Chin. Phys. Lett.  2008, Vol. 25 Issue (3): 1000-1003    DOI:
Original Articles |
Hybrid Lifting Wavelet-Like Transform for Solution of Electromagnetic Integral Equation
CHEN Ming-Sheng;WU Xian-Liang;SHA Wei;HUANG Zhi-Xiang
Key Laboratory of Intelligent Computing and Signal Processing, Anhui University, Hefei 230039
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CHEN Ming-Sheng, WU Xian-Liang, SHA Wei et al  2008 Chin. Phys. Lett. 25 1000-1003
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Abstract A hybrid lifting wavelet-like transform scheme is successfully applied to the solution of electric field integral equation using Rao--Wilton--Glisson basis functions. To speed up the matrix transform process, the lifting scheme is
adopted. Numerical examples of different three-dimensional perfectly electric conducting objects are considered. Compared with the method of moments, the proposed matrix transform scheme can save considerable CPU time and memory.
Keywords: 43.60.Hj      42.25.Fx      93.85.Bc      02.70.Pt     
Received: 04 September 2007      Published: 27 February 2008
PACS:  43.60.Hj (Time-frequency signal processing, wavelets)  
  42.25.Fx (Diffraction and scattering)  
  93.85.Bc (Computational methods and data processing, data acquisition and storage)  
  02.70.Pt (Boundary-integral methods)  
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https://cpl.iphy.ac.cn/       OR      https://cpl.iphy.ac.cn/Y2008/V25/I3/01000
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CHEN Ming-Sheng
WU Xian-Liang
SHA Wei
HUANG Zhi-Xiang
[1] Harrington R F 1993 Field computation by MomentMethods (New York: IEEE)
[2] Song J M and Chew W C 1995 Microwave Opt. Technol.Lett. 10 14
[3] Colliander A and Yla-Oijala P 2007 IEEE Trans.Antennas Propagat. 55 3639
[4] Baharav Z and Leviatan Y 1996 Microwave Opt. Technol.Lett. 12 268
[5] Geranmayeh A, Moini R, Hesam Sadeghi S H, and Deihimi A.2006 IEEE Trans. Magn. 42 575
[6] Jiang N and Zhang J 2005 Chin. Phys. Lett. 22968
[7] Cai D, Yan Y B, Huang H and Jin G F 2005 Chin. Phys.Lett. 22 1124
[8] Guo L X and Wu Z S 2002 Chin. Phys. Lett. 191617
[9] Alpert B, Beylkin G, Coifman R, and Rokhlin V 1993 SIAM J. Sci.Comput. 14 159
[10] Wagner R L and Chew W C 1995 IEEE Trans. AntennasPropagat. 43 802
[11] Golik W L 2000 IEEE Trans. Antennas Propagat. 48 473
[12] Daubechies I and Sweldens W 1998 J. Fourier Anal.Appl. 4 247
[13] Chen M S, Wu X L and Sha W 2006 Appl. Comput.Electromagn. Soc. J. 21 99
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