Title :
A real-time implementation of a stereophonic acoustic echo canceler
Author :
Eneroth, Peter ; Gay, Steven L. ; Gänsler, Tomas ; Benesty, Jacob
Author_Institution :
Dept. of Appl. Electron., Lund Univ., Sweden
fDate :
7/1/2001 12:00:00 AM
Abstract :
Teleconferencing systems employ acoustic echo cancelers to reduce echoes that result from the coupling between loudspeaker and microphone. To enhance the sound realism, two-channel audio is necessary. However, stereophonic acoustic echo cancellation (SAEC) is more difficult to solve because of the necessity to uniquely identify two acoustic paths, which becomes problematic since the two excitation signals are highly correlated. In this paper, a wideband stereophonic acoustic echo canceler is presented. The fundamental difficulty of stereophonic acoustic echo cancellation is described and an echo canceler based on a fast recursive least squares (FRLS) algorithm in a subband structure, with equidistant frequency bands, is proposed. The structure has been used in a real-time implementation, with which experiments have been performed. In this paper, simulation results of this implementation on real life recordings, with 8 kHz bandwidth, are studied. The results clearly verify that the theoretic fundamental problem of SAEC also applies in real-life situations. They also show that more sophisticated adaptive algorithms are needed in the lower frequency regions than in the higher regions
Keywords :
acoustic signal processing; adaptive filters; audio signal processing; channel bank filters; echo suppression; least squares approximations; real-time systems; teleconferencing; 8 kHz; FRLS algorithm; SAEC; acoustic paths; adaptive algorithms; coupling; excitation signals; fast recursive least squares algorithm; loudspeaker; microphone; real-time implementation; stereophonic acoustic echo canceler; subband structure; teleconferencing systems; two-channel audio; wideband stereophonic acoustic echo canceler; Adaptive algorithm; Bandwidth; Echo cancellers; Frequency; Least squares methods; Loudspeakers; Microphones; Signal processing; Teleconferencing; Wideband;
Journal_Title :
Speech and Audio Processing, IEEE Transactions on