DocumentCode
48618
Title
Study of the General Kalman Filter for Echo Cancellation
Author
Paleologu, Constantin ; Benesty, Jacob ; Ciochina, Silviu
Author_Institution
Telecommun. Dept., Univ. Politeh. of Bucharest, Bucharest, Romania
Volume
21
Issue
8
fYear
2013
fDate
Aug. 2013
Firstpage
1539
Lastpage
1549
Abstract
The Kalman filter is a very interesting signal processing tool, which is widely used in many practical applications. In this paper, we study the Kalman filter in the context of echo cancellation. The contribution of this work is threefold. First, we derive a different form of the Kalman filter by considering, at each iteration, a block of time samples instead of one time sample as it is the case in the conventional approach. Second, we show how this general Kalman filter (GKF) is connected with some of the most popular adaptive filters for echo cancellation, i.e., the normalized least-mean-square (NLMS) algorithm, the affine projection algorithm (APA) and its proportionate version (PAPA). Third, a simplified Kalman filter is developed in order to reduce the computational load of the GKF; this algorithm behaves like a variable step-size adaptive filter. Simulation results indicate the good performance of the proposed algorithms, which can be attractive choices for echo cancellation.
Keywords
Kalman filters; adaptive filters; least mean squares methods; signal processing; APA; GKF; NLMS algorithm; adaptive filters; affine projection algorithm; conventional approach; echo cancellation; general Kalman Filter; normalized least mean square algorithm; signal processing tool; Context; Echo cancellers; Frequency domain analysis; Kalman filters; Mathematical model; Speech; Vectors; Echo cancellation; Kalman filter; adaptive filters; affine projection algorithm (APA); normalized least-mean-square (NLMS) algorithm; proportionate APA (PAPA); recursive least-squares (RLS) algorithm;
fLanguage
English
Journal_Title
Audio, Speech, and Language Processing, IEEE Transactions on
Publisher
ieee
ISSN
1558-7916
Type
jour
DOI
10.1109/TASL.2013.2245654
Filename
6457439
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