Author :
Redif, Soydan ; McWhirter, John G. ; Weiss, Stephan
Author_Institution :
Electr. & Electron. Eng. Dept., Eur. Univ. of Lefke, Lefke, Cyprus
Abstract :
The problem of paraunitary (PU) filter bank design for subband coding has received considerable attention in recent years, not least because of the energy preserving property of this class of filter banks. In this paper, we consider the design of signal-adapted, finite impulse response (FIR), PU filter banks using polynomial matrix EVD (PEVD) techniques. Modifications are proposed to an iterative, time-domain PEVD method, known as the sequential best rotation (SBR2) algorithm, which enables its effective application to the problem of FIR orthonormal filter bank design for efficient subband coding. By choosing an optimization scheme that maximizes the coding gain at each stage of the algorithm, it is shown that the resulting filter bank behaves more and more like the infinite-order principle component filter bank (PCFB). The proposed method is compared to state-of-the-art techniques, namely the iterative greedy algorithm (IGA), the approximate EVD (AEVD), standard SBR2 and a fast algorithm for FIR compaction filter design, called the window method (WM). We demonstrate that for the calculation of the subband coder, the WM approach offers a low-cost alternative at lower coding gains, while at moderate to high complexity, the proposed approach outperforms the benchmarkers. In terms of run-time complexity, AEVD performs well at low orders, while the proposed algorithm offers a better coding gain than the benchmarkers at moderate to high filter order for a number of simulation scenarios.
Keywords :
FIR filters; computational complexity; eigenvalues and eigenfunctions; encoding; greedy algorithms; iterative methods; matrix decomposition; optimisation; FIR orthonormal filter bank; FIR paraunitary filter banks; approximate EVD; energy preserving property; infinite-order principle component filter bank; iterative greedy algorithm; iterative time-domain PEVD method; optimization scheme; polynomial eigenvalue decomposition; polynomial matrix EVD; sequential best rotation algorithm; signal-adapted finite impulse response; subband coding; window method; Algorithm design and analysis; Compaction; Covariance matrix; Encoding; Matrix decomposition; Polynomials; Signal processing algorithms; Orthonormal subband coders; paraunitary (PU) matrix; polynomial matrix eigenvalue decomposition; principal component filter banks (PCFB); sequential best rotation;