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A Hierarchical multi-input and output Bi-GRU Model for Sentiment Analysis on Customer Reviews

机译:关于客户评论的情感分析的分层多输入和输出Bi-Gru模型

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Multi-label sentiment classification on customer reviews is a practical challenging task in Natural Language Processing. In this paper, we propose a hierarchical multi-input and output model based bi-directional recurrent neural network, which both considers the semantic and lexical information of emotional expression. Our model applies two independent Bi-GRU layer to generate part of speech and sentence representation. Then the lexical information is considered via attention over output of softmax activation on part of speech representation. In addition, we combine probability of auxiliary labels as feature with hidden layer to capturing crucial correlation between output labels. The experimental result shows that our model is computationally efficient and achieves breakthrough improvements on customer reviews dataset.
机译:客户评论的多标签情感分类是自然语言处理中的实际具备挑战性的任务。在本文中,我们提出了一种基于分层的多输入和输出模型的双向反复性神经网络,其都考虑了情绪表达的语义和词法信息。我们的模型应用两个独立的Bi-Gru层来生成部分语音和句子表示。然后通过注意在词语表示的部分上的SoftMax激活输出来考虑词汇信息。此外,我们将辅助标签的概率与隐藏层相结合,以捕获输出标签之间的关键相关性。实验结果表明,我们的模型是在计算上有效的,实现顾客评论数据集的突破性改进。

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