Title :
Complexity reduction of partial update oversampled subband adaptive algorithms by selective pruning of polyphase components
Author :
Whyte, K.R.L. ; Sheikhzadeh, H. ; Brennan, R.L. ; Abutalebi, H.R.
Author_Institution :
AMI Semicond. Canada Co., Waterloo, Ont., Canada
Abstract :
Partial update algorithms such as sequential LMS have been proposed to reduce computation cost. To further decrease the computation cost for low-resource real-time echo cancellation by oversampled subband adaptive filters (OS-SAFs), we propose a new hybrid partial update algorithm. This algorithm, based on a polyphase perspective, selectively prunes (zeros out) polyphase components of the adaptive filter. When employed on OS-SAFs, the proposed algorithm achieves significant complexity reduction. This algorithm is applied to sequential versions of LMS and pseudo-affine projection algorithms employed to adapt OS-SAFs. Presented performance evaluations prove that considerable computation cost reduction (typically more than four times) is feasible with practically insignificant degradations in the steady-state performance of the OS-SAF system. Moreover, the algorithm does not affect initial convergence properties.
Keywords :
FIR filters; adaptive filters; echo suppression; least mean squares methods; FIR filters; OS-SAF; filter complexity reduction; hybrid partial update algorithm; oversampled subband adaptive filters; partial update oversampled subband adaptive algorithms; polyphase component selective pruning; pseudo-affine projection algorithm; real-time echo cancellation; sequential LMS; Adaptive algorithm; Adaptive filters; Ambient intelligence; Computational efficiency; Convergence; Echo cancellers; Filter bank; Finite impulse response filter; Least squares approximation; Signal analysis;
Conference_Titel :
Acoustics, Speech, and Signal Processing, 2005. Proceedings. (ICASSP '05). IEEE International Conference on
Print_ISBN :
0-7803-8874-7
DOI :
10.1109/ICASSP.2005.1416393