论文标题

分类中标签的概率解耦

Probabilistic Decoupling of Labels in Classification

论文作者

Nørregaard, Jeppe, Hansen, Lars Kai

论文摘要

在本文中,我们开发了一种有原则的,概率的,统一的方法来进行非标准的分类任务,例如半监督,积极的,无标记的,多质的无标记和嘈杂标签的学习。我们在给定标签上训练分类器以预测标签 - 分布。然后,我们通过变异优化标签级过渡模型来推断基础类别分布。

In this paper we develop a principled, probabilistic, unified approach to non-standard classification tasks, such as semi-supervised, positive-unlabelled, multi-positive-unlabelled and noisy-label learning. We train a classifier on the given labels to predict the label-distribution. We then infer the underlying class-distributions by variationally optimizing a model of label-class transitions.

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