4.6 Article

Social-oriented visual image search

Journal

COMPUTER VISION AND IMAGE UNDERSTANDING
Volume 118, Issue -, Pages 30-39

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.cviu.2013.06.011

Keywords

Social image search; Image reranking; Social relevance

Funding

  1. National Natural Science Foundation of China [61370022, 61003097, 60933013, 61210008]
  2. International Science and Technology Cooperation Program of China [2013DFG12870]
  3. National Program on Key Basic Research Project [2011CB302206]
  4. ARO [W911NF-12-1-0057]
  5. NSF [IIS 1052851]
  6. Google
  7. FXPAL
  8. NEC Laboratories of America
  9. UTSA START-R Research Award
  10. NSFC [61128007]
  11. NExT Research Center
  12. MDA, Singapore [WBS:R-252-300-001-490]

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Many research have been focusing on how to match the textual query with visual images and their surrounding texts or tags for Web image search. The returned results are often unsatisfactory due to their deviation from user intentions, particularly for queries with heterogeneous concepts (such as apple, jaguar) or general (non-specific) concepts (such as landscape, hotel). In this paper, we exploit social data from social media platforms to assist image search engines, aiming to improve the relevance between returned images and user intentions (i.e., social relevance). Facing the challenges of social data sparseness, the tradeoff between social relevance and visual relevance, and the complex social and visual factors, we propose a community-specific Social-Visual Ranking (SVR) algorithm to rerank the Web images returned by current image search engines. The SVR algorithm is implemented by PageRank over a hybrid image link graph, which is the combination of an image social-link graph and an image visual-link graph. By conducting extensive experiments, we demonstrated the importance of both visual factors and social factors, and the advantages of social-visual ranking algorithm for Web image search. (C) 2013 Elsevier Inc. All rights reserved.

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