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Using Anaphora Resolution to Improve Opinion Target Identification in Movie Reviews

机译:使用申请者解决方案改善电影评论中的意见目标识别

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Current work on automatic opinion mining has ignored opinion targets expressed by anaphorical pronouns, thereby missing a significant number of opinion targets. In this paper we empirically evaluate whether using an off-the-shelf anaphora resolution algorithm can improve the performance of a baseline opinion mining system. We present an analysis based on two different anaphora resolution systems. Our experiments on a movie review corpus demonstrate, that an unsupervised anaphora resolution algorithm significantly improves the opinion target extraction. We furthermore suggest domain and task specific extensions to an off-the-shelf algorithm which in turn yield significant improvements.
机译:目前关于自动意见采矿的工作忽略了视者代表表达的意见目标,从而缺少大量意见目标。在本文中,我们经验评估了是否使用现成的搁板消旋量决议算法可以提高基线意见采矿系统的性能。我们基于两种不同的Apaphora解决系统进行了分析。我们对电影审查语料库的实验表明,无监督的阴道分辨率算法显着提高了意见靶提取。我们此外,建议域和任务特定扩展到现成的算法,这反过来产生显着的改进。

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