Image retrieval by information fusion based on scalable vocabulary tree and robust Hausdorff distance

被引:0
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作者
Chang Che
Xiaoyang Yu
Xiaoming Sun
Boyang Yu
机构
[1] Harbin University of Science and Technology,The Higher Educational Key Laboratory for Measuring and Control Technology and Instrumentations of Heilongjiang Province
[2] Harbin University,School of Engineering
关键词
Image retrieval; Hausdorff distance; Information fusion; Scalable vocabulary tree;
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学科分类号
摘要
In recent years, Scalable Vocabulary Tree (SVT) has been shown to be effective in image retrieval. However, for general images where the foreground is the object to be recognized while the background is cluttered, the performance of the current SVT framework is restricted. In this paper, a new image retrieval framework that incorporates a robust distance metric and information fusion is proposed, which improves the retrieval performance relative to the baseline SVT approach. First, the visual words that represent the background are diminished by using a robust Hausdorff distance between different images. Second, image matching results based on three image signature representations are fused, which enhances the retrieval precision. We conducted intensive experiments on small-scale to large-scale image datasets: Corel-9, Corel-48, and PKU-198, where the proposed Hausdorff metric and information fusion outperforms the state-of-the-art methods by about 13, 15, and 15%, respectively.
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