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A Text Sentiment Classification Modeling Method Based on Coordinated CNN-LSTM-Attention Model

机译:基于协同CNN-LSTM-注意模型的文本情感分类建模方法

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摘要

The major challenge that text sentiment classification modeling faces is how to capture the intrinsic semantic,emotional dependence information and the key part of the emotional expression of text.To solve this problem,we proposed a Coordinated CNN-LSTM-Attention(CCLA) model.We learned the vector representations of sentence with CCLA unit.Semantic and emotional information of sentences and their relations are adaptively encoded to vector representations of document.We used softmax regression classifier to identify the sentiment tendencies in the text.Compared with other methods,the CCLA model can well capture the local and long distance semantic and emotional information.Experimental results demonstrated the effectiveness of CCLA model.It shows superior performances over several state-of-the-art baseline methods.
机译:文本情感分类建模面临的主要挑战是如何捕获文本的内在语义,情感依赖信息和情感表达的关键部分。为解决这一问题,我们提出了一种协调的CNN-LSTM-Attention(CCLA)模型。我们使用CCLA单元学习了句子的向量表示。句子的语义和情感信息及其关系被自适应编码为文档的向量表示。我们使用softmax回归分类器来识别文本中的情感倾向。与其他方法相比,CCLA实验结果证明了CCLA模型的有效性,它显示了优于几种最先进的基线方法的性能。

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  • 来源
    《电子学报(英文版)》 |2019年第1期|120-126|共7页
  • 作者单位

    Institute of Intelligent Information Processing, Beijing Information Science and Technology University,Beijing 100192, China;

    Beijing Laboratory of National Economic Security Early-Warning Engineering, Beijing 100192, China;

    Institute of Intelligent Information Processing, Beijing Information Science and Technology University,Beijing 100192, China;

    Institute of Intelligent Information Processing, Beijing Information Science and Technology University,Beijing 100192, China;

    Beijing Laboratory of National Economic Security Early-Warning Engineering, Beijing 100192, China;

    Institute of Intelligent Information Processing, Beijing Information Science and Technology University,Beijing 100192, China;

    Beijing Laboratory of National Economic Security Early-Warning Engineering, Beijing 100192, China;

    Institute of Intelligent Information Processing, Beijing Information Science and Technology University,Beijing 100192, China;

    Beijing Laboratory of National Economic Security Early-Warning Engineering, Beijing 100192, China;

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  • 入库时间 2022-08-19 04:27:33
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