A Generalized Recurrent Neural Architecture for Text Classification with Multi-Task Learning
July 10, 2017 ยท Declared Dead ยท ๐ International Joint Conference on Artificial Intelligence
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Authors
Honglun Zhang, Liqiang Xiao, Yongkun Wang, Yaohui Jin
arXiv ID
1707.02892
Category
cs.CL: Computation & Language
Citations
62
Venue
International Joint Conference on Artificial Intelligence
Last Checked
3 months ago
Abstract
Multi-task learning leverages potential correlations among related tasks to extract common features and yield performance gains. However, most previous works only consider simple or weak interactions, thereby failing to model complex correlations among three or more tasks. In this paper, we propose a multi-task learning architecture with four types of recurrent neural layers to fuse information across multiple related tasks. The architecture is structurally flexible and considers various interactions among tasks, which can be regarded as a generalized case of many previous works. Extensive experiments on five benchmark datasets for text classification show that our model can significantly improve performances of related tasks with additional information from others.
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