Screening drug-target interactions with positive-unlabeled learning
Abstract Identifying drug-target interaction (DTI) candidates is crucial for drug repositioning. However, usually only positive DTIs are deposited in known databases, which challenges computational methods to predict novel DTIs due to the lack of negative samples. To overcome this dilemma, researche...
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Auteurs principaux: | , , , , , , |
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Format: | article |
Langue: | EN |
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Nature Portfolio
2017
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Accès en ligne: | https://doaj.org/article/656e1bfed72c43d39dedc4ea57292f76 |
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