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Personalized Detection of Explosive Cough Events in Patients With Pulmonary Disease

机译:肺病患者爆发性咳嗽事件的个性化检测

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We present a new method for the discrimination of explosive cough events based on a combination of spectral and pitch-related features. The method was tested on 16 distinct partitions of a database with 9 patients. After a pre-processing stage where non-relevant segments were discarded, we have extracted eight features from each of the other segments and have fed them to the classifiers. Four types of algorithms were implemented to classify the events, with Bayesian classifiers achieving the best performance. Preliminary results showed that performance increased when the analysis was performed on individual subjects and when specific sensor locations were chosen. These results demonstrate that personalizing the analysis is a promising approach and shed some light on where to put sensors when automatic analysis is performed in the future.
机译:我们提出了一种基于频谱和音高相关特征的爆发性咳嗽事件判别的新方法。在9名患者的数据库的16个不同分区上对该方法进行了测试。经过预处理阶段,丢弃了不相关的细分,我们从其他每个细分中提取了8个特征,并将其提供给了分类器。实施了四种类型的算法来对事件进行分类,其中贝叶斯分类器实现了最佳性能。初步结果表明,对单个对象进行分析并选择特定的传感器位置后,性能会提高。这些结果表明,个性化分析是一种有前途的方法,并为将来进行自动分析时在何处放置传感器提供了一些启示。

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