Radioengineering (Jun 2004)

Modeling Broadband Microwave Structures by Artificial Neural Networks

  • V. Otevrel,
  • Z. Lukes,
  • Z. Raida

Journal volume & issue
Vol. 13, no. 2
pp. 3 – 11

Abstract

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The paper describes the exploitation of feed-forward neural networksand recurrent neural networks for replacing full-wave numerical modelsof microwave structures in complex microwave design tools. Building aneural model, attention is turned to the modeling accuracy and to theefficiency of building a model. Dealing with the accuracy, we describea method of increasing it by successive completing a training set.Neural models are mutually compared in order to highlight theiradvantages and disadvantages. As a reference model for comparisons,approximations based on standard cubic splines are used. Neural modelsare used to replace both the time-domain numeric models and thefrequency-domain ones.