基于轮廓面积和方向的视不变跌落检测系统

Behzad Mirmahboub, S. Samavi, N. Karimi, S. Shirani
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引用次数: 7

摘要

独居的老年人口在大多数国家都在增加。监测系统帮助他们呆在家里,减轻了卫生保健系统的负担。自动视觉监控系统比可穿戴设备有优势。他们从视频序列中提取特征并将其用于事件分类。但这些特征取决于相机相对于人的位置。因此,他们需要多台相机来提高精度,这增加了成本和复杂性。在本文中,我们提出使用轮廓面积结合倾斜角作为鲁棒特征,可以只使用一个相机测量任意方向。通过对公开数据集的严格模拟,发现该系统的错误率小于1%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
View-Invariant Fall Detection System Based on Silhouette Area and Orientation
Population of old generation that live alone is growing in most countries. Surveillance systems help them stay home and reduce the burden on the healthcare system. Automatic visual surveillance systems have advantages over wearable devices. They extract features from video sequences and use them for event classification. But these features are dependent on the position of cameras relative to the person. Therefore they need multi-camera for more accuracy that increases cost and complexity. In this paper we propose using silhouette area combined with inclination angle as robust features that can be measured using only one camera with an arbitrary direction. Through rigorous simulations on a publicly available dataset the error rate of the system is found to be less than 1%.
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