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First approach to continuous tracking of emotional temperature

机译:第一种持续跟踪情绪温度的方法

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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能出现各种新应用,这代表了人机界面的显着改善,并成为过去几年的重要研究领域。情绪的研究不是一项琐碎的任务,涉及难度。关于语音情感认可的大部分研究是根据在实验室条件中记录的短句子组成的记录存储库进行的。在这项工作中,我们提出了一种以前在上述条件下验证的策略,以便在讲话中连续跟踪语音的长期样本,在演讲中存在情绪变化。该策略使用了从语音信号的时间分割中获得的一些韵律和单语言特征集,这在现实世界中更合适。本文提出了一种简单且有效的自动歧视方法,肯定和负面情绪强度言论的自动歧视,命名为情绪温度。该策略是强大的,提供低计算成本,检测情绪变化的能力,并提高了基于语言方面的分割的性能。

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