Qiao Qian
2017
Linguistically Regularized LSTM for Sentiment Classification
Qiao Qian
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Minlie Huang
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Jinhao Lei
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Xiaoyan Zhu
Proceedings of the 55th Annual Meeting of the Association for Computational Linguistics (Volume 1: Long Papers)
This paper deals with sentence-level sentiment classification. Though a variety of neural network models have been proposed recently, however, previous models either depend on expensive phrase-level annotation, most of which has remarkably degraded performance when trained with only sentence-level annotation; or do not fully employ linguistic resources (e.g., sentiment lexicons, negation words, intensity words). In this paper, we propose simple models trained with sentence-level annotation, but also attempt to model the linguistic role of sentiment lexicons, negation words, and intensity words. Results show that our models are able to capture the linguistic role of sentiment words, negation words, and intensity words in sentiment expression.
2015
Learning Tag Embeddings and Tag-specific Composition Functions in Recursive Neural Network
Qiao Qian
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Bo Tian
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Minlie Huang
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Yang Liu
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Xuan Zhu
|
Xiaoyan Zhu
Proceedings of the 53rd Annual Meeting of the Association for Computational Linguistics and the 7th International Joint Conference on Natural Language Processing (Volume 1: Long Papers)
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Co-authors
- Minlie Huang 2
- Xiaoyan Zhu 2
- Bo Tian 1
- Yang Liu 1
- Xuan Zhu 1
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