基于姿态分析和支持向量机的跌倒检测

Abderrazak Iazzi, M. Rziza, R. Thami
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引用次数: 14

摘要

本文提出了一种针对老年人的跌倒检测方法。当老年人得不到及时的帮助时,心理负担、跌倒后以及其他环境因素都会造成严重的伤害。跌倒检测系统的主要目的是在短时间内检测出老年人的跌倒情况。跌落的特点是形状高度变形。在此基础上,我们提出了一种基于人体轮廓区域的水平和垂直变化的方法。在人体轮廓提取后,提取边界框,然后基于纵横分割的交集构造直方图进行姿态表示。然后,将姿态识别与一些特定规则相结合,进行跌倒检测。在不同的数据库上进行了实验。实验结果表明,该方法能有效地检测跌倒。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fall detection based on posture analysis and support vector machine
In this paper, we present a fall detection method for elderly people. The psychological burden, after the fall, and other environmental factors can result in serious harm when the elderly cannot get timely help. The main purpose of the fall detection system is to detect the fall of the elderly in a short time. The fall is characterized by high deformation of shape. Based on this later, we propose an approach based on the horizontal and vertical variations of human silhouette area. After human silhouette extraction, we extract the bounding box, then, we construct a histogram based on an intersection of vertical and horizontal partitioning for posture representation. Then, the fall detection is based on the combination of posture recognition and some specific rules. Experiments were conducted on different databases. Results demonstrate that the proposed method can detect fall effectively.
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