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Aspect Extraction Performance with POS Tag Pattern of Dependency Relation in Aspect-based Sentiment Analysis

机译:基于方面的情感分析中具有依赖关系的POS标记模式的方面提取性能

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The most important task in aspect-based sentiment analysis (ABSA) is the aspect and sentiment word extraction. It is a challenge to identify and extract each aspect and it specific associated sentiment word correctly in the review sentence that consists of multiple aspects with various polarities expressed for multiple sentiments. By exploiting the dependency relation between words in a review, the multiple aspects and its corresponding sentiment can be identified. However, not all types of dependency relation patterns are able to extract candidate aspect and sentiment word pairs. In this paper, a preliminary study was performed on the performance of different type of dependency relation with different POS tag patterns in pre-extracting candidate aspect from customer review. The result contributes to the identification of the specific type dependency relation with it POS tag pattern that lead to high aspect extraction performance. The combination of these dependency relations offers a solution for single aspect single sentiment and multi aspect multi sentiment cases.
机译:基于方面的情感分析(ABSA)中最重要的任务是方面和情感词的提取。在复述句子中正确地识别和提取每个方面及其特定的相关情感词是一个挑战,复习句子由多个方面组成,这些方面针对多个情感表达了不同的极性。通过利用评论中单词之间的依赖关系,可以识别多个方面及其对应的情感。但是,并非所有类型的依赖关系模式都能够提取候选方面和情感词对。本文从客户评论的预提取候选方面对具有不同POS标签模式的不同类型的依存关系的性能进行了初步研究。结果有助于识别具有POS标签模式的特定类型相关性关系,从而导致高的方面提取性能。这些依赖关系的组合为单方面单情感和多方面多情感的情况提供了解决方案。

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