DocumentCode :
1065249
Title :
Common acoustical pole and zero modeling of room transfer functions
Author :
Haneda, Yoichi ; Makino, Shoji ; Kaneda, Yutaka
Author_Institution :
NTT Human Interface Labs., Tokyo, Japan
Volume :
2
Issue :
2
fYear :
1994
fDate :
4/1/1994 12:00:00 AM
Firstpage :
320
Lastpage :
328
Abstract :
A new model for a room transfer function (RTF) by using common acoustical poles that correspond to resonance properties of a room is proposed. These poles are estimated as the common values of many RTF´s corresponding to different source and receiver positions. Since there is one-to-one correspondence between poles and AR coefficients, these poles are calculated as common AR coefficients by two methods: (i) using the least squares method, assuming all the given multiple RTF´s have the same AR coefficients and (ii) averaging each set of AR coefficients estimated from each RTF. The estimated poles agree well with the theoretical poles when estimated with the same order as the theoretical pole order. When estimated with a lower order than the theoretical pole order, the estimated poles correspond to the major resonance frequencies, which have high Q factors. Using the estimated common AR coefficients, the proposed method models the RTF´s with different MA coefficients. This model is called the common-acoustical-pole and zero (CAPZ) model, and it requires far fewer variable parameters to represent RTF´s than the conventional all-zero or pole/zero model. This model was used for an acoustic echo canceller at low frequencies, as one example. The acoustic echo canceller based on the proposed model requires half the variable parameters and converges 1.5 times faster than one based on the all-zero model, confirming the efficiency of the proposed model
Keywords :
acoustic signal processing; architectural acoustics; echo suppression; least squares approximations; poles and zeros; resonance; stochastic processes; time series; transfer functions; AR coefficients; MA coefficients; acoustic echo canceller; acoustical; acoustical poles; acoustical zeros; common-acoustical-pole and zero model; high Q factors; least squares method; low frequencies; receiver position; resonance frequencies; resonance properties; room transfer functions; source position; Adaptive filters; Associate members; Convergence; Echo cancellers; Finite impulse response filter; Frequency estimation; Poles and zeros; Resonance; Reverberation; Transfer functions;
fLanguage :
English
Journal_Title :
Speech and Audio Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6676
Type :
jour
DOI :
10.1109/89.279281
Filename :
279281
Link To Document :
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