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Study of Sentiment Classification for Chinese Microblog Based on Recurrent Neural Network
Affiliation:Institute of Intelligent Information Processing, Beijing Information Science and Technology University, Beijing 100192, China
Abstract:The sentiment classification of Chinese Microblog is a meaningful topic. Many studies has been done based on the methods of rule and word-bag, and to understand the structure information of a sentence will be the next target. We proposed a sentiment classifica-tion method based on Recurrent neural network (RNN). We adopted the technology of distributed word represen-tation to construct a vector for each word in a sentence;then train sentence vectors with fixed dimension for dif-ferent length sentences with RNN, so that the sentence vectors contain both word semantic features and word se-quence features; at last use softmax regression classifier in the output layer to predict each sentence’s sentiment ori-entation. Experiment results revealed that our method can understand the structure information of negative sentence and double negative sentence and achieve better accuracy. The way of calculating sentence vector can help to learn the deep structure of sentence and will be valuable for dif-ferent research area.
Keywords:Recurrent neural network (RNN)  Dis-tributed representation  Sentiment classification  Sentence vector
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