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Towards an Intelligent Emotional Detection in an E-Learning Environment

机译:朝着电子学习环境中的智能情绪检测

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Several research in psycho-pedagogy showed that the relevance of the training implies as many intellectual aspects as socio-emotional and the emotional state of the learner influence directly his performance in a positive or negative way. For that, the e-learning systems must take into account the emotional state of learners in order to favor their training. However, it is important to underline the implementation problem which is posed and summarized in the detection and the interpretation of the emotions which are not directly observable by the machine and which are generally expressed by a whole of behaviours whose indicators are either the words used, or the voice ton, the gestures and body attitudes or facial expressions. In this paper, we propose emotionally intelligent system architecture dedicated to the learning activities. We focus ourselves more particularly on the process of emotional recognition, ensured by agent EMOTIO, from a bimodal analysis of the speech and text used by a speaker's learner, in a training session, in order to improve the recognition precision (precision in acoustical analysis is 63.44% but precision in bimodal analysis is 71.2%). This analysis is based on the indices extraction on two linguistic levels: prosodic and lexical.
机译:在Psycho-Pedagogy的几个研究表明,培训的相关性意味着许多知识分子,作为学习者的社会情感和学习者的情感状态直接以积极或消极的方式影响他的性能。为此,电子学习系统必须考虑到学习者的情绪状态,以便赞成他们的培训。然而,重要的是强调在检测中提出和总结的实施问题,并且对机器直接可观察的情绪的解释,并且通常由整个行为表达,其指标是使用的单词的单词,或者语音吨,手势和身体态度或面部表情。在本文中,我们提出了致力于学习活动的情绪智能系统架构。我们更加专注于由代理体系确保的情绪认可的过程,从讲话者学习者在培训期间进行的言语和文本的双峰分析,以提高识别精度(声学分析的精确度双模分析中的63.44%但精度为71.2%)。该分析基于两个语言水平的索引提取:韵律和词汇。

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