DocumentCode :
3481162
Title :
Accurate semantic image labeling by fast Geodesic Propagation
Author :
Chen, Xiaowu ; Zhao, Dongyue ; Zhao, Yibiao ; Lin, Liang
Author_Institution :
State Key Lab. of Virtual Reality Technol. & Syst., Beihang Univ., Beijing, China
fYear :
2009
fDate :
7-10 Nov. 2009
Firstpage :
4021
Lastpage :
4024
Abstract :
Motivated by recently raised image semantic labeling problem, this paper studies a fast Geodesic Propagation (GP) algorithm that integrates recognition proposal and image compatibility into a graphical representation. Given the recognition proposal map of the image, the initial seeds are selected as confident pixels standing on local proposal peaks by Mean-shift algorithm. The geodesic distance is then defined on a hybrid manifold, combining the color and boundary features with the recognition proposal map. Based on the geodesic distance, the semantic labeling is simultaneously propagated from the initial seeds of all classes to the rest of image pixels. This inference algorithm is capable of multi-labeling an image of 2-mega pixels in one second (with a common PC). In the experiment, we test on 21 generic semantic categories (sky, road, grass ...) on MSRC dataset, and 17 categories on LHI dataset to evaluate the performance.
Keywords :
differential geometry; image colour analysis; image recognition; image segmentation; fast Geodesic propagation algorithm; graphical representation; image pixels; image semantic labeling; mean-shift algorithm; recognition proposal map; Image recognition; Image segmentation; Inference algorithms; Labeling; Layout; Markov random fields; Pixel; Proposals; Testing; Virtual reality; geodesic propagation; image segmentation; semantic labeling;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Image Processing (ICIP), 2009 16th IEEE International Conference on
Conference_Location :
Cairo
ISSN :
1522-4880
Print_ISBN :
978-1-4244-5653-6
Electronic_ISBN :
1522-4880
Type :
conf
DOI :
10.1109/ICIP.2009.5413752
Filename :
5413752
Link To Document :
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