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research-article

Transductive Multilabel Learning via Label Set Propagation

Published: 01 March 2013 Publication History

Abstract

The problem of multilabel classification has attracted great interest in the last decade, where each instance can be assigned with a set of multiple class labels simultaneously. It has a wide variety of real-world applications, e.g., automatic image annotations and gene function analysis. Current research on multilabel classification focuses on supervised settings which assume existence of large amounts of labeled training data. However, in many applications, the labeling of multilabeled data is extremely expensive and time consuming, while there are often abundant unlabeled data available. In this paper, we study the problem of transductive multilabel learning and propose a novel solution, called Trasductive Multilabel Classification (TraM), to effectively assign a set of multiple labels to each instance. Different from supervised multilabel learning methods, we estimate the label sets of the unlabeled instances effectively by utilizing the information from both labeled and unlabeled data. We first formulate the transductive multilabel learning as an optimization problem of estimating label concept compositions. Then, we derive a closed-form solution to this optimization problem and propose an effective algorithm to assign label sets to the unlabeled instances. Empirical studies on several real-world multilabel learning tasks demonstrate that our TraM method can effectively boost the performance of multilabel classification by using both labeled and unlabeled data.

Cited By

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  • (2024)Semi-Supervised Predictive Clustering Trees for (Hierarchical) Multi-Label ClassificationInternational Journal of Intelligent Systems10.1155/2024/56102912024Online publication date: 1-Jan-2024
  • (2024)Correlation-enhanced feature learning for multi-label classificationProceedings of the 2024 International Conference on Computer and Multimedia Technology10.1145/3675249.3675300(289-295)Online publication date: 24-May-2024
  • (2024)Conditional Consistency Regularization for Semi-Supervised Multi-Label Image ClassificationIEEE Transactions on Multimedia10.1109/TMM.2023.332413226(4206-4216)Online publication date: 1-Jan-2024
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  1. Transductive Multilabel Learning via Label Set Propagation

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    Information & Contributors

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    Published In

    cover image IEEE Transactions on Knowledge and Data Engineering
    IEEE Transactions on Knowledge and Data Engineering  Volume 25, Issue 3
    March 2013
    239 pages

    Publisher

    IEEE Educational Activities Department

    United States

    Publication History

    Published: 01 March 2013

    Author Tags

    1. Closed-form solution
    2. Data mining
    3. Learning systems
    4. Machine learning
    5. Optimization
    6. Semisupervised learning
    7. Training data
    8. machine learning
    9. multilabel learning
    10. semi-supervised learning
    11. transductive learning
    12. unlabeled data

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    Cited By

    View all
    • (2024)Semi-Supervised Predictive Clustering Trees for (Hierarchical) Multi-Label ClassificationInternational Journal of Intelligent Systems10.1155/2024/56102912024Online publication date: 1-Jan-2024
    • (2024)Correlation-enhanced feature learning for multi-label classificationProceedings of the 2024 International Conference on Computer and Multimedia Technology10.1145/3675249.3675300(289-295)Online publication date: 24-May-2024
    • (2024)Conditional Consistency Regularization for Semi-Supervised Multi-Label Image ClassificationIEEE Transactions on Multimedia10.1109/TMM.2023.332413226(4206-4216)Online publication date: 1-Jan-2024
    • (2024)Transductive Reward Inference on GraphIEEE Transactions on Knowledge and Data Engineering10.1109/TKDE.2024.339820836:11(7217-7228)Online publication date: 1-Nov-2024
    • (2024)Self-training involving semantic-space finetuning for semi-supervised multi-label document classificationInternational Journal on Digital Libraries10.1007/s00799-023-00355-425:1(25-39)Online publication date: 1-Mar-2024
    • (2023)Improved Multi-label Propagation for Small Data with Multi-objective OptimizationMachine Learning and Knowledge Discovery in Databases: Research Track10.1007/978-3-031-43421-1_17(284-300)Online publication date: 18-Sep-2023
    • (2022)Robust Recurrent Classifier Chains for Multi-Label Learning with Missing LabelsProceedings of the 31st ACM International Conference on Information & Knowledge Management10.1145/3511808.3557438(582-591)Online publication date: 17-Oct-2022
    • (2022)Low rank label subspace transformation for multi-label learning with missing labelsInformation Sciences: an International Journal10.1016/j.ins.2022.03.015596:C(53-72)Online publication date: 1-Jun-2022
    • (2022)String kernels construction and fusion: a survey with bioinformatics applicationFrontiers of Computer Science: Selected Publications from Chinese Universities10.1007/s11704-021-1118-x16:6Online publication date: 1-Dec-2022
    • (2022)Discriminatory Label-specific Weights for Multi-label Learning with Missing LabelsNeural Processing Letters10.1007/s11063-022-10945-z55:2(1397-1431)Online publication date: 2-Jul-2022
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