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Repeatability of Commonly Used Speech and Language Features for Clinical Applications

机译:用于临床应用的常用语音和语言特征的可重复性

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Introduction: Changes in speech have the potential to provide important information on the diagnosis and progression of various neurological diseases. Many researchers have relied on open-source speech features to develop algorithms for measuring speech changes in clinical populations as they are convenient and easy to use. However, the repeatability of open-source features in the context of neurological diseases has not been studied. Methods: We used a longitudinal sample of healthy controls, individuals with amyotrophic lateral sclerosis, and individuals with suspected frontotemporal dementia, and we evaluated the repeatability of acoustic and language features separately on these 3 data sets. Results: Repeatability was evaluated using intraclass correlation (ICC) and the within-subjects coefficient of variation (WSCV). In 3 sets of tasks, the median ICC were between 0.02 and 0.55, and the median WSCV were between 29 and 79%. Conclusion: Our results demonstrate that the repeatability of speech features extracted using open-source tool kits is low. Researchers should exercise caution when developing digital health models with open-source speech features. We provide a detailed summary of feature-by-feature repeatability results (ICC, WSCV, SE of measurement, limits of agreement for WSCV, and minimal detectable change) in the online supplementary material so that researchers may incorporate repeatability information into the models they develop.
机译:简介:言语的变化有可能提供关于各种神经疾病的诊断和进展的重要信息。许多研究人员依赖于开源语音功能来开发用于测量临床群体中的语音变化的算法,因为它们方便且易于使用。然而,尚未研究神经疾病的背景下的开源特征的可重复性。方法:我们使用纵向对照样本,肌营养的侧面硬化的个体,以及具有疑似思考痴呆的个体,我们在这3个数据集上分别评估了声学和语言特征的可重复性。结果:使用腹部相关性(ICC)和受试者内部的变异系数(WSCV)评估重复性。在3组任务中,中位数ICC为0.02和0.55,中位数WSCV在29%至79%之间。结论:我们的结果表明,使用开源工具包提取的语音功能的可重复性低。研究人员应在开发具有开源语音功能的数字健康模型时谨慎行事。我们在在线补充材料中提供了逐个功能可重复性结果(ICC,WSCV,测量,WSCV协议限制,并且最小的可检测变化的限制)的详细摘要,以便研究人员可以将重复性信息纳入他们开发的模型中。

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