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首页> 外文期刊>International Journal of Computer Trends and Technology >Sentiment Computing for Visual Emotion Generation on Social Media using Text Mining
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Sentiment Computing for Visual Emotion Generation on Social Media using Text Mining

机译:使用文本挖掘在社交媒体上生成视觉情感的情感计算

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摘要

The fast increase of the World Wide Web has helped increased online communication and opened up newer streets for the general public to post their opinions online. This has led to a generation of large amounts of online content rich in user opinions, sentiments, emotions, and evaluations. We need computational approaches to successfully analyse this online content, recognize and aggregate relevant information, and draw useful conclusions. Much of the current work in this direction has typically focused on recognizing the polarity of sentiment (positiveegative). In this writing, we have suggested a system that recognizes the emotion from the text of Social networking websites by using a modified approach that uses affective word based and sentence context level emotion classification method. Also to adequately express the emotion of a user we have developed a visual image generation approach that generates images according to emotion in text.
机译:万维网的快速发展帮助增加了在线交流,并开辟了新的街道,让公众可以在线发表意见。这导致产生了大量的在线内容,这些内容丰富了用户的意见,情感,情感和评估。我们需要计算方法来成功分析此在线内容,识别和汇总相关信息并得出有用的结论。当前在这个方向上的许多工作通常都集中在识别情绪的极性(正/负)上。在本文中,我们提出了一种系统,该系统可以通过使用基于情感词和句子上下文级别情感分类方法的改进方法,从社交网站的文本中识别情感。为了充分表达用户的情感,我们还开发了一种可视图像生成方法,该方法根据文本中的情感生成图像。

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