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Articles

Analysis of electromagnetic scattering from perfect electric conducting targets using improved characteristic basis function method and fast dipole method

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Pages 893-902 | Received 10 Dec 2013, Accepted 11 Feb 2014, Published online: 12 Mar 2014

References

  • Coifman R, Rokhlin V, Wandzura S. The fast multipole method for the wave equation: A pedestrian prescription. IEEE Ant. Propag. Mag. 1993;35:7–12.
  • Song JM, Lu CC, Chew WC. Multilevel fast multipole algorithm for electromagnetic scattering by large complex objects. IEEE Trans. Antennas Propag. 1997;45:1488–1493.
  • Phillips JR, White JK. A precorrected-FFT method for electrostatic analysis of complicated 3-D structures. IEEE Trans. Comput. Aided Des. Integr. Circuits Syst. 1997;16:1059–1072.
  • Zhao K, Vouvakis MN, Lee J-F. The adaptive cross approximation algorithm for accelerated method of moments computations of EMC problems. IEEE Trans. Electromagn. Compat. 2005;47:763–773.
  • Chen XL, Gu CQ, Niu ZY, Li Z. Fast dipole method for electromagnetic scattering from perfect electric conducting targets. IEEE Trans. Antennas Propag. 2012;60:1186–1191.
  • Chen XL, Li Z, Niu ZY, Gu CQ. Analysis of electromagnetic scattering from PEC targets using improved fast dipole method. J. Electromagn. Waves Appl. 2012;25:2254–2263.
  • Lucente E, Monorchio A, Mittra R. An iteration-free MoM approach based on excitation independent characteristic basis functions for solving large multiscale electromagnetic scattering problems. IEEE Trans. Antennas Propag. 2008;56:999–1007.
  • Delgado C, Catedra MF, Mittra R. Efficient multilevel approach for the generation of characteristic basis functions for large scatters. IEEE Trans. Antennas Propag. 2008;56:2134–2137.
  • Maaskant R, Mittra R. Fast analysis of large antenna arrays using the characteristic basis function method and the adaptive cross approximation algorithm. IEEE Trans. Antennas Propag. 2008;56:3440–3451.
  • Hu L, Li LW, Mittra R. Electromagnetic scattering by finite periodic arrays using the characteristic basis function and adaptive integral methods. IEEE Trans. Antennas Propag. 2010;58:3086–3090.
  • Chen XL, Niu ZY, Li Z, Gu CQ. A hybrid fast dipole method and adaptive modified characteristic basis function method for electromagnetic scattering from perfect electric conducting targets. J. Electromagn. Waves Appl. 2011;25:1940–1952.
  • Yeo J, Koksoy S, Prakash VVS, Mittra R. Efficient generation of method of moments matrices using the characteristic function method. IEEE Trans. Antennas Propag. 2004;52:3405–3410.
  • Naeem M, Maaskant R, Kant GW, Kildal P-S, Mittra R. The method of equivalent dipole moments (MEDM) combined with CBFM for the fast and accurate solution of dielectric scattering problems. International Conference on Electromagnetics in Advanced Applications (ICEAA); Torino; 2011; p. 1013–1016.
  • Tsang L, Mandt CE, Ding DH. Monte Carlo simulations of the extinction rate of dense media with randomly distributed dielectric spheres based on solution of Maxwell’s equations. Opt. Lett. 1992;17:314–316.
  • Sun YF, Chan CH, Mittra R, Tsang L. Characteristic basis function method for solving large problems arising in dense medium scattering. IEEE Antennas Propag. Soc. Int. Symp; Columbus; 2003; p. 1068–1071.

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