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SEMI-SUPERVISED CLASSIFICATION OF SPEAKER'S PSYCHOLOGICAL STRESS

机译:半监督扬声器心理压力分类

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It is well known that speech signal is affected by speaker's stress. Some of the recent works have evaluated different acoustic features individually for the detection of stress from speech. In our previous work, a new mixed feature (TEO-Pch-LFPC) was proposed for this purpose. Here, this feature is evaluated for the task of stress classification using simulated domain of SUSAS database. Although, we have used more simple classifiers than HMM, and the Round Robin Method is exerted, the classification accuracy rates are improved. Also, we present a semi-supervised approach which can efficiently employ unlabeled data in the structure of supervised classifiers. Experiments using this method result in greater classification rates with the same labeled data set.
机译:众所周知,语音信号受到扬声器的压力影响。最近的一些作品已经评估了从语音中检测压力的单独评估不同的声学特征。在我们以前的工作中,为此目的提出了一种新的混合特征(TEO-PCH-LFPC)。这里,使用Susas数据库的模拟域来评估该功能的应力分类任务。虽然,我们使用了比嗯的更简单的分类器,并且施加了循环方法,分类精度率得到改善。此外,我们提出了一种半监督方法,可以有效地在监督分类器的结构中使用未标记的数据。使用此方法的实验导致具有相同标记的数据集的更大的分类速率。

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