paper, unlike using the penalty function method, a proximal alternating direction method (PADM) based solver is attempted to solve the VLSI global placement problem. In the solver, a alternating direction method combining with proximal point algorithm is used to optimize the VLSI placement problem according to its features. Moreover, local convergence of the PADM method is proved under some conditions. In addition, the multilevel framework is adopted to make the PADM based solver scalable. Preliminary numerical results on the IBM standard cell benchmarks show that the proposed solver is promising.
机译:在非线性全局放置方法中,非常大规模集成(VLSI)全局放置问题被制定为包含WireLength目标和非重叠约束的非线性数学编程问题,并且通常通过惩罚功能方法解决。在本文中,与使用惩罚功能方法不同,尝试解决基于近端方向方法(PADM)的求解器来解决VLSI全局放置问题。在求解器中,使用与近端点算法组合的交替方向方法用于根据其特征来优化VLSI放置问题。此外,在某些条件下证明了PADM方法的局部收敛。此外,采用多级框架制作基于PADM的求解器可扩展。 IBM标准单元基准上的初步数值结果表明,所提出的求解器是有前途的。

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