Development of H-Slotted DGS Based Dual Band Antenna Using ANN for 5G Applications

被引:0
作者
Nakmouche, Mohammed Farouk [1 ]
Allam, A. M. M. A. [2 ]
Fawzy, Diaa E.
Lino, Ding Bing [3 ]
Sree, Mohamed Fathy Abo [4 ]
机构
[1] Izmir Univ Econ, Fac Engn, Izmir, Turkey
[2] German Univ Cairo, Dept Commun Engn, Cairo, Egypt
[3] Natl Taiwan Univ Sci & Technol, Dept Elect & Comp Engn, Taipei, Taiwan
[4] Arab Acad Sci Technol & Maritime Transportat, Cairo, Egypt
来源
2021 15TH EUROPEAN CONFERENCE ON ANTENNAS AND PROPAGATION (EUCAP) | 2021年
关键词
Dual-band; Monopole Antenna; Defected Ground Structure; Sub-6; GHz; 5G application; Finite Element Methods; Artificial Neural Networks;
D O I
暂无
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The proposed work conducts a new approach for modeling a dual band monopole antenna design using DGS assisted by ANN. In the aim of efficient dual band antenna design with gain and optimal impedance matching, the Artificial Neural Networks technique (ANN) is used for the development process. This work presents a modeling for H-slotted Defected Ground Structure (DGS) based dual band antenna using ANN for 5G Sub-6 GHz applications. The designed antenna operates at 3.76 GHz and 6.1 GHz. The antenna gain is 2.18 dB and 2.75 dB at both frequencies, respectively. Firstly, a simulation is performed using CST EM simulator, then the predicted results in term of return losses and frequencies are fed into the ANN model. Secondly using a hybrid algorithm based on both feed-forward back-propagation and Levenberg-Marquart (LM) learning algorithm, the optimal position of the H-Slotted DGS in terms of 5G Sub-6 GHz band is extracted. Finally, the experimental validation is conducted and compared with the simulation results, a good agreement is obtained.
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页数:5
相关论文
共 29 条
[1]  
Abbassi P., 2017, INT C COMP APPL
[2]   Suppressing up to fourth harmonic of an ISM band microstrip patch antenna using compact defected ground structures [J].
Acharjee, Juin ;
Mandal, Kaushik ;
Mandal, Sujit Kumar ;
Sarkar, Partha Pratim .
MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 2017, 59 (09) :2254-2259
[3]   Design of a Symmetric CPW-Fed Patch Antenna for WLAN/WIMAX Applications Using ANN [J].
Aguni, Lahcen ;
El Yassini, Abdessalam ;
Chabaa, Samira ;
Ibnyaich, Saida ;
Zeroual, Abdelouhab .
WIRELESS PERSONAL COMMUNICATIONS, 2020, 115 (01) :439-456
[4]   Traveling-wave antenna based on metamaterial transmission line structure for use in multiple wireless communication applications [J].
Alibakhshi-Kenari, Mohammad ;
Naser-Moghadasi, Mohammad ;
Sadeghzadeh, R. A. ;
Virdee, Bal S. ;
Limiti, Ernesto .
AEU-INTERNATIONAL JOURNAL OF ELECTRONICS AND COMMUNICATIONS, 2016, 70 (12) :1645-1650
[5]  
Outerelo DA, 2015, IEEE ANTENNAS PROP, P2443, DOI 10.1109/APS.2015.7305610
[6]  
[Anonymous], 1982, Antenna Theory: Analysis and Design
[7]   Defected Ground Structure in the perspective of Microstrip Antennas: A Review [J].
Arya, Ashwini K. ;
Kartikeyan, M. V. ;
Patnaik, A. .
FREQUENZ, 2010, 64 (5-6) :79-84
[8]  
Bhartia P., 2001, MICROSTRIP ANTENNA D
[9]   Optimized Microstrip Antenna Arrays for Emerging Millimeter-Wave Wireless Applications [J].
Biglarbegian, Behzad ;
Fakharzadeh, Mohammad ;
Busuioc, Dan ;
Nezhad-Ahmadi, Mohammad-Reza ;
Safavi-Naeini, Safieddin .
IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2011, 59 (05) :1742-1747
[10]  
Dattatreya G, 2019, INT J RF MICROW C E, V29