OTHER
ON GENERALIZED MULTIPLE-INSTANCE LEARNING
Stephen Scott, Jun Zhang, Joshua W. Brown
- 发表年份
- 2005
- 引用次数
- 68
摘要
We describe a generalisation of the multiple-instance learning model in which a bag's label is not based on a single instance's proximity to a single target point. Rather, a bag is positive if and only if it contains a collection of instances, each near one of a set of target points. We then adapt a learning-theoretic algorithm for learning in this model and present empirical results on data from robot vision, content-based image retrieval, and protein sequence identification.
关键词
Computer scienceArtificial intelligenceMachine learningInstance-based learningSet (abstract data type)Sequence (biology)Identification (biology)Point (geometry)Pattern recognition (psychology)Semi-supervised learning
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