Identifying Mild Cognitive Impairment by Using Human–Robot Interactions

痴呆 认知 情景记忆 前瞻记忆 心理学 神经心理学 认知测验 执行职能 人口 认知功能衰退 神经心理评估 老年学 临床心理学 医学 精神科 病理 环境卫生 疾病
作者
Yu‐Ling Chang,Di-Hua Luo,Tsung-Ren Huang,Joshua Oon Soo Goh,Su‐Ling Yeh,Li‐Chen Fu
出处
期刊:Journal of Alzheimer's Disease [IOS Press]
卷期号:85 (3): 1129-1142 被引量:9
标识
DOI:10.3233/jad-215015
摘要

Mild cognitive impairment (MCI), which is common in older adults, is a risk factor for dementia. Rapidly growing health care demand associated with global population aging has spurred the development of new digital tools for the assessment of cognitive performance in older adults.To overcome methodological drawbacks of previous studies (e.g., use of potentially imprecise screening tools that fail to include patients with MCI), this study investigated the feasibility of assessing multiple cognitive functions in older adults with and without MCI by using a social robot.This study included 33 older adults with or without MCI and 33 healthy young adults. We examined the utility of five robotic cognitive tests focused on language, episodic memory, prospective memory, and aspects of executive function to classify age-associated cognitive changes versus MCI. Standardized neuropsychological tests were collected to validate robotic test performance.The assessment was well received by all participants. Robotic tests assessing delayed episodic memory, prospective memory, and aspects of executive function were optimal for differentiating between older adults with and without MCI, whereas the global cognitive test (i.e., Mini-Mental State Examination) failed to capture such subtle cognitive differences among older adults. Furthermore, robot-administered tests demonstrated sound ability to predict the results of standardized cognitive tests, even after adjustment for demographic variables and global cognitive status.Overall, our results suggest the human-robot interaction approach is feasible for MCI identification. Incorporating additional cognitive test measures might improve the stability and reliability of such robot-assisted MCI diagnoses.
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