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Towards the search of detection in speech-relevant features for stress

机译:寻求语音相关特征中的压力检测

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Most of the parameters proposed for the characterization of the emotion in speech concentrate their attention on phonetic and prosodic features. Our approach goes beyond trying to relate the biometrical signature of voice with a possible neural activity that might generate alterations in voice production. A total of 68, acoustical, glottal and biomechanical parameters were extracted from neutral and stressed speeches. The importance of the parameters was evaluated using t-test, entropy, Receiver Operator Characteristic (ROC) and Wilcoxon methods and support vector machines algorithms for classification. The emotion under study is the stress produced when a speaker has to defend an idea opposite to his/her thoughts or feelings, and this stress is compared to self-consistent speech. The results show tremor in the vocal folds to be the most relevant feature.
机译:建议用于表征语音情感的大多数参数将其注意力集中在语音和韵律特征上。我们的方法超越了试图将语音的生物特征与可能的神经活动相关联的神经活动,这种活动可能会改变语音的产生。从中性和重音中提取了总共68个声学,声门和生物力学参数。使用t检验,熵,接收器操作员特征(ROC)和Wilcoxon方法以及支持向量机算法进行分类,评估了参数的重要性。研究中的情绪是说话者必须捍卫与他/她的思想或感觉相反的想法时产生的压力,并将这种压力与自洽的言语进行比较。结果表明,声带震颤是最相关的特征。

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