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A compact and broadband microstrip antenna design using a geometrical-methodology-based artificial neural network

机译:使用基于几何方法的人工神经网络的紧凑型宽带微带天线设计

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摘要

A new artificial neural-network-based methodology for a microstrip antenna design was studied and presented. The methodology is applicable to DCS, GSM, WLL, WLAN, large band planar antennas, and fractals. In this paper, we present five applications of this methodology, three of which are applicable in the WLL, 802.11a, and 802.11b antenna standards. The two others are broadband designs with 500 MHz and 1 GHZ bandwidth, respectively. All the antennas radiate an end-fire beam, and have compact sizes of 29 mm /spl times/ 25 mm, 10 mm /spl times/ 13.5 mm, 10.3 mm /spl times/ 17.2 mm, 35 mm /spl times/ 25 mm, and 35 mm /spl times/ 25 mm, respectively.
机译:研究并提出了一种新的基于人工神经网络的微带天线设计方法。该方法适用于DCS,GSM,WLL,WLAN,宽带平面天线和分形。在本文中,我们介绍了该方法的五个应用,其中三个适用于WLL,802.11a和802.11b天线标准。另外两个是分别具有500 MHz和1 GHZ带宽的宽带设计。所有天线都辐射出端射光束,并具有29 mm / spl次/ 25 mm,10 mm / spl次/ 13.5 mm,10.3 mm / spl次/ 17.2 mm,35 mm / spl次/ 25 mm的紧凑尺寸,分别为35毫米/ spl次/ 25毫米。

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