Identify Sentiment-Objects from Chinese Sentences Based on Skip Chain Conditional Random Fields Model

Minjie Zheng, Zhicheng Lei, Yue Liu, Xiangwen Liao, Guolong Chen
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引用次数: 3

Abstract

Sentiment-objects Extraction aims to identify the targets of opinion described in sentiment sentence. Previous research fails to deal with the long-distance dependencies in Chinese sentences such as opinion targets repeated and echo of the different part of sentence. In this paper, we describe a probabilistic approach that incorporates the long-distance dependencies to identify opinion targets. The skip-chain Conditional Random Fields (CRFs) is used to model the long distance dependencies between sentiment sentences such as the repeated word and similar expression. Experiments show that our method outperforms linear-chain CRFs based method, and it is effective to identify opinion targets from Chinese sentences.
基于跳跃链条件随机场模型的汉语句子情感对象识别
情感对象提取的目的是识别情感句中所描述的意见对象。以往的研究未能处理汉语句子中的远距离依赖关系,如句子不同部分的意见目标重复和回声。在本文中,我们描述了一种包含远程依赖关系的概率方法来识别意见目标。使用跳链条件随机场(CRFs)对重复词和相似表达等情感句之间的长距离依赖关系进行建模。实验表明,该方法优于基于线性链CRFs的方法,能够有效地从汉语句子中识别意见目标。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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