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A New Baseline for Image Annotation

Published: 12 October 2008 Publication History

Abstract

Automatically assigning keywords to images is of great interest as it allows one to index, retrieve, and understand large collections of image data. Many techniques have been proposed for image annotation in the last decade that give reasonable performance on standard datasets. However, most of these works fail to compare their methods with simple baseline techniques to justify the need for complex models and subsequent training. In this work, we introduce a new baseline technique for image annotation that treats annotation as a retrieval problem. The proposed technique utilizes low-level image features and a simple combination of basic distances to find nearest neighbors of a given image. The keywords are then assigned using a greedy label transfer mechanism. The proposed baseline outperforms the current state-of-the-art methods on two standard and one large Web dataset. We believe that such a baseline measure will provide a strong platform to compare and better understand future annotation techniques.

Cited By

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  • (2024)Improving loss function for deep convolutional neural network applied in automatic image annotationThe Visual Computer: International Journal of Computer Graphics10.1007/s00371-023-02873-340:3(1617-1629)Online publication date: 1-Mar-2024
  • (2023)Multi-graph Laplacian Feature Mapping Incorporating Tag Information for Image AnnotationAI 2023: Advances in Artificial Intelligence10.1007/978-981-99-8388-9_1(3-14)Online publication date: 28-Nov-2023
  • (2022)M4IProceedings of the 36th International Conference on Neural Information Processing Systems10.5555/3600270.3600406(1867-1882)Online publication date: 28-Nov-2022
  • Show More Cited By

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Information & Contributors

Information

Published In

cover image Guide Proceedings
ECCV '08: Proceedings of the 10th European Conference on Computer Vision: Part III
October 2008
820 pages
ISBN:9783540886891
  • Editors:
  • David Forsyth,
  • Philip Torr,
  • Andrew Zisserman

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Springer-Verlag

Berlin, Heidelberg

Publication History

Published: 12 October 2008

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Cited By

View all
  • (2024)Improving loss function for deep convolutional neural network applied in automatic image annotationThe Visual Computer: International Journal of Computer Graphics10.1007/s00371-023-02873-340:3(1617-1629)Online publication date: 1-Mar-2024
  • (2023)Multi-graph Laplacian Feature Mapping Incorporating Tag Information for Image AnnotationAI 2023: Advances in Artificial Intelligence10.1007/978-981-99-8388-9_1(3-14)Online publication date: 28-Nov-2023
  • (2022)M4IProceedings of the 36th International Conference on Neural Information Processing Systems10.5555/3600270.3600406(1867-1882)Online publication date: 28-Nov-2022
  • (2020)Multi-label Quadruplet Dictionary LearningArtificial Neural Networks and Machine Learning – ICANN 202010.1007/978-3-030-61616-8_10(119-131)Online publication date: 15-Sep-2020
  • (2020)Imbalanced Continual Learning with Partitioning Reservoir SamplingComputer Vision – ECCV 202010.1007/978-3-030-58601-0_25(411-428)Online publication date: 23-Aug-2020
  • (2020)Recurrent Image Annotation with Explicit Inter-label DependenciesComputer Vision – ECCV 202010.1007/978-3-030-58526-6_12(191-207)Online publication date: 23-Aug-2020
  • (2019)Privacy-aware Tag Recommendation for Accurate Image Privacy PredictionACM Transactions on Intelligent Systems and Technology10.1145/333505410:4(1-28)Online publication date: 12-Aug-2019
  • (2019)Diverse image annotation with missing labelsPattern Recognition10.1016/j.patcog.2019.05.01893:C(470-484)Online publication date: 1-Sep-2019
  • (2019)A hybrid automatic image annotation approachMultimedia Tools and Applications10.1007/s11042-018-6742-678:9(11815-11834)Online publication date: 1-May-2019
  • (2019)Image annotation refinement via 2P-KNN based group sparse reconstructionMultimedia Tools and Applications10.1007/s11042-018-5925-578:10(13213-13225)Online publication date: 1-May-2019
  • Show More Cited By

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