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In-bed patient motion and pose analysis using depth videos for pressure ulcer prevention

机译:使用深度视频进行床内患者运动和姿势分析,预防压疮

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We present a real-time depth based computer vision system for pressure ulcer prevention, in-bed patient care and monitoring. Our system can effectively determine whether or not a mobility-compromised patient has been correctly repo-sitioned at the required frequency. A depth sensor is used to detect and recognize patient movements, motion patterns, and pose positions. If the patient has stayed in an unchanged pose for too long and needs pressure releasing movements, our system can notify caregivers for repositioning or assistance. Privacy concerns are mitigated by removing the RGB components of the video stream from the camera capturing, and only processing depth measurements. We collaborated with clinical practitioners at the Charlie Norwood VA Medical Center for in-field data collection and experimental evaluation. A web portal front-end is developed such that all historical patient movements, pose positions, and repositioning data can be organized to support telehealth applications.
机译:我们提出了一种基于实时深度的计算机视觉系统,用于预防压疮,病床患者护理和监测。我们的系统可以有效地确定行动不便的患者是否已按要求的频率正确分配。深度传感器用于检测和识别患者的运动,运动模式和姿势位置。如果患者停留在姿势不变的时间太长,需要释放压力,我们的系统可以通知护理人员重新安置或协助。通过从摄像机捕获中删除视频流的RGB分量,并且仅处理深度测量,可以缓解隐私问题。我们与Charlie Norwood VA医疗中心的临床医生合作,进行了现场数据收集和实验评估。开发了一个Web门户前端,以便可以组织所有历史患者运动,姿势位置和重新定位数据以支持远程医疗应用程序。

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