Title :
Multiresolution analysis similar to the FDTD method-derivation and application
Author :
Fujii, Masafumi ; Hoefer, Wolfgang J R
Author_Institution :
Dept. of Electr. & Comput. Eng., Victoria Univ., BC, Canada
fDate :
12/1/1998 12:00:00 AM
Abstract :
A three-dimensional (3-D) multiresolution analysis procedure similar to the finite-difference time-domain (FDTD) method is derived using a complete set of three-dimensional orthonormal bases of Haar scaling and wavelet functions. The expansion of the electric and the magnetic fields in these basis functions leads to the time iterative difference approximation of Maxwell´s equations that is similar to the FDTD method. This technique effectively models realistic microwave passive components by virtue of its multiresolution property; the computational time is reduced approximately by half compared to the FDTD method. The proposed technique is validated by analyzing several 3-D rectangular resonators with inhomogeneous dielectric loading. It is also applied to the analyses of microwave passive devices with open boundaries such as microstrip low-pass filters and spiral inductors to extract their S-parameters and field distributions. The results of the proposed technique agree well with those of the traditional FDTD method
Keywords :
Haar transforms; Maxwell equations; S-parameters; difference equations; electromagnetic field theory; microstrip components; microwave devices; strip line components; wavelet transforms; 3D analysis procedure; 3D orthonormal bases; 3D rectangular resonators; FDTD method; Haar scaling; Maxwell equations; S-parameters extraction; computational time reduction; field distributions extraction; inhomogeneous dielectric loading; microstrip low-pass filters; microwave passive component modelling; multiresolution analysis; open boundaries; spiral inductors; three-dimensional analysis procedure; time iterative difference approximation; wavelet functions; Finite difference methods; Iterative methods; Magnetic fields; Maxwell equations; Microwave devices; Microwave theory and techniques; Multiresolution analysis; Nonuniform electric fields; Time domain analysis; Wavelet analysis;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on