Classification of Microwave Planar Filters by Deep Learning
Abstract
Over the last few decades, deep learning has been considered to be powerful tool in the classification tasks, and has become popular in many applications due to its capability of processing huge amount of data. This paper presents approaches for image recognition. We have applied convolutional neural networks on microwave planar filters. The first task was filter topology classification, the second task was filter order estimation. For the task a dataset was generated. As presented in the results, the created and trained neural networks are very capable of solving the selected tasks.
Keywords
Convolutional neural network, deep learning, band pass filter, low pass shunt filter, low pass stepped filter, order of filterPersistent identifier
http://hdl.handle.net/11012/204151Document type
Peer reviewedDocument version
Final PDFSource
Radioengineering. 2022 vol. 31, č. 1, s. 69-76. ISSN 1210-2512https://www.radioeng.cz/fulltexts/2022/22_01_0069_0076.pdf
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- 2022/1 [18]
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Except where otherwise noted, this item's license is described as Creative Commons Attribution 4.0 International license
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