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首页> 外文期刊>Journal of gerontological nursing >Automated fall detection with quality improvement 'rewind' to reduce falls in hospital rooms
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Automated fall detection with quality improvement 'rewind' to reduce falls in hospital rooms

机译:自动化跌倒检测,质量改善“倒带”以减少医院病房的跌倒

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摘要

The purpose of this study was to test the implementation of a fall detection and "rewind" privacy-protecting technique using the Microsoft? Kinect? to not only detect but prevent falls from occurring in hospitalized patients. Kinect sensors were placed in six hospital rooms in a step-down unit and data were continuously logged. Prior to implementation with patients, three researchers performed a total of 18 falls (walking and then falling down or falling from the bed) and 17 non-fall events (crouching down, stooping down to tie shoe laces, and lying on the floor). All falls and non-falls were correctly identified using automated algorithms to process Kinect sensor data. During the first 8 months of data collection, processing methods were perfected to manage data and provide a "rewind" method to view events that led to falls for post-fall quality improvement process analyses. Preliminary data from this feasibility study show that using the Microsoft Kinect sensors provides detection of falls, fall risks, and facilitates quality improvement after falls in real hospital environments unobtrusively, while taking into account patient privacy.
机译:这项研究的目的是测试使用Microsoft?的跌倒检测和“倒带”隐私保护技术的实现。 Kinect?不仅可以发现而且可以防止住院患者跌倒。 Kinect传感器被放置在一个降压装置的六个病房中,并连续记录数据。在对患者实施之前,三名研究人员总共进行了18次跌倒(先走后跌落或从床上跌落)和17次非跌倒事件(蹲下,弯腰系鞋带并躺在地板上)。使用自动算法处理Kinect传感器数据可以正确识别所有跌落和非跌落。在数据收集的前8个月中,处理方法已经过完善,可以管理数据并提供“倒带”方法来查看导致跌倒的事件,以进行跌倒后质量改善过程分析。这项可行性研究的初步数据显示,使用Microsoft Kinect传感器可在跌倒,跌倒风险检测到的情况下,并在考虑到患者隐私的情况下,在真实的医院环境中毫不引人注目地促进跌倒后的质量改善。

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