• Multi-label learning is a common problem in real application. Covering algorithm performs well with single-label learning but can not deal with multi-label learning.

    标记学习实际应用中的一类常见问题覆盖算法单标记学习中表现出了优秀的性能,无法处理多标记情况。

    youdao

  • Real-world text documents usually belong to multiple classes simultaneously, and therefore, using multi-label learning technique to classify text documents is an important research direction.

    真实世界文档往往同时属于多个类别因此利用多标记学习技术进行文档分类一个重要研究方向。

    youdao

  • Aiming at the problems that active learning in multi-label classification is slowly, this paper proposes an improved method for multi-label classification which based on average expectation margin.

    针对标签主动学习速度较问题提出一种基于平均期望间隔的多标签分类的主动学习方法

    youdao

  • Aiming at the problems that active learning in multi-label classification is slowly, this paper proposes an improved method for multi-label classification which based on average expectation margin.

    针对标签主动学习速度较问题提出一种基于平均期望间隔的多标签分类的主动学习方法

    youdao

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