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Expansion of Sentiment Lexicon Based on Label Propagation

机译:基于标签传播的情感词典扩展

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Sentiment lexicons play a vital role in the field of sentiment classification. The existing sentiment lexicon has problems such as limited coverage and poor adaptability in the field. Building an sentiment lexicon with large coverage and strong adaptability in the field has become a challenge in this field. This paper proposes a new method for selecting seed words. Firstly, the seed words are manually selected based on the general lexicon. Then, the word vectors are trained on the corpus by the seed words selected artificially. Finally, the expanded seed words are obtained. Obtaining sentiment polarity by calculating the similarity between the seed words and the candidate sentiment words, constructing propagation map and propagation matrix to construct sentiment lexicon. The experimental results show that the method can obtain higher accuracy and better robustness compared with the baseline method.
机译:情感词典在情感分类领域起着至关重要的作用。现有的情感词典存在诸如覆盖范围有限和在该领域中的适应性差的问题。在该领域中构建具有广泛覆盖和强大适应性的情感词典已成为该领域的挑战。本文提出了一种选择种子词的新方法。首先,基于一般词典手动选择种子词。然后,通过人工选择的种子词在语料库上训练词向量。最后,获得扩展的种子词。通过计算种子词与候选词之间的相似度,得到词的极性,构建传播图和传播矩阵,构建词库。实验结果表明,与基线方法相比,该方法可以获得更高的精度和更好的鲁棒性。

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