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      Graph Convolutional Networks for Cross-Modal Information Retrieval

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      Wireless Communications and Mobile Computing
      Hindawi Limited

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          Abstract

          In recent years, due to the wide application of deep learning and more modal research, the corresponding image retrieval system has gradually extended from traditional text retrieval to visual retrieval combined with images and has become the field of computer vision and natural language understanding and one of the important cross-research hotspots. This paper focuses on the research of graph convolutional networks for cross-modal information retrieval and has a general understanding of cross-modal information retrieval and the related theories of convolutional networks on the basis of literature data. Modal information retrieval is designed to combine high-level semantics with low-level visual capabilities in cross-modal information retrieval to improve the accuracy of information retrieval and then use experiments to verify the designed network model, and the result is that the model designed in this paper is more accurate than the traditional retrieval model, which is up to 90%.

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          Most cited references12

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          Image Search with Selective Match Kernels: Aggregation Across Single and Multiple Images

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            Asymmetric Binary Coding for Image Search

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              CRF learning with CNN features for image segmentation

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                Author and article information

                Contributors
                Journal
                Wireless Communications and Mobile Computing
                Wireless Communications and Mobile Computing
                Hindawi Limited
                1530-8677
                1530-8669
                January 6 2022
                January 6 2022
                : 2022
                : 1-8
                Affiliations
                [1 ]College of Computer Science and Technology, Beihua University, Jilin, 132000 Jilin, China
                Article
                10.1155/2022/6133142
                78442498-1132-4446-9459-266c5fe0cbe6
                © 2022

                https://creativecommons.org/licenses/by/4.0/

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