Classifier Circle Method for Multi-Label Learning
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    Abstract:

    Exploiting label relationship to help improve learning performance is important for multi-label learning. The classifier chain method and its variants are shown to be a powerful solution to such a problem. However, its learning process requires the ordering of labels, which is hard to obtain in real-world situations, and incorrect label ordering may cause a suboptimal performance. To overcome the drawback, this paper presents a classifier circle method for multi-label learning. It initializes the label ordering randomly, and then subsequently and iteratively updates the classifier for each label by connecting the labels as a circle. Experimental results on a number of data sets show that the proposal outperforms classifier chains method as well as many state-of-the-art multi-label methods.

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王少博,李宇峰.用于多标记学习的分类器圈方法.软件学报,2015,26(11):2811-2819

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History
  • Received:June 08,2015
  • Revised:August 26,2015
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  • Online: November 04,2015
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