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Early detection of cognitive impairment in the elderly based on Bayesian mining using speech prosody and cerebral blood flow activation

机译:基于语音韵律和脑血流激活的贝叶斯挖掘在老年人认知障碍的早期发现

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With the aim of providing computer aided diagnosis of dementia, we have developed a non-invasive screening system of the elderly with cognitive impairment. In our previous research, we have studied two data-mining approaches by focusing on speech-prosody and cerebral blood flow (CBF) activation during cognitive tests. On the power of these research results, this paper presents a prosody-CBF hybrid screening system of the elderly with cognitive impairment based on a Bayesian approach. The system is constructed by SPCIR (Speech Prosody-Based Cognitive Impairment Rating) based cutoff as the 1st screening, and, as the 2nd screening, two-phase Bayesian classifier for discriminating among elderly individuals with three clinical groups: elderly individuals with normal cognitive abilities (NC), patients with mild cognitive impairment (MCI), and Alzheimer's disease (AD). This paper also reports the screening examination and discusses the cost-effectiveness and the discrimination performance of the proposed system for early detection of cognitive impairment in elderly subjects.
机译:为了提供痴呆症的计算机辅助诊断,我们开发了一种具有认知功能障碍的老年人的非侵入性筛查系统。在我们之前的研究中,我们研究了两种数据挖掘方法,重点关注认知测试期间的语音韵律和脑血流(CBF)激活。基于这些研究成果,本文提出了一种基于贝叶斯方法的认知障碍老年人的韵律-CBF混合筛查系统。该系统由基于SPCIR(基于语音韵律的认知障碍评分)的临界值构成,作为第一筛查,作为第二筛查,采用两阶段贝叶斯分类器,用于区分具有三个临床组的老年人:具有正常认知能力的老年人(NC),轻度认知障碍(MCI)和阿尔茨海默氏病(AD)患者。本文还报告了筛查检查,并讨论了所提出的用于老年受试者认知障碍早期检测的系统的成本效益和鉴别性能。

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