首页> 外文会议>International Conference on Affective Computing and Intelligent Interaction(ACII 2007); 20070912-14; Lisbon(PT) >Assessing Sentiment of Text by Semantic Dependency and Contextual Valence Analysis
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Assessing Sentiment of Text by Semantic Dependency and Contextual Valence Analysis

机译:通过语义依赖性和上下文价分析评估文本情感

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Text is not only an important medium to describe facts and events, but also to effectively communicate information about the writer's (positive or negative) sentiment underlying an opinion, and an affect or emotion (e.g. happy, fearful, surprised etc.). We consider sentiment assessment and emotion sensing from text as two different problems, whereby sentiment assessment is a prior task to emotion sensing. This paper presents an approach to sentiment assessment, i.e. the recognition of negative or positive sense of a sentence. We perform semantic dependency analysis on the semantic verb frames of each sentence, and apply a set of rules to each dependency relation to calculate the contextual valence of the whole sentence. By employing a domain-independent, rule-based approach, our system is able to automatically identify sentence-level sentiment. Empirical results indicate that our system outperforms another state-of-the-art approach.
机译:文本不仅是描述事实和事件的重要媒介,而且还可以有效地传达有关表达观点,情感或情感(例如高兴,恐惧,惊讶等)的作家的(正面或负面)情绪的信息。我们认为情感评估和文本情感感知是两个不同的问题,情感评估是情感感知的首要任务。本文提出了一种情感评估方法,即对句子的消极或积极意义的认识。我们对每个句子的语义动词框架进行语义依赖关系分析,并对每个依赖关系应用一组规则以计算整个句子的上下文价。通过采用独立于域的基于规则的方法,我们的系统能够自动识别句子级别的情感。经验结果表明,我们的系统优于另一种最先进的方法。

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