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Posture and Motion Detection Using Acceleration Data for Context Aware Sensing in Personal Healthcare Systems

机译:使用加速度数据进行姿势和运动检测以实现个人医疗保健系统中的情景感知

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Detection of human motions is of great relevance especially in the field of telemedicine. The analysis of physiological information gains important, incorruptible additional information about the context in terms of patients' activities by a robust motion detection. This Paper deals with the fundamental concept of an entire system for classification of active motions and detection of passive postures for the application within a mobile ECG system which was developed at the Berlin Institute of Technology. The classification itself uses acceleration signals of a three-axis sensor located on the ECG chest strap. The motion detection is based on a generalized modeling. Therefore the system training does not need to be adapted for every new user individually.Another focus of this paper lies on the selection and validation of suitable representative features to achieve high specificity combined with adequate sensitivity for the generalized model. Finally effectiveness and efficiency of the designed system is investigated and the presented system is compared referring to other published systems for the detection of human motions.
机译:人体运动的检测具有特别重要的意义,尤其是在远程医疗领域。通过强大的运动检测功能,就可以根据患者的活动情况,对生理信息进行分析,从而获得有关情境的重要,无懈可击的附加信息。本文研究了整个系统的基本概念,该系统用于对主动运动进行分类并检测被动姿势,以用于由柏林技术学院开发的移动ECG系统中的应用。分类本身使用位于ECG胸带上的三轴传感器的加速度信号。运动检测基于广义建模。因此,不需要针对每个新用户分别调整系统培训。 本文的另一个重点在于选择和验证合适的代表性特征,以实现高特异性并为通用模型提供足够的灵敏度。最后,对设计系统的有效性和效率进行了研究,并与其他已发布的用于检测人体运动的系统进行了比较。

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