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Opinion Mining in Hungarian based on textual and graphical clues

机译:在文本和图形线索的匈牙利语中挖掘矿业

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Opinion Mining aims at recognizing and categorizing or extracting opinions found in unstructured text resources and is one of the most dynamically evolving subdiscipline of Computational Linguistics showing some resemblance to document classification and information extraction tasks. In this paper we propose a novel approach in Opinion Mining which combines Machine Learning models based on traditional textual and graphical clues as well. By examining subjective messages in a given forum topic dealing with a specific voting question, our system makes a prediction about the opinion of unknown people, which can be utilized to predict the forthcoming result of a referendum. The novelty of the work is that beside the regular textual clues (i.e. uni-bigrams), decisions are enhanced by using knowledge derived from a so-called response graph, which represents the interactions between the forum members. Our experimental results showed that with the help of such a graph we were able to achieve better results and significantly outperform the baseline accuracy. The promising results have reinforced our expectations that such an application can be easily adapted to any future Opinion Mining task in the election domain.
机译:意见挖掘的目的是识别和分类或提取意见在非结构化的文本资源发现是计算语言学的最动态发展的分支学科呈现出一些相似之处文档分类和信息提取的任务之一。在本文中,我们提出的意见挖掘它结合了基于传统的文字和图形的线索,以及机器学习模型的新方法。由给定的论坛主题涉及具体的投票问题,在审查主观的消息,我们的系统做关于不明身份的人的意见,这可以用来预测公投即将结果的预测。工作的新颖之处在于常规的文本线索(即单向双字母组)的旁边,决定是通过使用从所谓的响应曲线图,其表示论坛成员之间的相互作用得到的知识增强。我们的实验结果表明,这样的图的帮助下,我们能够取得更好的成绩,并显著跑赢基准的精度。有希望的结果加强了我们的预期,这样的应用程序可以很容易地适应在选举领域的任何未来的意见挖掘任务。

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