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Detecting Dementia Through Interactive Computer Avatars

机译:通过交互式计算机头像检测痴呆

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摘要

This paper proposes a new approach to automatically detect dementia. Even though some works have detected dementia from speech and language attributes, most have applied detection using picture descriptions, narratives, and cognitive tasks. In this paper, we propose a new computer avatar with spoken dialog functionalities that produces spoken queries based on the mini-mental state examination, the Wechsler memory scale-revised, and other related neuropsychological questions. We recorded the interactive data of spoken dialogues from 29 participants (14 dementia and 15 healthy controls) and extracted various audiovisual features. We tried to predict dementia using audiovisual features and two machine learning algorithms (support vector machines and logistic regression). Here, we show that the support vector machines outperformed logistic regression, and by using the extracted features they classified the participants into two groups with 0.93 detection performance, as measured by the areas under the receiver operating characteristic curve. We also newly identified some contributing features, e.g., gap before speaking, the variations of fundamental frequency, voice quality, and the ratio of smiling. We concluded that our system has the potential to detect dementia through spoken dialog systems and that the system can assist health care workers. In addition, these findings could help medical personnel detect signs of dementia.
机译:本文提出了一种自动检测痴呆症的新方法。即使有些作品已从语音和语言属性中检测出痴呆症,但大多数仍使用图片描述,叙述和认知任务进行了检测。在本文中,我们提出了一种具有口语对话功能的新型计算机化身,该功能基于迷你心理状态检查,韦氏记忆量表修订以及其他相关的神经心理学问题来产生口语查询。我们记录了来自29位参与者(14位痴呆症和15位健康对照者)的口语对话的互动数据,并提取了各种视听功能。我们尝试使用视听功能和两种机器学习算法(支持向量机和逻辑回归)来预测痴呆。在这里,我们证明了支持向量机的性能优于对数回归,并且通过使用提取的特征,他们将参与者分为具有0.93检测性能的两组,以接收器工作特性曲线下的面积衡量。我们还新发现了一些重要功能,例如说话前的差距,基本频率的变化,语音质量和微笑率。我们得出的结论是,我们的系统具有通过语音对话系统检测痴呆症的潜力,并且该系统可以为医护人员提供帮助。此外,这些发现还可以帮助医务人员检测痴呆症的体征。

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