DocumentCode :
341898
Title :
Automatic lip tracking: Bayesian segmentation and active contours in a cooperative scheme
Author :
Lievin, M. ; Delmas, P. ; Coulon, P.Y. ; Luthon, E. ; Fristol, V.
Author_Institution :
Signal & Image Lab., Grenoble Nat. Polytech. Inst., France
Volume :
1
fYear :
1999
fDate :
36342
Firstpage :
691
Abstract :
An algorithm for speaker´s lip contour extraction is presented in this paper. A color video sequence of the speaker´s face is acquired under natural lighting conditions and without any particular make-up. First, a logarithmic color transform is performed from RGB to HI (hue, intensity) color space. A Bayesian approach segments the mouth area using Markov random field modelling. Motion is combined with red hue lip information into a spatiotemporal neighbourhood. Simultaneously, a region of interest and relevant boundary points are automatically extracted. Next, an active contour using spatially varying coefficients is initialised with the results of the preprocessing stage. Finally, an accurate lip shape with inner and outer borders is obtained with good quality results in this challenging situation
Keywords :
Bayes methods; Markov processes; feature extraction; image colour analysis; image motion analysis; image segmentation; image sequences; speech recognition; Bayesian approach; Bayesian segmentation; Markov random field modelling; active contours; automatic lip tracking; boundary point extraction; color space; color video sequence; cooperative scheme; lighting conditions; lip contour extraction; logarithmic color transform; motion analysis; region of interest; spatially varying coefficients; spatiotemporal neighbourhood; speech recognition; Active contours; Automatic speech recognition; Bayesian methods; Data mining; Face detection; Image segmentation; Laboratories; Mouth; Spatiotemporal phenomena; Video sequences;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Multimedia Computing and Systems, 1999. IEEE International Conference on
Conference_Location :
Florence
Print_ISBN :
0-7695-0253-9
Type :
conf
DOI :
10.1109/MMCS.1999.779283
Filename :
779283
Link To Document :
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