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A Classification Approach with a Reject Option for Multi-label Problems

机译:多标签问题的带有拒绝选项的分类方法

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We investigate the implementation of multi-label classification algorithms with a reject option, as a mean to reduce the time required to human annotators and to attain a higher classification accuracy on automatically classified samples than the one which can be obtained without a reject option. Based on a recently proposed model of manual annotation time, we identify two approaches to implement a reject option, related to the two main manual annotation methods: browsing and tagging. In this paper we focus on the approach suitable to tagging, which consists in withholding either all or none of the category assignments of a given sample. We develop classification reliability measures to decide whether rejecting or not a sample, aimed at maximising classification accuracy on non-rejected ones. We finally evaluate the trade-off between classification accuracy and rejection rate that can be attained by our method, on three benchmark data sets related to text categorisation and image annotation tasks.
机译:我们研究了带有拒绝选项的多标签分类算法的实现,这是为了减少人工注释者所需的时间,并在自动分类的样本上获得比没有拒绝选项的样本更高的分类精度。基于最近提出的手动注释时间模型,我们确定了两种实现拒绝选项的方法,它们与两种主要的手动注释方法有关:浏览和标记。在本文中,我们将重点放在适合标记的方法上,该方法包括保留给定样本的所有类别分配或不保留任何类别分配。我们制定分类可靠性度量标准来确定是否拒绝样本,旨在最大程度地提高未拒绝样本的分类准确性。最后,我们在与文本分类和图像标注任务相关的三个基准数据集上,评估了可以通过我们的方法实现的分类精度和拒绝率之间的权衡。

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