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Automated Video Analysis of Handwashing Behavior as a Potential Marker of Cognitive Health in Older Adults

机译:洗手行为的自动视频分析,作为老年人认知健康的潜在标志

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The identification of different stages of cognitive impairment can allow older adults to receive timely care and plan for the level of caregiving. People with existing diagnosis of cognitive impairment go through episodic phases of dementia requiring different levels of care at different times. Monitoring the cognitive status of existing patients is, thus, critical to deciding the level of care required by older adults. In this paper, we present a system to assess the cognitive status of older adults by monitoring a common activity of daily living, namely handwashing. Specifically, we extract features from handwashing trials of participants diagnosed with different levels of dementia ranging from cognitively intact to severe cognitive impairment, as assessed by the mini-mental state exam (MMSE). Based on videos of handwashing trials, we extract two classes of features: one characterizing the occupancy of different sink regions by the participant, and the other capturing the path tortuosity of the motion trajectory of participant's hands. We perform correlation analysis to assess univariate capacity of individual features to predict MMSE scores. To assess multivariate performance, we use machine learning methods to train models that predict the cognitive status (aware, mild, moderate, severe), as well as the MMSE scores. We present results demonstrating that features derived from hand washing behavior can be potential surrogate markers of a person's dementia, which can be instrumental in developing automated tools for continuously monitoring the cognitive status of older adults.
机译:识别认知障碍的不同阶段可以使老年人及时得到护理并计划护理水平。现有诊断为认知障碍的人会经历痴呆的发作期,需要在不同时间进行不同程度的护理。因此,监测现有患者的认知状况对于确定老年人所需的护理水平至关重要。在本文中,我们提出了一种通过监视日常生活中的常见活动(即洗手)来评估老年人的认知状态的系统。具体来说,我们通过对被诊断患有不同程度痴呆症(从认知完好到严重认知障碍)的参与者进行的洗手试验中提取的功能,这些功能已通过迷你精神状态检查(MMSE)进行了评估。根据洗手试验的视频,我们提取出两类特征:一类描述参与者在不同水槽区域的占用情况,另一类捕获参与者手部运动轨迹的曲折度。我们进行相关分析以评估单个特征预测MMSE分数的单变量能力。为了评估多元性能,我们使用机器学习方法来训练可预测认知状态(意识,轻度,中度,重度)以及MMSE分数的模型。我们目前的结果表明,从洗手行为中得出的特征可能是一个人的痴呆症的潜在替代标志,这在开发用于持续监测老年人认知状态的自动化工具中可能会发挥作用。

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