Title :
An efficient algorithm to design weighted minimax perfect reconstruction quadrature mirror filter banks
Author :
Chee-Kiang Coh ; Lim, Yong Ching
Author_Institution :
Dept. of Electr. Eng., Nat. Univ. of Singapore, Singapore
fDate :
12/1/1999 12:00:00 AM
Abstract :
An efficient algorithm is presented to design lattice structure two-channel perfect reconstruction quadrature mirror filter (PR-QMF) banks. We formulate the filter bank design problem as an unconstrained weighted least squares problem with respect to the coefficients of the lattice structure. The proposed iterative algorithm optimizes the lattice coefficients and provides flexible control of the filters´ stopband ripple profiles. Typically, only a few iterations of the algorithm are needed to obtain an optimal solution in the weighted minimax sense. We include a set of practical design rules for use with our algorithm. These rules allow very good estimation of important filter bank characteristics, such as the filter length and the number of signed digits for quantization of the lattice coefficients into canonic signed digit representation, to meet a given set of PR-QMF bank specifications
Keywords :
channel bank filters; circuit optimisation; iterative methods; lattice filters; least squares approximations; minimax techniques; network synthesis; quadrature mirror filters; quantisation (signal); signal reconstruction; PR-QMF bank specifications; canonic signed digit representation; efficient algorithm; filter bank characteristics; filter length; iterative algorithm; lattice coefficients optimisation; lattice coefficients quantisation; lattice structure coefficients; lattice structure two-channel PR-QMF banks; optimal solution; practical design rules; quadrature mirror filter banks design; stopband ripple profiles; unconstrained weighted least squares; weighted minimax perfect reconstruction QMF banks; Algorithm design and analysis; Filter bank; Image reconstruction; Image sequence analysis; Iterative algorithms; Lattices; Least squares methods; Minimax techniques; Mirrors; Quantization;
Journal_Title :
Signal Processing, IEEE Transactions on