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Multilayer Obstacle-Avoiding X-Architecture Steiner Minimal Tree Construction Based on Particle Swarm Optimization

机译:基于粒子群算法的多层避障X结构斯坦纳最小树构造

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摘要

As the basic model for very large scale integration routing, the Steiner minimal tree (SMT) can be used in various practical problems, such as wire length optimization, congestion, and time delay estimation. In this paper, an effective algorithm based on particle swarm optimization is presented to construct a multilayer obstacle-avoiding X-architecture SMT (ML-OAXSMT). First, a pretreatment strategy is presented to reduce the total number of judgments for the routing conditions around obstacles and vias. Second, an edge transformation strategy is employed to make the particles have the ability to bypass the obstacles while the union-find partition is used to prevent invalid solutions. Third, according to the feature of ML-OAXSMT problem, we design an edge-vertex encoding strategy, which has the advantage of simple and effective. Moreover, a penalty mechanism is proposed to help the particle bypass the obstacles, and reduce the generation of via at the same time. Experimental results show that our algorithm from a global perspective of multilayer structure can achieve the best solution quality among the existing algorithms. Finally, to our best knowledge, we redefine the edge cost and then construct the obstacle-avoiding preferred direction X-architecture Steiner tree, which is the first work to address this problem and can offer the theory supports for chip design based on non-Manhattan architecture.
机译:作为超大规模集成路由的基本模型,Steiner最小树(SMT)可以用于各种实际问题,例如线长优化,拥塞和时延估计。本文提出了一种基于粒子群算法的有效算法,用于构造多层避障X架构SMT(ML-OAXSMT)。首先,提出了一种预处理策略,以减少对障碍物和通孔周围布线条件的判断总数。第二,采用边缘变换策略使粒子具有绕过障碍的能力,而联合查找分区用于防止无效解。第三,针对ML-OAXSMT问题的特点,设计了一种边角顶点编码策略,具有简单有效的优点。此外,提出了一种惩罚机制,以帮助粒子绕过障碍物,同时减少通孔的产生。实验结果表明,从全局角度出发,我们的算法可以在现有算法中达到最佳的求解质量。最后,据我们所知,我们重新定义了边缘成本,然后构造了避免障碍的首选方向X架构Steiner树,这是解决此问题的第一项工作,可以为基于非曼哈顿技术的芯片设计提供理论支持建筑。

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