DocumentCode :
3225481
Title :
Object-Based Regions of Interest for Image Compression
Author :
Han, Sunhyoung ; Vasconcelos, Nuno
Author_Institution :
Univ. of California at San Diego, La Jolla
fYear :
2008
fDate :
25-27 March 2008
Firstpage :
132
Lastpage :
141
Abstract :
A fully automated architecture for object-based region of interest (ROI) detection is proposed. ROI´s are defined as regions containing user defined objects of interest, and an efficient algorithm is developed for the detection of such regions. The algorithm is based on the principle of discriminant saliency, which defines as salient the image regions of strongest response to a set of features that optimally discriminate the object class of interest from all the others. It consists of two stages, saliency detection and saliency validation. The first detects salient points, the second verifies the consistency of their geometric configuration with that of training examples. Both the saliency detector and the configuration model can be learned from cluttered images downloaded from the web. Learning and ROI detection are optimal in the minimum probability of error (MPE) sense, and computationally efficient. This enables interactive user training of ROI-based image coders, with minimal amounts of manual supervision. Experimental results are presented for images of complex scenes, containing both objects and background clutter, and demonstrate good object-based ROI image compression performance.
Keywords :
data compression; image coding; object detection; cluttered images; image compression; manual supervision; minimum probability of error; regions of interest; saliency detection; saliency validation; user defined objects; Assembly; Computer architecture; Costs; Data compression; Detectors; Face detection; Filter bank; Image coding; Image processing; Object detection; ROI coding; object detection; region of interest detection;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Data Compression Conference, 2008. DCC 2008
Conference_Location :
Snowbird, UT
ISSN :
1068-0314
Print_ISBN :
978-0-7695-3121-2
Type :
conf
DOI :
10.1109/DCC.2008.94
Filename :
4483291
Link To Document :
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