基于深度学习的主题级情感分类模型

Lizhong Xiao, Liang Li
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引用次数: 0

摘要

主题级情感分类的关键是如何根据给定的主题词和语境句,构建与主题词相关的语境句表示。基于注意力和递归神经网络的方法可以根据主题词的表示进行端到端计算。这种方法在给定主题词和上下文句子部分的关联上取得了优异的成绩。本文对基于注意力机制的主流神经网络工作进行了改进,将注意力编码器网络(attention Encoder Networks, AEN)模型和注意力过度关注(attention Over attention)模型相结合,提出了一种基于bdci2018 -汽车行业用户视图主题的新的AEN-AOA模型,并在情绪识别任务上取得了良好的效果。该模型可以有效地挖掘基于话题层面的情感倾向,具有良好的应用前景和使用价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Topic-level Sentiment Classification Model Based on Deep Learning
The key point of topic-level sentiment classification is how to construct a contextual sentence representation related to the topic word according to the given topic word and context sentence. The method based on attention and recurrent neural network can be calculated end-to-end according to the topic word representation. This type of method has achieved excellent performance on the relevance of the given subject words and the parts of the context sentence. This paper improves the mainstream neural network work based on the attention mechanism, and combines the AEN (Attention Encoder Networks) model and the AOA (Attention Over Attention) model to propose a new AEN-AOA model, which is based on the BDCI2018-Automotive Industry User View Theme and Good results have been achieved on emotion recognition tasks. This model can effectively mine the emotional tendency based on the topic level, and has a good application prospect and use value.
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