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Corpus-Based Techniques for Sentiment Lexicon Generation: A Review

机译:基于语料库的情感词汇生成技术:综述

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摘要

State-of-the-art sentiment analysis systems rely on a sentiment lexicon, which is the most essential feature that drives their performance. This resource is indispensable for, and greatly contributes to, sentiment analysis tasks. This is evident in the emergence of a large volume of research devoted to the development of automated sentiment lexicon generation algorithms. The task of tagging subjective words with a semantic orientation comprises two core approaches: dictionary-based and corpus-based. The former involves making use of an online dictionary to tag words, while the latter relies on co-occurrence statistics or syntactic patterns embedded in text corpora. The end result is a linguistic resource comprising a priori information about words, across the semantic dimension of sentiment. This paper provides a survey on the most prominent research works that utilize corpus-based techniques for sentiment lexicon generation. We also conduct a comparative analysis on the performance of state-of-the-art algorithms proposed for this task, and shed light on the current progress and challenges in this area.
机译:最新的情感分析系统依赖于情感词典,这是驱动其性能的最基本功能。此资源对于情感分析任务是必不可少的,并且极大地有助于情感分析任务。在大量致力于自动情感词典生成算法研究的出现中,这一点显而易见。使用语义方向标记主观单词的任务包括两种核心方法:基于字典的方法和基于语料库的方法。前者涉及使用在线词典来标记单词,而后者则依赖于嵌入在文本语料库中的共现统计或句法模式。最终结果是一种语言资源,包括跨情感的语义维度的有关单词的先验信息。本文对利用基于语料库的技术生成情感词典的最杰出研究工作进行了调查。我们还对针对此任务提出的最新算法的性能进行了比较分析,并阐明了该领域当前的进展和挑战。

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