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首页> 外文期刊>IEEE Transactions on Microwave Theory and Techniques >The application of neural networks to EM-based simulation and optimization of interconnects in high-speed VLSI circuits
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The application of neural networks to EM-based simulation and optimization of interconnects in high-speed VLSI circuits

机译:神经网络在基于EM的VLSI高速电路互连仿真和优化中的应用

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摘要

In this paper, a neural network based approach to the electromagnetic (EM) simulation and optimization of high-speed interconnects is discussed. Traditional techniques used to model interconnects in high-speed very large scale integration (VLSI) circuits are based on EM-field simulation, and are thus highly demanding on central processing unit (CPU) resources. This limits their suitability for computer-aided design (CAD) and optimization techniques which are, in general, iterative in nature. Neural networks can be used to map the complex relationship between the physical and electrical parameters of interconnect structures in an efficient manner. The models, once developed, operate with minimal on-line CPU resources and are thus ideally suited for use in iterative CAD and optimization routines.
机译:在本文中,讨论了基于神经网络的电磁仿真和高速互连优化的方法。用于对高速超大规模集成电路(VLSI)电路中的互连进行建模的传统技术基于EM场仿真,因此对中央处理器(CPU)资源的要求很高。这限制了它们对通常在本质上是迭代的计算机辅助设计(CAD)和优化技术的适用性。神经网络可用于以有效方式映射互连结构的物理和电气参数之间的复杂关系。这些模型一旦开发,便以最少的在线CPU资源运行,因此非常适合在迭代CAD和优化例程中使用。

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