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Unsupervised Deep Learning of Compact Binary Descriptors

Published: 01 June 2019 Publication History

Abstract

Binary descriptors have been widely used for efficient image matching and retrieval. However, most existing binary descriptors are designed with hand-craft sampling patterns or learned with label annotation provided by datasets. In this paper, we propose a new unsupervised deep learning approach, called DeepBit, to learn compact binary descriptor for efficient visual object matching. We enforce three criteria on binary descriptors which are learned at the top layer of the deep neural network: 1) minimal quantization loss, 2) evenly distributed codes and 3) transformation invariant bit. Then, we estimate the parameters of the network through the optimization of the proposed objectives with a back-propagation technique. Extensive experimental results on various visual recognition tasks demonstrate the effectiveness of the proposed approach. We further demonstrate our proposed approach can be realized on the simplified deep neural network, and enables efficient image matching and retrieval speed with very competitive accuracies.

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  • (2023)Deep Learning for Instance Retrieval: A SurveyIEEE Transactions on Pattern Analysis and Machine Intelligence10.1109/TPAMI.2022.321859145:6(7270-7292)Online publication date: 1-Jun-2023
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  1. Unsupervised Deep Learning of Compact Binary Descriptors
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        cover image IEEE Transactions on Pattern Analysis and Machine Intelligence
        IEEE Transactions on Pattern Analysis and Machine Intelligence  Volume 41, Issue 6
        June 2019
        252 pages

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        IEEE Computer Society

        United States

        Publication History

        Published: 01 June 2019

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        • (2023)Revisiting unsupervised local descriptor learningProceedings of the Thirty-Seventh AAAI Conference on Artificial Intelligence and Thirty-Fifth Conference on Innovative Applications of Artificial Intelligence and Thirteenth Symposium on Educational Advances in Artificial Intelligence10.1609/aaai.v37i3.25367(2680-2688)Online publication date: 7-Feb-2023
        • (2023)Deep Learning for Instance Retrieval: A SurveyIEEE Transactions on Pattern Analysis and Machine Intelligence10.1109/TPAMI.2022.321859145:6(7270-7292)Online publication date: 1-Jun-2023
        • (2023)Unsupervised Deep Hashing With Fine-Grained Similarity-Preserving Contrastive Learning for Image RetrievalIEEE Transactions on Circuits and Systems for Video Technology10.1109/TCSVT.2023.332044434:5(4095-4108)Online publication date: 28-Sep-2023
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        • (2022)Progressive Unsupervised Learning of Local DescriptorsProceedings of the 30th ACM International Conference on Multimedia10.1145/3503161.3547792(2371-2379)Online publication date: 10-Oct-2022
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        • (2021)Application of Digital Image Based on Machine Learning in Media Art DesignComputational Intelligence and Neuroscience10.1155/2021/85469872021Online publication date: 1-Jan-2021
        • (2021)Deep Unsupervised Binary Descriptor Learning Through Locality Consistency and Self DistinctivenessIEEE Transactions on Multimedia10.1109/TMM.2020.301612223(2770-2781)Online publication date: 1-Jan-2021
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