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A fuzzy model for human fall detection in infrared video

机译:红外视频人体跌倒检测的模糊模型

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摘要

Fall detection, especially for elderly people, is a challenging problem which demands new products and technologies. In this paper a fuzzy model for fall detection and inactivity monitoring in infrared video is presented. The classification features proposed include geometric and kinematic parameters associated with more or less sudden changes in the tracked human-related regions of interest. A complete segmentation and tracking algorithm for infrared video as well as a fuzzy fall detection and confirmation algorithm are introduced. The proposed system is capable of identifying true and false falls, enhanced with inactivity monitoring aimed at confirming the need for medical assistance and/or care. The fall indicators used as well as their fuzzy model is explained in detail. The fuzzy model has been tested for a wide number of static and dynamic falls, demonstrating exciting initial results.
机译:跌倒检测(特别是对于老年人)是一个具有挑战性的问题,需要新产品和新技术。本文提出了一种用于红外视频跌倒检测和静止监控的模糊模型。提出的分类特征包括与跟踪的与人类相关的感兴趣区域中或多或少突然变化相关的几何和运动学参数。介绍了完整的红外视频分割与跟踪算法以及模糊跌倒检测与确认算法。所提出的系统能够识别正确和错误的跌倒,并通过旨在确认是否需要医疗救助和/或护理的非活动监视来增强。详细说明了所使用的跌倒指标及其模糊模型。模糊模型已经针对大量的静态和动态跌落进行了测试,证明了令人兴奋的初步结果。

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