Publication | Open Access
An Overview of Multi-Task Learning in Deep Neural Networks
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Citations
34
References
2017
Year
Artificial IntelligenceConvolutional Neural NetworkDeep Neural NetworksEngineeringMachine LearningData ScienceMultiple Instance LearningMachine Learning ModelMedical Image ComputingMultimodal LearningMulti-task LearningComputer ScienceDeep Learning
Multi-task learning (MTL) has led to successes in many applications of machine learning, from natural language processing and speech recognition to computer vision and drug discovery. This article aims to give a general overview of MTL, particularly in deep neural networks. It introduces the two most common methods for MTL in Deep Learning, gives an overview of the literature, and discusses recent advances. In particular, it seeks to help ML practitioners apply MTL by shedding light on how MTL works and providing guidelines for choosing appropriate auxiliary tasks.
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