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Accurate, Fast Fall Detection Using Gyroscopes and Accelerometer-Derived Posture Information

机译:使用陀螺仪和加速度计衍生姿势信息精确,快速崩溃检测

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Falls are dangerous for the aged population as they can adversely affect health. Therefore, many fall detection systems have been developed. However, prevalent methods only use accelerometers to isolate falls from activities of daily living (ADL). This makes it difficult to distinguish real falls from certain fall-like activities such as sitting down quickly and jumping, resulting in many false positives. Body orientation is also used as a means of detecting falls, but it is not very useful when the ending position is not horizontal, e.g. falls happen on stairs. In this paper we present a novel fall detection system using both accelerometers and gyroscopes. We divide human activities into two categories: static postures and dynamic transitions. By using two tri-axial accelerometers at separate body locations, our system can recognize four kinds of static postures: standing, bending, sitting, and lying. Motions between these static postures are considered as dynamic transitions. Linear acceleration and angular velocity are measured to determine whether motion transitions are intentional. If the transition before a lying posture is not intentional, a fall event is detected. Our algorithm, coupled with accelerometers and gyroscopes, reduces both false positives and false negatives, while improving fall detection accuracy. In addition, our solution features low computational cost and real-time response.
机译:由于它们可能对健康产生不利影响,因此跌倒对年龄的人口危险。因此,已经开发了许多秋季检测系统。然而,普遍存在的方法仅使用加速度计隔离从日常生活(ADL)的活动中落下。这使得难以区分真实的瀑布,例如坐下来迅速跳跃和跳跃,导致许多误报。身体取向也用作检测落的手段,但是当端部位置不水平时,它不是很有用,例如,瀑布在楼梯上发生。在本文中,我们使用两个加速度计和陀螺仪提出了一种新的落落检测系统。我们将人类活动分为两类:静态姿势和动态过渡。通过在单独的身体位置使用两个三轴加速度计,我们的系统可以识别四种静态姿势:站立,弯曲,坐着和撒谎。这些静态姿势之间的动作被认为是动态转换。测量线性加速度和角速度以确定运动转换是否有意。如果在姿势姿势之前的过渡不是故意的,则会检测到秋季事件。我们的算法与加速度计和陀螺仪相结合,减少了误报和假阴性,同时提高了下降检测精度。此外,我们的解决方案还具有低计算成本和实时响应。

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