Bag-of-words based deep neural network for image retrieval

Yalong Bai, Chang Xu, Wei Yu, Kuiyuan Yang, Wei-Ying Ma, Tianjun Xiao, Tiejun Zhao

Research output: Chapters, Conference Papers, Creative and Literary WorksRGC 32 - Refereed conference paper (with host publication)peer-review

25 Citations (Scopus)

Abstract

This work targets image retrieval task hold by MSR-Bing Grand Challenge. Image retrieval is considered as a challenge task because of the gap between low-level image representation and high-level textual query representation. Recently further developed deep neural network sheds light on narrowing the gap by learning high-level image representation from raw pixels. In this paper, we proposed a bag-ofwords based deep neural network for image retrieval task, which learns high-level image representation and maps images into bag-of-words space. The DNN model is trained on the large scale clickthrough data, and the relevance between query and image is measured by the cosine similarity of query's bag-of-words representation and image's bag-ofwords representation predicted by DNN, the visual similarity of images is computed by high-level image representation extracted via the DNN model too. Finally, PageRank algorithm is used to further improve the ranking list by considering visual similarity of images for each query. The experimental results achieved state-of-the-art performance and verified the effectiveness of our proposed method.
Original languageEnglish
Title of host publicationMM 2014 - Proceedings of the 2014 ACM Conference on Multimedia
PublisherAssociation for Computing Machinery
Pages229-232
ISBN (Print)9781450330633
DOIs
Publication statusPublished - 3 Nov 2014
Externally publishedYes
Event2014 ACM Conference on Multimedia, MM 2014 - Orlando, United States
Duration: 3 Nov 20147 Nov 2014

Conference

Conference2014 ACM Conference on Multimedia, MM 2014
PlaceUnited States
CityOrlando
Period3/11/147/11/14

Bibliographical note

Publication details (e.g. title, author(s), publication statuses and dates) are captured on an “AS IS” and “AS AVAILABLE” basis at the time of record harvesting from the data source. Suggestions for further amendments or supplementary information can be sent to [email protected].

Research Keywords

  • Click data
  • Deep neural network
  • Image retrieval

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