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RGBD-camera based get-up event detection for hospital fall prevention

机译:基于RGBD摄像机的起床事件检测可防止医院跌倒

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In this work, we develop a computer vision based fall prevention system for hospital ward application. To prevent potential falls, once the event of patient get up from the bed is automatically detected, nursing staffs are alarmed immediately for assistance. For the detection task, we use a RGBD sensor (Microsoft Kinect). The geometric prior knowledge is exploited by identifying a set of task-specific feature channels, e.g., regions of interest. Extensive motion and shape features from both color and depth image sequences are extracted. Features from multiple modalities and channels are fused via a multiple kernel learning framework for training the event detector. Experimental results demonstrate the high accuracy and efficiency achieved by the proposed system.
机译:在这项工作中,我们开发了一种基于计算机视觉的跌倒预防系统,用于医院病房的应用。为防止潜在的跌倒,一旦自动检测到患者从床上起床的事件,护理人员会立即发出警报以寻求帮助。对于检测任务,我们使用RGBD传感器(Microsoft Kinect)。通过识别一组特定于任务的特征通道(例如,感兴趣的区域)来利用几何先验知识。从彩色和深度图像序列中提取广泛的运动和形状特征。来自多个模态和通道的特征通过一个用于训练事件检测器的多核学习框架进行融合。实验结果证明了所提出系统的高精度和高效率。

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