DocumentCode
1396527
Title
Experimental evaluation of echo path modeling with chaotic coded speech
Author
Elmirghani, J.M.H. ; Milner, S.H. ; Cryan, R.A.
Author_Institution
Dept. of Electr. Electron. Eng, Univ. of Northumbria at Newcastle, Newcastle Upon Tyne, UK
Volume
45
Issue
10
fYear
1997
fDate
10/1/1997 12:00:00 AM
Firstpage
2600
Lastpage
2604
Abstract
An experimental evaluation of an echo-path modeling device is reported for chaotically-coded speech telephony circuits. The device provides an accurate characterization of the far-end echo path using only half-duplex near-end speech during conversational calls. The in-service nonintrusive systems of interest are usually based on a class of least-mean-square (LMS) digital adaptive filters (DAFs). The chaotic-based modulation regime exploits a logistic mapping to optimize the convergence rate of the model while preserving the signal bandwidth requirements. Experimental results show that uncoded speech is ineffective in driving the modeling device when noise-to-echo ratios exceed approximately -30 dB and thus invalidates live measurements. The chaotic modulation, however, increased the echo-to-noise ratio and allowed adaptation for far-end noise conditions exceeding 30 dBs higher than that of the uncoded case
Keywords
adaptive filters; chaos; digital filters; echo; least mean squares methods; modulation; speech coding; telecommunication network management; telephone networks; chaotic coded speech; chaotic modulation; chaotic-based modulation regime; convergence rate; conversational calls; echo path modeling; echo-path modeling device; far-end echo path; far-end noise conditions; half-duplex near-end speech; in service nonintrusive measurement device; in-service nonintrusive systems; logistic mapping; noise-to-echo ratios; signal bandwidth requirements; speech telephony circuit; uncoded speech; Adaptive filters; Chaos; Circuits; Convergence; Least squares approximation; Logistics; Signal mapping; Signal to noise ratio; Speech analysis; Telephony;
fLanguage
English
Journal_Title
Signal Processing, IEEE Transactions on
Publisher
ieee
ISSN
1053-587X
Type
jour
DOI
10.1109/78.640729
Filename
640729
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