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Multi-Class Emotion Detection and Annotation in Malayalam Novels

机译:马拉雅拉姆语小说中的多类情感检测与注释

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Sentiment analysis or opinion mining has been used widely in various applications like market analysis. Usually during sentiment detection the polarity of the sentiment either positive or negative is detected. Basically there are multiple classes of emotions and so emotion detection is different from sentiment analysis. Reading a novel for a visually impaired person with the help of a text to speech synthesizer is still a challenging task, since it was not possible to modulate the sound with respect to the emotion in the text or dialogue. Text to speech softwares can synthesize the speech signal to embrace the emotions if the emotion of that particular text was already annotated. Multi-Class emotion detection aims analyse different emotions hidden in the text data. Multi-class emotion classification in Indian languages was not experimented before. In this paper, an SVM classifier is used for sentence level multi-class emotion detection in Malayalam. The proposed approach uses different syntactic features such as n-gram, POS related, negation related, level related features etc, for better classification. The classifier classifies the Malayalam sentences into different emotion classes like happy, sad, anger, fear or normal etc. with level information such as high, low etc. It also states whether the sentence is dialogue, question or not for better hearing experience from a speech synthesiser while reading the novel.
机译:情感分析或观点挖掘已广泛用于各种应用程序中,例如市场分析。通常在情感检测期间,检测到情感的极性为正或负。基本上有多种类别的情绪,因此情绪检测与情绪分析不同。借助文本到语音合成器为视障人士阅读小说仍然是一项艰巨的任务,因为无法根据文本或对话中的情感来调节声音。如果已经注释了特定文本的情感,则文本到语音软件可以合成语音信号以包含情感。多类别情感检测旨在分析隐藏在文本数据中的不同情感。以前没有尝试过使用印度语言进行多类别情感分类。本文将支持向量机分类器用于马拉雅拉姆语的句子级多类情感检测。所提出的方法使用不同的句法特征,例如n-gram,与POS相关,与否定相关,与级别相关的特征等,以实现更好的分类。分类器将马拉雅拉姆语句子分为不同的情感类别,如快乐,悲伤,愤怒,恐惧或正常等,并带有级别信息(例如高,低等)。它还指出句子是否是对话,问题或非疑问的,以使他们更好地聆听。读小说时的语音合成器。

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