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Social sensing and sentiment analysis: Using social media as useful information source

机译:社会传感与情感分析:使用社交媒体作为有用的信息来源

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In this paper, we briefly introduce the social sensing and sentiment analysis paradigms. The first one regards the general framework in which information coming from social media, and in particular from On Line Social Networks (OSNs), may be used for mining useful knowledge to be exploited in several real-world applications. Indeed, all the elements that people share on OSNs (texts, links, positions, images and so on) may be considered as the informative content of social or human sensors. This content may be used in several contexts such as real-time monitoring, prediction and identification of events, and for studying opinions, sentiments, moods and emotions that people share in the texts published on OSNs. The more specific framework, in which information coming from social networks are adopted for detecting the polarity (e.g., positive, neutral, or negative) of the sentiment associated with a text, is labelled as sentiment analysis. In this work, we also show two real-world applications of both social sensing and sentiment analysis.
机译:在本文中,我们简要介绍了社会传感和情感分析范式。第一个关于来自社交媒体信息的一般框架,以及尤其是在线社交网络(OSNS),可用于采矿在若干现实应用中的利用。实际上,人们分享OSNS(文本,链接,职位,图像等)的所有元素都可以被视为社会或人类传感器的信息丰富内容。该内容可以用于若干背景,例如实时监测,预测和识别事件,以及研究人们在OSN上发布的文本中分享的意见,情绪,情绪和情绪。更具体的框架,其中采用来自社交网络的信息来检测与文本相关的情绪的极性(例如,正,中性或阴性),被标记为情绪分析。在这项工作中,我们还展示了社会传感和情感分析的两个现实世界应用。

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