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A fuzzy classifier to deal with similarity between labels on automatic prosodic labeling

机译:一种模糊分类器,用于处理自动韵律标签上的标签之间的相似性

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This paper presents an original approach to automatic prosodic labeling. Fuzzy logic techniques are used for representing situations of high uncertainty with respect to the category to be assigned to a given prosodic unit. The Fuzzy Integer technique is used to combine the output of different base classifiers. The resulting fuzzy classifier benefits from the different capabilities of the base classifiers for identifying different types of prosodic events. At the same time, the fuzzy classifier identifies the events that are potentially more difficult to be labeled. The classifier has been applied to the identification of ToBI pitch accents. The state of the art on pitch accent multiclass classification reports around 70% accuracy rate. In this paper we describe a fuzzy classifier which assigns more than one label in confusing situations. We show that the pairs of labels that appear in these uncertain situations are consistent with the most confused pairs of labels reported in manual prosodic labeling experiments. Our fuzzy classifier obtains a soft classification rate of 81.8%, which supports the potential of the proposed system for computer assisted prosodic labeling.
机译:本文介绍了自动韵律标记的原始方法。模糊逻辑技术用于表示相对于要分配给给定韵律单元的类别的高度不确定性的情况。模糊整数技术用于组合不同基本分类器的输出。所得的模糊分类器得益于基本分类器用于识别韵律事件的不同类型的不同功能。同时,模糊分类器识别可能更难以标记的事件。分类器已应用于识别ToBI音调。有关音调重音多类分类的最新技术报告,其准确率约为70%。在本文中,我们描述了一种模糊分类器,该分类器在令人困惑的情况下分配了多个标签。我们表明,在这些不确定情况下出现的标记对与手动韵律标记实验中报告的最混淆的标记对一致。我们的模糊分类器获得了81.8%的软分类率,这支持了所提出的系统在计算机辅助韵律标记中的潜力。

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