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New words enlightened sentiment analysis in social media

机译:新词启发了社交媒体中的情感分析

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Public sentiment permeated through social media is usually regarded as an important measure for hot event detecting, policy making and so forth, hence many governments and intelligence agencies have been launching various initiatives to facilitate theories, technologies and systems toward monitoring its fluctuation. Recently, massive new words are created and widely spread in social media, and they pose a great influence on sentiment analysis. Facing this situation, most previous work still just add those new words into sentiment lexicon, none of the existed researches focuses on the role and influence of new words in emotional expression. In this paper, we pay more attention to the influence of new words and propose two novel new words based sentiment analysis methods, named NWLb and NWSA, the former only with the help of lexicon and the latter further incorporates machine learning, which utilize the distinctive role of new words to improve the effectiveness of sentiment analysis in social media. Experiments on real social media dataset demonstrate the effectiveness and performance of our methods.
机译:通过社交媒体渗透的公众情绪通常被认为是检测热点事件,制定政策等的重要措施,因此,许多政府和情报机构已经发起了各种举措,以促进理论,技术和系统监测其波动。近来,大量新词被创造出来并在社交媒体中广泛传播,它们对情感分析产生了很大的影响。面对这种情况,大多数以前的工作仍然只是将这些新词添加到情感词典中,而现有的研究都没有集中于新词在情感表达中的作用和影响。在本文中,我们更加关注新词的影响,并提出了两种基于新词的情感分析方法,即NWLb和NWSA,前者仅在词典的帮助下,后者进一步结合了机器学习,从而利用了独特之处。新词在提高社交媒体情感分析效率方面的作用。在真实社交媒体数据集上的实验证明了我们方法的有效性和性能。

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