Algerian Journal of Signals and Systems

Algerian Journal of Signals and Systems

Design of Microstrip Low-pass and Band-pass Filters using Artificial Neural Networks

Yazarlar: AHMED HATHAT

Cilt 6 , Sayı 3 , 2021 , Sayfalar 157-162

Konular:-

DOI:10.51485/ajss.v6i3.134

Anahtar Kelimeler:Artificial neural network model,Microstrip low,Ass and band,Ass filters,Parallel coupled,Ine,Stepped impedance.

Özet: Usually the design of microstrip filters is done using simulators and classical approximation methods as Butterworth and Chebyshev, these techniques takes a lot of time to run for designing filters. In this paper we develop a faster artificial neural network model for designing a microstrip low-pass and band-pass filters for all rang of operating frequency , when the input are the dimensions of filter, operating frequency, the features of substrate, and the output are the transmission and reflection coefficients. The database uses for training this model is generated by a linear simulator based on circuits model. Two filters designed by the developed model are a stepped impedance low-pass filter with a cut-off frequency of 1 GHz and a parallel coupled-line band-pass filter with fractional bandwidth of 25 % and a central frequency of 2.45 GHz. The results of simulation are compared with desired results and the effectiveness of this method has been proven.


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BibTex
KOPYALA
@article{2021, title={Design of Microstrip Low-pass and Band-pass Filters using Artificial Neural Networks}, volume={6}, number={157–162}, publisher={Algerian Journal of Signals and Systems}, author={AHMED HATHAT}, year={2021} }
APA
KOPYALA
AHMED HATHAT. (2021). Design of Microstrip Low-pass and Band-pass Filters using Artificial Neural Networks (Vol. 6). Vol. 6. Algerian Journal of Signals and Systems.
MLA
KOPYALA
AHMED HATHAT. Design of Microstrip Low-Pass and Band-Pass Filters Using Artificial Neural Networks. no. 157–162, Algerian Journal of Signals and Systems, 2021.