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Easy Screening for Mild Alzheimer's Disease and Mild Cognitive Impairment from Elderly Speech

机译:易于筛选轻度阿尔茨海默病和老年人演讲的轻度认知障碍

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Objective: This study presents a novel approach for early detection of cognitive impairment in the elderly. The approach incorporates the use of speech sound analysis, multivariate statistics, and data-mining techniques. We have developed a speech prosody-based cognitive impairment rating (SPCIR) that can distinguish between cognitively normal controls and elderly people with mild Alzheimer's disease (mAD) or mild cognitive impairment (MCI) using prosodic signals extracted from elderly speech while administering a questionnaire. Two hundred and seventy-three Japanese subjects (73 males and 200 females between the ages of 65 and 96) participated in this study. The authors collected speech sounds from segments of dialogue during a revised Hasegawa's dementia scale (HDS-R) examination and talking about topics related to hometown, childhood, and school. The segments correspond to speech sounds from answers to questions regarding birthdate (T1), the name of the subject's elementary school (T2), time orientation (Q2), and repetition of three-digit numbers backward (Q6). As many prosodic features as possible were extracted from each of the speech sounds, including fundamental frequency, formant, and intensity features and mel-frequency cepstral coefficients. They were refined using principal component analysis and/or feature selection. The authors calculated an SPCIR using multiple linear regression analysis.
机译:目的:本研究提出了一种新的老年认知障碍的新方法。该方法包括语音分析,多变量统计和数据挖掘技术的使用。我们制定了一种基于韵律的认知障碍等级(SPCIR),可以在管理调查问卷时使用从老年人语音提取的韵律信号来区分具有轻度阿尔茨海默病(MCI)的患者患者的正常管制(MCI)。在这项研究中参加了两百七十三名日本科目(73名男性和65岁和96岁之间的女性)。作者收集了在修订的Haegawa痴呆规模(HDS-R)审查(HDS-R)考试期间与对话的细分中的言语声音收集了语音声音,谈论与家乡,童年和学校有关的主题。该段对应于关于出生日内(T1)的问题的答案的语音声音,主题的基本学校(T2),时间方向(Q2)和向后重复三位数字(Q6)。从每个语音声音中提取尽可能多的韵律特征,包括基本频率,粉剂和强度特征和熔融频率谱系数。它们使用主成分分析和/或特征选择来精制。作者使用多元线性回归分析计算了SPCIR。

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