Title of article
Robust image retrieval with hidden classes
Author/Authors
Zhang، نويسنده , , Jun and Ye، نويسنده , , Yu-Lei and Xiang، نويسنده , , Yang and Zhou، نويسنده , , Wanlei، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2013
Pages
10
From page
670
To page
679
Abstract
For the purpose of content-based image retrieval (CBIR), image classification is important to help improve the retrieval accuracy and speed of the retrieval process. However, the CBIR systems that employ image classification suffer from the problem of hidden classes. The queries associated with hidden classes cannot be accurately answered using a traditional CBIR system. To address this problem, a robust CBIR scheme is proposed that incorporates a novel query detection technique and a self-adaptive retrieval strategy. A number of experiments carried out on the two popular image datasets demonstrate the effectiveness of the proposed scheme.
Keywords
Novel query detection , Content-based image retrieval , Hidden classes , Robust image retrieval , image classification
Journal title
Computer Vision and Image Understanding
Serial Year
2013
Journal title
Computer Vision and Image Understanding
Record number
1696962
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