Sentiment classification in English from sentence-levelannotations of emotions regarding models of affect
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Publication date
2009-09-06Abstract
This paper presents a text classifier for automatically taggingthe sentiment of input text according to the emotion that is beingconveyed. This system has a pipelined framework composedof Natural Language Processing modules for feature extractionand a hard binary classifier for decision making between posi-tive and negative categories. To do so, the Semeval 2007 datasetcomposed of sentences emotionally annotated is used for train-ing purposes after being mapped into a model of affect. Theresulting scheme stands a first step towards a complete emotionclassifier for a future automatic expressive text-to-speech syn-thesizer.
Document Type
Article
Published version
Language
English
Keywords
Parla
Processament de la parla
Pages
4 p.
Publisher
10th Annual Conference of the International Speech Communication Association. INTERSPEECH 2009
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Rights
© International Speech Communitacion Association. Tots els drets reservats