首页> 外文会议>IEEE International Conference on Image Processing >HUMAN FALL DETECTION VIA SHAPE ANALYSIS ON RIEMANNIAN MANIFOLDS WITH APPLICATIONS TO ELDERLY CARE
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HUMAN FALL DETECTION VIA SHAPE ANALYSIS ON RIEMANNIAN MANIFOLDS WITH APPLICATIONS TO ELDERLY CARE

机译:人体坠落检测通过利莫曼歧管与患者对老年护理的形状分析

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This paper addresses issues in fall detection from videos. The focus is on the analysis of human shapes which deform drastically in camera views while a person falls onto the ground. A novel approach is proposed that performs fall detection from an arbitrary view angle, via shape analysis on a unified Riemannian manifold for different camera views. The main novelties of this paper include: (a) representing dynamic shapes as points moving on a unit n-sphere, one of the simplest Riemannian manifolds; (b) characterizing the deformation of shapes by computing velocity statistics of their corre-sponding manifold points, based on geodesic distances on the manifold. Experiments have been conducted on two publicly available video datasets for fall detection. Test, evaluations and comparisons with 6 existing methods show the effectiveness of our proposed method.
机译:本文解决了来自视频的秋季检测问题。重点是分析人类形状,这些人形状在相机视图中大幅变形,而一个人落在地面上。提出了一种新的方法,其通过针对不同的相机视图的统一riemannian歧管的形状分析来执行从任意视角的落后检测。本文的主要新奇人物包括:(a)表示动态形状作为在单位n范围上移动的点,最简单的riemannian歧管之一; (b)根据歧管上的测地距,通过计算其相关性歧管点的速度统计来表征形状的变形。已经在两个公开的视频数据集进行了实验,用于崩溃检测。具有6种现有方法的测试,评估和比较显示了我们提出的方法的有效性。

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