DocumentCode :
3379688
Title :
A Nonparametric Discriminant Approach in Resolving Complex Multi-class Query for Content-based Image Retrieval
Author :
Chung, Kien-Ping ; Fung, Chun Che
fYear :
2005
fDate :
21-24 Nov. 2005
Firstpage :
1
Lastpage :
4
Abstract :
Content-based image retrieval (CBIR) systems have drawn intense interest from many researchers in recent years. Over this period, certain degree of success has been achieved in domain-oriented systems for applications such as facial recognition and medical diagnosis. However, the machine learning techniques used in these systems mostly assume that all the targeted images belong to a single group. Thus, most of the research efforts so far have been trying to search for one or a combination of global image features that can be used to differentiate the targeted images from the rest. This is not the case for a generic image database. Quite often, images that are similar semantically may be completely different with the visual context. In this paper, the authors propose a local grouping strategy together with a multiple Gaussian distributions distance ranking approach in an attempt to address the retrieval and ranking of images that belong to multiple disjoint groups.
Keywords :
Gaussian distribution; content-based retrieval; face recognition; feature extraction; image retrieval; visual databases; Gaussian distributions; complex multiclass query; content-based image retrieval; domain-oriented systems; facial recognition; image database; machine learning techniques; medical diagnosis; multiple disjoint groups; nonparametric discriminant approach; Content based retrieval; Face recognition; Feedback; Image databases; Image resolution; Image retrieval; Kernel; Machine learning; Support vector machine classification; Support vector machines; multi-point query; nonparametric discriminant analysis; relevance feedback;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
TENCON 2005 2005 IEEE Region 10
Conference_Location :
Melbourne, Qld.
Print_ISBN :
0-7803-9311-2
Electronic_ISBN :
0-7803-9312-0
Type :
conf
DOI :
10.1109/TENCON.2005.301240
Filename :
4085070
Link To Document :
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