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Fall Detection from Human Shape and Motion History Using Video Surveillance

机译:使用视频监控从人体形状和运动历史中检测跌倒

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Nowadays, Western countries have to face the growing population of seniors. New technologies can help people stay at home by providing a secure environment and improving their quality of life. The use of computer vision systems offers a new promising solution to analyze people behavior and detect some unusual events. In this paper, we propose a new method to detect falls, which are one of the greatest risk for seniors living alone. Our approach is based on a combination of motion history and human shape variation. Our algorithm provides promising results on video sequences of daily activities and simulated falls.
机译:如今,西方国家必须面对日益增长的老年人口。新技术可以通过提供安全的环境并改善人们的生活质量来帮助人们呆在家里。计算机视觉系统的使用为分析人们的行为并检测一些异常事件提供了一种新的有前途的解决方案。在本文中,我们提出了一种检测跌倒的新方法,跌倒是老年人独居的最大风险之一。我们的方法基于运动历史和人体形状变化的组合。我们的算法在日常活动和模拟跌倒的视频序列上提供了令人鼓舞的结果。

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