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CKIP Valence-Arousal Predictor for IALP 2016 Shared Task

机译:IALP 2016共享任务的CKIP价数预测

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Sentiment analysis is an important task in natural language processing and computational linguistics. Automatic sentiment analysis has been widely applied to opinion reviews and social media for a variety of applications, such as marketing and customer services. The dimensional approach can provide more fine-grained sentiment analysis in which each vocabulary is assigned two continuous numerical values - valence and arousal. Our goal is to predict the both values for the unseen vocabularies. In this paper we propose a combination of three rating predictors - E-HowNet knowledge based, word embedding based and single character based predictors to predict Chinese vocabularies. In the IALP 2016 Shared Task (Dimensional Sentiment Analysis for Chinese Words), out of 32 teams, our system ranks top1 on the prediction of valence, and ranks top14 on the prediction of arousal.
机译:情感分析是自然语言处理和计算语言学中的重要任务。自动情感分析已广泛应用于舆论评论和社交媒体,以用于各种应用程序,例如市场营销和客户服务。量纲方法可以提供更细粒度的情感分析,其中为每个词汇表分配两个连续的数值-价和唤醒。我们的目标是预测看不见的词汇的两个值。在本文中,我们提出了三种评级预测器的组合-基于E-HowNet知识,基于词嵌入的预测器和基于单个字符的预测器来预测中文词汇。在IALP 2016共享任务(中文单词的维度情感分析)中,在32个团队中,我们的系统在效价预测中排名第一,在唤醒预测中排名第一。

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