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Fall detection in indoor environment with kinect sensor

机译:用kinect传感器落在室内环境中的崩溃检测

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Falls are one of the major risks of injury for elderly living alone at home. Computer vision-based systems offer a new, low-cost and promising solution for fall detection. This paper presents a new fall-detection tool, based on a commercial RGB-D camera. The proposed system is capable of accurately detecting several types of falls, performing a real time algorithm in order to determine whether a fall has occurred. The proposed approach is based on evaluating the contraction and the expansion speed of the width, height and depth of the 3D human bounding box, as well as its position in the space. Our solution requires no pre-knowledge of the scene (i.e. the recognition of the floor in the virtual environment) with the only constraint about the knowledge of the RGB-D camera position in the room. Moreover, the proposed approach is able to avoid false positive as: sitting, lying down, retrieve something from the floor. Experimental results qualitatively and quantitatively show the quality of the proposed approach in terms of both robustness and background and speed independence.
机译:瀑布是老年人在家中独自生活的主要风险之一。基于计算机视觉的系统提供了一种新的,低成本和有希望的坠落检测解决方案。本文提出了一种基于商业RGB-D相机的新型秋季检测工具。所提出的系统能够精确地检测几种类型的跌落,执行实时算法,以确定是否已经发生了跌倒。所提出的方法是基于评估3D人边界箱的宽度,高度和深度的收缩和膨胀速度,以及其在空间中的位置。我们的解决方案不需要对场景的预知(即虚拟环境中的地板的识别),其唯一关于房间RGB-D相机位置的知识的约束。此外,所提出的方法能够避免假阳性,因为:坐着,躺下,从地板上取回一些东西。实验结果定性和定量地显示了鲁棒性和背景和速度独立方面提出的方法的质量。

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