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Influences of age in emotion recognition of spontaneous speech: A case of an under-resourced language

机译:年龄在自发性言论中的情绪认识的影响 - 以资源低调的语言为例

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Recognizing emotions using natural or spontaneous speech are extremely difficult compared to doing the same for acted or elicited speeches. Speech emotion recognition for real conversation such as spontaneous speech requires linguistic information of the speech to be included in the speech emotion recognition component to achieve a high recognition rate. However, with the lack of digital speech resources of an under-resourced language, this requirement poses a problem. In this paper, speech emotion recognition of spontaneous speech in Malay language using prosodic features and Random Forest classifier is presented. We also investigate the influence of age categorized as children, young adults and middle-aged on emotion recognition. Ninety spontaneous speech sentences from 30 native speakers of Malay language are collected and classified into three emotions, which are happy, angry and sad. Results show that the spontaneous speech of middle-aged group achieved the highest accuracy rate followed by children age group and finally the young adults. While sad emotions are recognized satisfactorily across all age groups, confusions exist between happy and angry emotions.
机译:与行为或引发的演讲相同,使用自然或自发言论的识别使用自然或自发言论的情绪非常困难。语音情感认识到自发性语音等真实对话需要语言的语言信息被包括在语音情绪识别组件中以实现高识别率。然而,随着资源不足的语言缺乏数字语音资源,这一要求构成了问题。本文介绍了使用韵律特征和随机森林分类器的马来语语言中自发言论的语音情感认识。我们还调查年龄分类为儿童,年轻成人和中年情绪认可的影响。从马来语的30个母语讲话中收集并分为三种情绪的九十自发性言论,这是一种快乐,愤怒和悲伤。结果表明,中年集团的自发言论实现了最高的准确率,然后是儿童年龄组,最后是年轻人。虽然悲伤的情绪在所有年龄群体中令人满意地认识到,但在快乐和愤怒的情绪之间存在混乱。

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