A fall detection algorithm for indoor video sequences captured by fish-eye camera

K. Delibasis, Ilias Maglogiannis
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引用次数: 5

Abstract

In this paper we present an algorithm that can discriminate between standing and fallen silhouettes in video sequences acquired by a fish-eye camera, in order to detect falls in an indoor environment. The proposed algorithm exploits the model of image formation that is based on the spherical projection to derive the orientation in the image of elongated vertical structures. The algorithm does not require the camera to be calibrated. The only requirement is that the optical axis of the camera being parallel to the vertical axis. Initial results show that fall detection can be performed with high accuracy, whereas, the algorithm itself is very efficient, allowing real time implementation.
鱼眼摄像机捕捉室内视频序列的跌倒检测算法
在本文中,我们提出了一种算法,可以在鱼眼摄像机获取的视频序列中区分站立和跌倒的轮廓,以检测室内环境中的跌倒。该算法利用基于球面投影的图像生成模型,推导出细长垂直结构在图像中的方位。该算法不需要对相机进行校准。唯一的要求是,相机的光轴平行于垂直轴。初步结果表明,该算法能够以较高的精度进行跌落检测,并且算法本身非常高效,可以实时实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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