DocumentCode :
1652764
Title :
Entropic segmentation by region growing and merging for drop shape analysis
Author :
Gómez-Lopera, Juan F. ; Luque-Escamilla, Pedro L. ; Martínez-Aroza, José ; Roldán, Ramón Román ; Cabrerizo-Vílchez, Miguel A. ; Rodríguez-Valverde, Miguel A. ; Montes-Ruiz-Cabello, Francisco J.
Author_Institution :
Dept. de Fis. Aplic., Univ. de Granada, Granada, Spain
fYear :
2009
Firstpage :
98
Lastpage :
103
Abstract :
A new approach to image segmentation based on entropic region growing and merging, which is useful in drop shape analysis, is presented in this paper. The procedure works in three steps. First, a normalized divergence matrix is obtained which gives the likelihood of being a boundary pixel for each pixel in the image. Second, a region growing algorithm is carried out on the divergence matrix, keeping a record of boundaries between adjacent regions. Third, some regions are merged by following a combined entropic criterion, based on both the divergences of the matrix along the common boundary and the global divergence between two adjacent regions. The final contour is adapted by a dynamical spline fitting. This general purpose algorithm is presented here applied to drop shape analysis.
Keywords :
entropy; image segmentation; matrix algebra; splines (mathematics); adjacent region; boundary pixel; drop shape analysis; dynamical spline fitting; entropic criterion; entropic region growing; entropic segmentation; global divergence; image segmentation; normalized divergence matrix; region growing algorithm; region merging; Algorithm design and analysis; Background noise; Fitting; Image analysis; Image edge detection; Image segmentation; Merging; Pixel; Shape; Spline;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Local and Non-Local Approximation in Image Processing, 2009. LNLA 2009. International Workshop on
Conference_Location :
Tuusula
Print_ISBN :
978-1-4244-5167-8
Electronic_ISBN :
978-1-4244-5167-8
Type :
conf
DOI :
10.1109/LNLA.2009.5278396
Filename :
5278396
Link To Document :
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