Title :
Block-Toeplitz fast integral equation solver for large finite periodic and partially periodic antenna arrays
Author :
Bleszynski, E. ; Bleszynski, E. ; Jaroszewicz, T.
Author_Institution :
Monopole Res., Thousand Oaks, CA, USA
Abstract :
We propose a fast integral equation solver for large periodic and non-periodic finite antenna array systems. A key element of the algorithm is the rigorous block-Toeplitz method with an FFT-based matrix-vector product accelerator, which can be used in conjunction with either the conventional MoM, or with the AIM (adaptive integral method) or FMM (fast multipole method) compression techniques. We refer to the resulting algorithms as the Toeplitz-MoM, Toeplitz-AIM, or Toeplitz-FMM matrix compressions. For a periodic distribution of array elements, the algorithm exploits the block-Toeplitz structure of the impedance matrix in three dimensions and allows the implementation of matrix-vector multiplication in terms of discrete fast Fourier transforms (FFTs) in spatial variables associated with distances between the array elements. This approach generalizes to antenna arrays with boundaries, arrays located on substrates, and similar not entirely periodic systems.
Keywords :
Toeplitz matrices; antenna arrays; antenna theory; fast Fourier transforms; impedance matrix; integral equations; matrix multiplication; method of moments; periodic structures; AIM; FFT; FFT-based matrix-vector product accelerator; FMM; MoM; adaptive integral method; block-Toeplitz fast integral equation solver; discrete fast Fourier transforms; fast multipole method; finite antenna array systems; impedance matrix; matrix compression; matrix-vector multiplication; periodic antenna arrays; Acceleration; Antenna accessories; Antenna arrays; Costs; Fast Fourier transforms; Flexible printed circuits; Impedance; Integral equations; Message-oriented middleware; Periodic structures;
Conference_Titel :
Wireless Communication Technology, 2003. IEEE Topical Conference on
Print_ISBN :
0-7803-8196-3
DOI :
10.1109/WCT.2003.1321590