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Prosody-Based Measures for Automatic Severity Assessment of Dysarthric Speech

机译:基于韵律言论的自动严重性评估措施

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One of the first cues for many neurological disorders are impairments in speech. The traditional method of diagnosing speech disorders such as dysarthria involves a perceptual evaluation from a trained speech therapist. However, this approach is known to be difficult to use for assessing speech impairments due to the subjective nature of the task. As prosodic impairments are one of the earliest cues of dysarthria, the current study presents an automatic method of assessing dysarthria in a range of severity levels using prosody-based measures. We extract prosodic measures related to pitch, speech rate, and rhythm from speakers with dysarthria and healthy controls in English and Korean datasets, despite the fact that these two languages differ in terms of prosodic characteristics. These prosody-based measures are then used as inputs to random forest, support vector machine and neural network classifiers to automatically assess different severity levels of dysarthria. Compared to baseline MFCC features, 18.13% and 11.22% relative accuracy improvement are achieved for English and Korean datasets, respectively, when including prosody-based features. Furthermore, most improvements are obtained with a better classification of mild dysarthric utterances: a recall improvement from 42.42% to 83.34% for English speakers with mild dysarthria and a recall improvement from 36.73% to 80.00% for Korean speakers with mild dysarthria.
机译:许多神经系统疾病的第一个提示之一是言语中的损伤。传统的诊断诸如讨厌症的语音疾病的方法涉及从训练有素的语音治疗师的感知评估。然而,已知这种方法难以用于评估由于任务的主观性质而评估语音障碍。由于韵律障碍是最早的讨厌症的提示之一,目前的研究呈现了一种自动评估了使用韵律的措施的严重性水平的讨厌程度的自动化方法。尽管这两种语言在韵律特征方面有这一语言不同,我们就提取了与讲话者的音高,演讲率和节奏相关的韵律措施以及英语和韩国数据集的健康控制相关。然后将这些基于韵律的措施用作随机森林的输入,支持向量机和神经网络分类器,以自动评估不同的扰动程度的讨厌程度。与基线MFCC特征相比,英语和韩国数据集的相对精度改进的相对精度和11.22%分别在包括基于韵律的特征的情况下实现了18.13%和11.22%。此外,大多数改进都是更好的轻度发育性话语分类:召回42.42%的英语扬声器的改善为轻度讨厌的英语扬声器,并回忆从36.73%到80.00%的韩国讲话,以温和的讨论者为温和的讨论者。

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