DocumentCode :
2957409
Title :
Calibrated Rank-SVM for multi-label image categorization
Author :
Jiang, Aiwen ; Wang, Chunheng ; Zhu, Yuanping
Author_Institution :
Key Lab. of Complex Syst. & Intell. Sci., Chinese Acad. of Sci., Beijing
fYear :
2008
fDate :
1-8 June 2008
Firstpage :
1450
Lastpage :
1455
Abstract :
In the area of multi-label image categorization, there are two important issues: label classification and label ranking. The former refers to whether a label is relevant or not, and the latter refers to what extent a label is relevant to an image. However, few existing papers have considered them in a holistic way. In this paper we will suggest a concrete improved method, named calibrated RankSVM, to bridge the gap between multi-label classification and label ranking. Through incorporating a virtual label as a calibrated scale, the threshold selection stage is embedded into ranking learning stage. This holistic way is essentially different from conventional rank methods, making our proposed method more suitable for multi-label classification task. The experiments on image have demonstrated that our algorithm has better multi-label classification performances than conventional RankSVM while preserving its good ranking characteristics.
Keywords :
image classification; image retrieval; learning (artificial intelligence); support vector machines; calibrated rank-support vector machine; label classification; label ranking; multi label image categorization; ranking learning stage; threshold selection stage; Automation; Bridges; Concrete; Image retrieval; Intelligent systems; Laboratories; Layout; Machine learning; Pattern recognition; Scalability;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Neural Networks, 2008. IJCNN 2008. (IEEE World Congress on Computational Intelligence). IEEE International Joint Conference on
Conference_Location :
Hong Kong
ISSN :
1098-7576
Print_ISBN :
978-1-4244-1820-6
Electronic_ISBN :
1098-7576
Type :
conf
DOI :
10.1109/IJCNN.2008.4633988
Filename :
4633988
Link To Document :
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