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Fall Detection using Accelerometer Calibration

机译:使用加速度计校准进行跌倒检测

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The risk of fall increases in elderly people due to aging factor. In this paper, a new methodology is revised to perform learning and classification of falls using single accelerometer. In learning and classification of falls, the sensor(s) is normally placed at the same location on human body which might not happen practically. In this paper, it is shown that if the sensor is misplaced during classification, the accuracy of fall detection reduces significantly. Furthermore, a calibrated system is designed which detects the falls accurately even if the sensor is misplaced. Classification is performed using Complex Tree, Quadratic Support Vector Machine and Cubic K-Nearest Neighbor, their accuracies are compared in both scenarios; with/without calibration, and the optimum classifier is identified.
机译:由于衰老因素,老年人跌倒的风险增加。在本文中,对一种新的方法进行了修订,以使用单个加速度计进行跌倒的学习和分类。在跌倒的学习和分类中,通常将传感器放置在人体上的同一位置,这在实际中可能不会发生。本文表明,如果传感器在分类过程中放错了位置,跌倒检测的准确性就会大大降低。此外,设计了一个校准系统,即使传感器放置不正确,该系统也可以准确地检测到跌倒。使用复杂树,二次支持向量机和三次K最近邻进行分类,在两种情况下都比较了它们的准确性。带有/不带有校准,并确定最佳分类器。

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