Hierarchical Automatic Multilayer Power Plane Generation With Genetic Optimization and Multilayer Perceptron

Author:

Liao Haiguang1,Patil Vinay1,Dong Xuliang1,Shanbhag Devika1,Fallon Elias2,Hogan Taylor2,Spasojevic Mirko2,Burak Kara Levent1

Affiliation:

1. Carnegie Mellon University , Pittsburgh, PA 15213

2. Cadence Design Systems , San Jose, CA 95134

Abstract

Abstract We present an automatic multilayer power plane generation method to accelerate the design of printed circuit boards (PCB). In PCB design, while automatic solvers have been developed to predict important indicators such as the IR-drop, power integrity, and signal integrity, the generation of the power plane itself still largely relies on laborious manual methods. Our automatic power plane generation approach is based on genetic optimization combined with a multilayer perceptron (MLP) and is able to automatically generate power planes across a diverse set of problems with varying levels of difficulty. Our method GOMLP consists of an outer loop genetic optimizer (GO) and an inner loop MLP that generate power planes automatically. The critical elements of our approach include contour detection, feature expansion, and a distance measure to enable island-minimizing complex power plane generation. We compare our approach to a baseline solution based on A*. The A* method consisting of a sequential island generation and merging process which can produce less than ideal solutions. Our experimental results show that on single layer power plane problems, our method outperforms A* in 71% of the problems with varying levels of board layout difficulty. We further describe H-GOMLP, which extends GOMLP to multilayer power plane problems using hierarchical clustering and net similarities based on the Hausdorff distance.

Publisher

ASME International

Subject

Computer Graphics and Computer-Aided Design,Computer Science Applications,Mechanical Engineering,Mechanics of Materials

Reference37 articles.

1. Moore’s Law: Past, Present and Future;Schaller;IEEE Spectr.,1997

2. Power Plane Spice Models and Simulated Performance for Materials and Geometries;Smith;IEEE Trans. Adv. Packaging,2001

3. Fast Algorithms for IR Drop Analysis in Large Power Grid;Zhong,2005

4. Dynamic Voltage (IR) Drop Analysis and Design Closure: Issues and Challenges;Nithin,2010

5. Ir-drop Modeling and Reduction for High-Performance Printed Circuit Boards;Zhang;IEEE Electromagn. Compatibility Mag.,2015

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