DocumentCode :
734229
Title :
Semi-supervised Learning on Cross-Lingual Sentiment Analysis with Space Transfer
Author :
Xiaonan He ; Hui Zhang ; Wenhan Chao ; Deqing Wang
Author_Institution :
Sch. Comput. Sci. & Eng., Beihang Univ., Beijing, China
fYear :
2015
fDate :
March 30 2015-April 2 2015
Firstpage :
371
Lastpage :
377
Abstract :
In the task of cross-language sentiment classification, the monolingual machine learning based approaches suffer from the shortage of available sentiment resources in target language. In order to reduce the cost of labeling the documents from a new language, many proposed approaches transfer the sentiment knowledge from resource-rich languages (e.g. English) to resource-poor languages (e.g. Chinese). Although the labeled data are only available in source language, the utilization of the sentiment information in target language is often disregarded. In this paper, we propose a semi-supervise learning approach with space transfer to tackle the above task. The main idea of our method is trying to take advantage of the intrinsic sentiment knowledge in target language and to replenish the lost information during the transfer process. The empirical results demonstrate that our method outperforms the state-of-the-art without using any parallel corpora.
Keywords :
document handling; language translation; learning (artificial intelligence); linguistics; natural language processing; pattern classification; Chinese language; English language; cost reduction; cross-language sentiment classification; cross-lingual sentiment analysis; documents labeling; machine translation; monolingual machine learning based approaches; resource-poor languages; resource-rich languages; semisupervised learning; sentiment information; sentiment knowledge transfer; sentiment resources; space transfer; transfer process; Accuracy; Dictionaries; Semisupervised learning; Sentiment analysis; Support vector machines; Testing; Training; Cross-language Sentiment Analysis; Semi-supervised learning; Transfer Learning;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Big Data Computing Service and Applications (BigDataService), 2015 IEEE First International Conference on
Conference_Location :
Redwood City, CA
Type :
conf
DOI :
10.1109/BigDataService.2015.57
Filename :
7184904
Link To Document :
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