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Automatic Classification of Married Couples' Behavior using Audio Features

机译:使用音频功能自动分类已婚夫妇的行为

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In this work, we analyzed a 96-hour corpus of married couples spontaneously interacting about a problem in their relationship. Each spouse was manually coded with relevant session-level perceptual observations (e.g., level of blame toward other spouse, global positive affect), and our goal was to classify the spouses' behavior using features derived from the audio signal. Based on automatic segmentation, we extracted prosodic/spectral features to capture global acoustic properties for each spouse. We then trained gender-specific classifiers to predict the behavior of each spouse for six codes. We compare performance for the various factors (across codes, gender, classifier type, and feature type) and discuss future work for this novel and challenging corpus.
机译:在这项工作中,我们分析了一个96小时的已婚夫妇的语料库,这些语料库自发地就他们的恋爱关系进行互动。每个配偶均使用相关的会话级别的感性观察进行手动编码(例如,对其他配偶的责备程度,整体积极影响),我们的目标是使用从音频信号中得出的特征对配偶的行为进行分类。基于自动分割,我们提取韵律/频谱特征以捕获每个配偶的全局声学特性。然后,我们训练了针对性别的分类器,以预测六个代码中每个配偶的行为。我们比较各种因素(跨代码,性别,分类器类型和特征类型)的性能,并讨论该新颖而具有挑战性的语料库的未来工作。

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