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Automated Rule Selection for Aspect Extraction in Opinion Mining

机译:意见采矿中的各方提取的自动规则选择

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Aspect extraction aims to extract fine-grained opinion targets from opinion texts. Recent work has shown that the syntactical approach, which employs rules about grammar dependency relations between opinion words and aspects, performs quite well. This approach is highly desirable in practice because it is unsupervised and domain independent. However, the rules need to be carefully selected and tuned manually so as not to produce too many errors. Although it is easy to evaluate the accuracy of each rule automatically, it is not easy to select a set of rules that produces the best overall result due to the overlapping coverage of the rules. In this paper, we propose a novel method to select an effective set of rules. To our knowledge, this is the first work that selects rules automatically. Our experiment results show that the proposed method can select a subset of a given rule set to achieve significantly better results than the full rule set and the existing state-of-the-art CRF-based supervised method.
机译:方面提取旨在从舆论文本中提取细粒度的意见目标。最近的工作表明,借鉴意见词和方面之间的语法依赖关系规则的句法方法表现得很好。这种方法在实践中非常可取,因为它是无人监督的和域独立。但是,需要手动仔细选择和调整规则,以免产生太多错误。虽然很容易评估每个规则的准确性,但由于规则的重叠覆盖范围,选择一组规则并不容易。在本文中,我们提出了一种新颖的方法来选择有效的规则。据我们所知,这是自动选择规则的第一个工作。我们的实验结果表明,所提出的方法可以选择给定规则集的子集,以实现比完整规则集和基于现有的基于CRF的监督方法的显着更好的结果。

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