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10.1109/ICDM.2012.58guideproceedingsArticle/Chapter ViewAbstractPublication PagesConference Proceedingsacm-pubtype
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Sparse Bayesian Adversarial Learning Using Relevance Vector Machine Ensembles

Published: 10 December 2012 Publication History

Abstract

Data mining tasks are made more complicated when adversaries attack by modifying malicious data to evade detection. The main challenge lies in finding a robust learning model that is insensitive to unpredictable malicious data distribution. In this paper, we present a sparse relevance vector machine ensemble for adversarial learning. The novelty of our work is the use of individualized kernel parameters to model potential adversarial attacks during model training. We allow the kernel parameters to drift in the direction that minimizes the likelihood of the positive data. This step is interleaved with learning the weights and the weight priors of a relevance vector machine. Our empirical results demonstrate that an ensemble of such relevance vector machine models is more robust to adversarial attacks.

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  • (2016)Adversarial Data MiningProceedings of the 2016 ACM SIGSAC Conference on Computer and Communications Security10.1145/2976749.2976753(1866-1867)Online publication date: 24-Oct-2016
  • (2016)Modeling Adversarial Learning as Nested Stackelberg GamesProceedings, Part II, of the 20th Pacific-Asia Conference on Advances in Knowledge Discovery and Data Mining - Volume 965210.1007/978-3-319-31750-2_28(350-362)Online publication date: 19-Apr-2016
  1. Sparse Bayesian Adversarial Learning Using Relevance Vector Machine Ensembles

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    Published In

    cover image Guide Proceedings
    ICDM '12: Proceedings of the 2012 IEEE 12th International Conference on Data Mining
    December 2012
    1230 pages
    ISBN:9780769549057

    Publisher

    IEEE Computer Society

    United States

    Publication History

    Published: 10 December 2012

    Author Tags

    1. adversarial learning
    2. kernel parameter learning
    3. relevance vector machine
    4. spare Bayesian learning

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    Cited By

    View all
    • (2016)Adversarial Data MiningProceedings of the 2016 ACM SIGSAC Conference on Computer and Communications Security10.1145/2976749.2976753(1866-1867)Online publication date: 24-Oct-2016
    • (2016)Modeling Adversarial Learning as Nested Stackelberg GamesProceedings, Part II, of the 20th Pacific-Asia Conference on Advances in Knowledge Discovery and Data Mining - Volume 965210.1007/978-3-319-31750-2_28(350-362)Online publication date: 19-Apr-2016

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