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Character-based BiLSTM-CRF Incorporating POS and Dictionaries for Chinese Opinion Target Extraction

机译:基于字符的BiLSTM-CRF结合POS和词典以进行中文观点目标提取

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Opinion target extraction (OTE) is a fundamental step for sentiment analysis and opinion summarization. We analyze the difference between Chinese and the Indo-European languages family, and reduce Chinese OTE to a character-based sequence tagging task. Then we introduce two novel features for each character by distributing POS differentially and using predefined templates over contexts and dictionaries. We further propose a character-based BiLSTM-CRF model incorporating the two feature sequences aligned with the character sequence. Experimental results on real-world consumer review datasets show that our work significantly outperforms the baseline methods for Chinese OTE.
机译:意见目标提取(OTE)是情感分析和意见总结的基本步骤。我们分析了中文和印欧语系之间的差异,并将中文OTE简化为基于字符的序列标记任务。然后,我们通过差异化地分配POS并在上下文和字典上使用预定义的模板,为每个字符引入两个新颖的功能。我们进一步提出了一个基于字符的BiLSTM-CRF模型,该模型结合了与字符序列对齐的两个特征序列。在真实世界的消费者评论数据集上的实验结果表明,我们的工作明显优于中国OTE的基准方法。

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