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Multi-resolution classification techniques for PTSD detection from audio interviews.

机译:来自音频访谈的PTSD检测多分辨率分类技术。

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摘要

We describe a set of novel techniques used for identifying PTSD in patients from audio interviews. In particular, to improve classification performance, we utilize a multi-resolution decomposition of the audio signal into coarser and finer scales. We describe a simple ensemble probability averaging method together with a bagging approach, both of which outperform the classification scheme based on only the features of the untransformed signal. In addition, we describe our segmentation strategy and simple filtering techniques which can aid classification performance for audio recordings obtained in non-standardized recording conditions.
机译:我们描述了一组用于识别患者患者的专家组的新技术。特别是提高分类性能,我们利用音频信号的多分辨率分解成粗糙和更精细的尺度。我们描述了一种简单的集合概率平均方法以及袋装方法,两者都仅基于未转化信号的特征来胜过分类方案。此外,我们描述了我们的分段策略和简单的过滤技术,可以帮助在非标准化记录条件下获得的音频录制的分类性能。

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