文本情感评价的分析方法

M. Shaikh, H. Prendinger, M. Ishizuka
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引用次数: 8

摘要

在文本中描述的情绪(即坏的或好的意见)已经在三个不同的层面上进行了广泛的研究:单词、句子和文档层面。本文采用数值分析的方法,研究文本所传达的情感与自然语言结构之间的关系,为句子级情感分析提供了一种有基础的方法。人们采用了不同的方法来评估情感,尤其是从文本中,但没有一种方法考虑到我们所采用的基于价的情感评估结构。因此,本文描述了一种应用基于数值价的分析方法来分析句子中包含的感觉情绪的方法。为了实现这一目标,一种语言工具SenseNet已经被开发出来,它根据从输入句子中获得的每个语义动词框架提供词汇单位;根据它们的感觉亲和力为它们分配一个数值;使用规则评估值;最后输出每个输入句子的义价。对包含不同领域数据的各种数据集进行了几个实验。获得的结果表明,与现有的最先进的方法相比,性能有了显著提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An analytical approach to assess sentiment of text
Sentiment (i.e., bad or good opinion) described in texts has been studied widely, and at three different levels: word, sentence, and document level. This paper describes a well-founded approach for the task of sentence level sentiment analysis by studying the relationship between sentiments conveyed through texts and structure of natural language by a method of numerical analysis. Different approaches have been employed to ldquosenserdquo sentiment, especially from the texts, but none of those ever considered the valence based appraisal structure of sentiments which we have employed. Therefore the paper describes an approach to sense sentiments contained in a sentence by applying a numerical-valence based analysis. To meet this objective a linguistic tool, SenseNet, has been developed that provides lexical-units on the basis of each semantic verb frame obtained from the input sentence; assigns a numerical value to those based on their sense affinity; assesses the values using rules; and finally outputs sense-valence for each input sentence. Several experiments with a variety of datasets containing data from different domains have been conducted. The obtained results indicate significant performance gains over existing state-of-the-art approaches.
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