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Clause sentiment identification based on convolutional neural network with context embedding

  • School of Computer Science and Technology, Harbin Institute of Technology

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Identifying sentiment of opinion target is an essential component of many tasks for sentiment analysis. We firstly identify the sentiment of the clause in which the specific opinion target lie and then infer the sentiment of opinion target from the sentiment of clause. In order to utilize context more adequately, We propose a novel model using Long Short-Term Memory(LSTM) and Convolutional Neural Network(CNN) together to identify the sentiment of clause. LSTM is used for generating context embedding and CNN is treated as a trainable feature detector. In the experiment using product reviews data, our model outperforms traditional methods in the aspect of accuracy. What's more, the time of model training is acceptable and our model is more scalable because we don't need to discovery rules manually and prepare lots of external language resources which is laborious and time-consuming.

Original languageEnglish
Title of host publication2016 12th International Conference on Natural Computation, Fuzzy Systems and Knowledge Discovery, ICNC-FSKD 2016
EditorsJiayi Du, Chubo Liu, Kenli Li, Lipo Wang, Zhao Tong, Maozhen Li, Ning Xiong
PublisherInstitute of Electrical and Electronics Engineers Inc.
Pages1532-1538
Number of pages7
ISBN (Electronic)9781509040933
DOIs
StatePublished - 19 Oct 2016
Externally publishedYes
Event12th International Conference on Natural Computation, Fuzzy Systems and Knowledge Discovery, ICNC-FSKD 2016 - Changsha, China
Duration: 13 Aug 201615 Aug 2016

Publication series

Name2016 12th International Conference on Natural Computation, Fuzzy Systems and Knowledge Discovery, ICNC-FSKD 2016

Conference

Conference12th International Conference on Natural Computation, Fuzzy Systems and Knowledge Discovery, ICNC-FSKD 2016
Country/TerritoryChina
CityChangsha
Period13/08/1615/08/16

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