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Single- vs. multiple-instance classification

机译:单实例与多实例分类

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摘要

In multiple-instance (MI) classification, each input object or event is represented by a set of instances, named a bag, and it is the bag that carries a label. MI learning is used in different applications where data is formed in terms of such bags and where individual instances in a bag do not have a label. We review MI classification from the point of view of label information carried in the instances in a bag, that is, their sufficiency for classification. Our aim is to contrast MI with the standard approach of single-instance (SI) classification to determine when casting a problem in the MI framework is preferable. We compare instance-level classification, combination by noisy-or, and bag-level classification, using the support vector machine as the base classifier. We define a set of synthetic MI tasks at different complexities to benchmark different MI approaches. Our experiments on these and two real-world bioinformatics applications on gene expression and text categorization indicate that depending on the situation, a different decision mechanism, at the instance- or bag-level, may be appropriate. If the instances in a bag provide complementary information, a bag-level MI approach is useful; but sometimes the bag information carries no useful information at all and an instance-level SI classifier works equally well, or better. (C) 2015 Elsevier Ltd. All rights reserved.
机译:在多实例(MI)分类中,每个输入对象或事件都由一组实例(称为袋子)表示,袋子是带有标签的。 MI学习用于不同的应用程序,在这些应用程序中,根据此类袋子形成数据,并且袋子中的各个实例都没有标签。我们从包装袋中的实例中携带的标签信息的角度(即它们的分类充分性)的角度审查MI的分类。我们的目标是将MI与单实例(SI)分类的标准方法进行对比,以确定何时在MI框架中投放问题是可取的。我们使用支持向量机作为基础分类器,比较实例级别的分类,按“或”或“袋”分类的组合。我们定义了一组复杂程度不同的综合MI任务,以对不同的MI方法进行基准测试。我们在基因表达和文本分类的这两个以及两个现实世界中的生物信息学应用程序上的实验表明,根据情况,在实例或包级别上使用不同的决策机制可能是合适的。如果袋中的实例提供补充信息,则袋级MI方法将很有用;但是有时bag信息根本不包含有用的信息,并且实例级的SI分类器同样有效,甚至更好。 (C)2015 Elsevier Ltd.保留所有权利。

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