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IJCNN
2000
IEEE

Incremental Active Learning with Bias Reduction

13 years 9 months ago
Incremental Active Learning with Bias Reduction
The problem of designing input signals for optimal generalization in supervised learning is called active learning. In many active learning methods devised so far, the bias of the learning results is assumed to be zero. In this paper, we remove this assumption and propose a new active learning method with the bias reduction. The effectiveness of the proposed method is demonstrated through computer simulations.
Masashi Sugiyama, Hidemitsu Ogawa
Added 31 Jul 2010
Updated 31 Jul 2010
Type Conference
Year 2000
Where IJCNN
Authors Masashi Sugiyama, Hidemitsu Ogawa
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