首页> 美国卫生研究院文献>Frontiers in Aging Neuroscience >Ecological Assessment of Autonomy in Instrumental Activities of Daily Living in Dementia Patients by the Means of an Automatic Video Monitoring System
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Ecological Assessment of Autonomy in Instrumental Activities of Daily Living in Dementia Patients by the Means of an Automatic Video Monitoring System

机译:自动化视频监控系统对痴呆患者日常生活活动能力自主性的生态评估

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摘要

Currently, the assessment of autonomy and functional ability involves clinical rating scales. However, scales are often limited in their ability to provide objective and sensitive information. By contrast, information and communication technologies may overcome these limitations by capturing more fully functional as well as cognitive disturbances associated with Alzheimer disease (AD). We investigated the quantitative assessment of autonomy in dementia patients based not only on gait analysis but also on the participant performance on instrumental activities of daily living (IADL) automatically recognized by a video event monitoring system (EMS). Three groups of participants (healthy controls, mild cognitive impairment, and AD patients) had to carry out a standardized scenario consisting of physical tasks (single and dual task) and several IADL such as preparing a pillbox or making a phone call while being recorded. After, video sensor data were processed by an EMS that automatically extracts kinematic parameters of the participants’ gait and recognizes their carried out activities. These parameters were then used for the assessment of the participants’ performance levels, here referred as autonomy. Autonomy assessment was approached as classification task using artificial intelligence methods that takes as input the parameters extracted by the EMS, here referred as behavioral profile. Activities were accurately recognized by the EMS with high precision. The most accurately recognized activities were “prepare medication” with 93% and “using phone” with 89% precision. The diagnostic group classifier obtained a precision of 73.46% when combining the analyses of physical tasks with IADL. In a further analysis, the created autonomy group classifier which obtained a precision of 83.67% when combining physical tasks and IADL. Results suggest that it is possible to quantitatively assess IADL functioning supported by an EMS and that even based on the extracted data the groups could be classified with high accuracy. This means that the use of such technologies may provide clinicians with diagnostic relevant information to improve autonomy assessment in real time decreasing observer biases.
机译:当前,对自主性和功能能力的评估涉及临床评估量表。但是,天平通常难以提供客观和敏感的信息。相比之下,信息和通信技术可以通过捕获与阿尔茨海默病(AD)相关的更充分的功能以及认知障碍来克服这些限制。我们不仅根据步态分析,还根据参与者对视频事件监控系统(EMS)自动识别的日常生活工具活动(IADL)的表现进行了调查,对痴呆症患者的自主性进行了定量评估。三组参与者(健康对照组,轻度认知障碍和AD患者)必须执行标准化的方案,包括身体任务(单项和双重任务)和几种IADL,例如准备药盒或在录音时打电话。之后,视频传感器数据由EMS处理,该EMS自动提取参与者步态的运动学参数并识别他们的活动。然后将这些参数用于评估参与者的绩效水平,这里称为自主性。使用人工智能方法将自治评估作为分类任务,该方法以EMS提取的参数(这里称为行为特征)作为输入。活动被EMS高精度地识别。公认最准确的活动是“准备药物”的准确度为93%,“使用电话”的准确度为89%。当将物理任务的分析与IADL结合使用时,诊断组分类器的精度为73.46%。在进一步分析中,创建的自治组分类器在结合物理任务和IADL时获得了83.67%的精度。结果表明,可以定量评估由EMS支持的IADL功能,即使基于提取的数据,也可以高精度地对组进行分类。这意味着使用此类技术可以为临床医生提供诊断相关信息,以实时改善自主权评估,从而减少观察者的偏见。

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