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First approach to continuous tracking of emotional temperature

机译:连续跟踪情绪温度的第一种方法

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A wide range of new applications can arise from the emotional state assessment obtained from speech signal, which represents a marked improvement in the human-machine interfaces and becomes an important research area in the last years. The study of emotions is not a trivial task and involves a degree of difficulty. The great majority of researches on speech emotion recognition have been made on the basis of record repositories consisting short sentences recorded in laboratory conditions. In this work we propose a strategy, previously validated under the conditions described above, for continuous tracking in long-term samples of speech in which there are emotional changes during the speech. This strategy uses a few prosodic and paralinguistic features set obtained from a temporal segmentation of the speech signal, which is more appropriate in real-world scenarios. In this paper a simple and effective method of automatic discrimination between positive and negative emotional intensity speech, named Emotional Temperature, is presented. This strategy is robust, offers low computational cost, ability to detect emotional changes and improves the performance of a segmentation based on linguistic aspects.
机译:从语音信号获得的情绪状态评估可以产生各种各样的新应用,这代表了人机界面的显着改善,并且在最近几年成为重要的研究领域。对情绪的研究不是一件容易的事,它涉及一定程度的困难。关于语音情感识别的绝大多数研究都是基于包含在实验室条件下记录的简短句子的记录库。在这项工作中,我们提出了一种策略,该策略先前已在上述条件下得到验证,用于在语音中存在情感变化的长期语音样本中进行连续跟踪。该策略使用从语音信号的时间分段获得的一些韵律和副语言特征集,这在现实情况下更合适。本文提出了一种简单有效的自动区分正负情绪强度语音的方法,称为情绪温度。该策略功能强大,计算成本低,能够检测到情绪变化并基于语言方面提高了细分效果。

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