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首页> 外文期刊>International Journal of Artificial Intelligence Tools: Architectures, Languages, Algorithms >ADVANCED CLASSIFICATION AND RULES-BASED EVALUATION OF MOTION, VISUAL AND BIOSIGNAL DATA FOR PATIENT FALL INCIDENT DETECTION
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ADVANCED CLASSIFICATION AND RULES-BASED EVALUATION OF MOTION, VISUAL AND BIOSIGNAL DATA FOR PATIENT FALL INCIDENT DETECTION

机译:用于患者跌倒事件检测的运动,视觉和原始数据的高级分类和基于规则的评估

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摘要

The monitoring of human physiological data, in both normal and abnormal situations of activity, is interesting for the purpose of emergency event detection, especially in the case of elderly people living on their own. Several techniques have been proposed for identifying such distress situations using either motion, audio or video data from the monitored subject and the surrounding environment. This paper aims to present an integrated patient fall detection system that may be used for patient activity recognition and emergency treatment. Visual data captured from the user's environment, using overhead cameras among with motion and physiological data collected from the subject's body are utilized. Appropriate tracking techniques are applied to the aforementioned visual perceptual component enabling the trajectory tracking of the subjects, while acceleration data from the sensors can indicate a fall incident. Trajectory information and subject's visual location can verify fall and indicate an emergency event, whereas the interpretation of biosignals like electrocardiogram (ECG) and blood oxygen saturation (SPO_2) can indicate the severity of the incident with the help of rules-based evaluation. The paper includes also the assessment of several classifiers and meta-classifiers in terms of accuracy in detecting falls and a user based evaluation.
机译:为了检测紧急事件,特别是在独自生活的老年人的情况下,在正常和异常活动情况下对人体生理数据的监视是有趣的。已经提出了几种技术来使用来自被监视对象和周围环境的运动,音频或视频数据来识别这种遇险情况。本文旨在提出一种集成的患者跌倒检测系统,该系统可用于患者活动识别和紧急治疗。利用高架摄像机从用户环境中捕获的视觉数据以及从受试者身体收集的运动和生理数据。适当的跟踪技术应用于上述视觉感知组件,可以对对象进行轨迹跟踪,而来自传感器的加速度数据可以指示跌倒事件。轨迹信息和对象的视觉位置可以验证跌倒并指示紧急事件,而对生物信号(如心电图(ECG)和血氧饱和度(SPO_2))的解释可以借助基于规则的评估来指示事件的严重性。本文还包括对几种分类器和元分类器的评估,包括跌倒检测的准确性以及基于用户的评估。

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