DocumentCode :
3086887
Title :
Adaptive Salient Block Based Image Retrieval in Multi-Feature Space
Author :
Zhang, Qianni ; Izquierdo, Ebroul
Author_Institution :
Univ. of London, London
fYear :
2007
fDate :
25-27 June 2007
Firstpage :
106
Lastpage :
113
Abstract :
In this paper, an approach to tackle the object based image retrieval problem is proposed. The core technique is designed to adaptively and efficiently locate the salient block of objects of interest in each image. The salient blocks are then used as cues for representing the whole images when semantic-based searching is performed. Relevance Feedback is seamlessly integrated in the retrieval process. In each iteration, the user is requested to select images relevant to the query concept. Salient blocks of the selected images are used as training examples. To guarantee the accuracy of salient block matching, the similarities of block regions are calculated within an optimised concept-specific multi-feature space. In the multi-feature space, it is expected that the visual patterns of objects of interest can be effectively discriminated from irrelevant regions. This multi-feature space metric is learned from a group of representative salient blocks using a multi-objective optimisation approach. An empirical assessment of the proposed technique was conducted. Selected results show good performance of the proposed approach.
Keywords :
image representation; image retrieval; optimisation; relevance feedback; adaptive salient block; concept-specific multifeature space; image representation; image retrieval; multiobjective optimisation approach; relevance feedback; representative salient blocks; semantic-based searching; Content based retrieval; Extraterrestrial measurements; Feedback; Focusing; Humans; Image retrieval; Image segmentation; Information retrieval; Layout; Radio frequency;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Content-Based Multimedia Indexing, 2007. CBMI '07. International Workshop on
Conference_Location :
Bordeaux
Print_ISBN :
1-4244-1011-8
Electronic_ISBN :
1-4244-1011-8
Type :
conf
DOI :
10.1109/CBMI.2007.385399
Filename :
4275062
Link To Document :
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