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Multiple-Instance Learning: Multiple Feature Selection on Instance Representation

Published in Proceedings of the AAAI Conference on Artificial Intelligence • Aug 4, 2011
Authors:
I‐Hong Jhuo
,
D. T. Lee

Abstract

In multiple-Instance Learning (MIL), training class labels are attached to sets of bags composed of unlabeled instances, and the goal is to deal with classification of bags. Most previous MIL algorithms, which tackle classification problems, consider each instance as a represented feature. Although ...

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