DocumentCode :
3224691
Title :
Unsupervised extraction of salient region-descriptors for content based image retrieval
Author :
Dimai, Alexander
Author_Institution :
Commun. Technol. Lab., Swiss Federal Inst. of Technol., Zurich, Switzerland
fYear :
1999
fDate :
1999
Firstpage :
686
Lastpage :
691
Abstract :
Several content-based image retrieval systems use region-based descriptors of salient regions to represent the image content. In this application domain, no perfect pixel-wise segmentation is required, but instead, a stable and unsupervised extraction of salient region-descriptors is needed which might be generally applicable. Accordingly, in this paper an algorithm is proposed which combines local and area-based information of multidimensional features, such as luminance, color and texture to extract robustly region-descriptors of salient regions. Furthermore, the selection of the corresponding regions is parameter-free thus ensuring its general applicability. The algorithm is easy to extend to other feature types and has been used to extract salient regions from images of a large database consisting of outdoor scenes
Keywords :
brightness; content-based retrieval; feature extraction; image colour analysis; image representation; image segmentation; image texture; very large databases; visual databases; area-based information; color; content-based image retrieval; image database; image representation; large database; local information; luminance; multidimensional features; outdoor scenes; region-based descriptors; salient regions; texture; unsupervised extraction; Communications technology; Content based retrieval; Data mining; Electrical capacitance tomography; Image edge detection; Image retrieval; Image segmentation; Laboratories; Multimedia databases; Read only memory;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Image Analysis and Processing, 1999. Proceedings. International Conference on
Conference_Location :
Venice
Print_ISBN :
0-7695-0040-4
Type :
conf
DOI :
10.1109/ICIAP.1999.797674
Filename :
797674
Link To Document :
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