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A Study of the Applicability of Hopfield Decision Neural Nets to VLSI CAD

机译:Hopfield决策神经网络在VLSI CAD中的适用性研究。

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Hopfield decision neural nets have been claimed to be good for solving a class of optimization problems such as the traveling salesman's problem. A study was undertaken to determine if these techniques were applicable to the many optimization problems that occur in VLSI circuit design and layout. Module placement was chosen as a representative problem. It was observed that the convergence process closely resembles that of greedy hill climbing algorithms. Apart from the known problems of long simulation times and hardware implementation complexity, it was noted that the quality of solution was mediocre, at best, and highly sensitive to network parameters. Various modifications were attempted, none of which significantly improved the result. It is concluded that Hopfield neural nets do not, in their present form, provide an interesting solution to this class of CAD problems.
机译:Hopfield决策神经网络已被认为可以解决一类优化问题,例如旅行商的问题。进行了一项研究,以确定这些技术是否适用于VLSI电路设计和布局中出现的许多优化问题。选择模块放置作为代表问题。据观察,收敛过程非常类似于贪婪的爬山算法。除了已知的仿真时间长和硬件实现复杂性的问题外,还注意到解决方案的质量中等,充其量是对网络参数高度敏感的。尝试了各种修改,但都没有明显改善结果。结论是,Hopfield神经网络无法以其当前形式为此类CAD问题提供有趣的解决方案。

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