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A Review on Fall Prediction and Prevention System for Personal Devices: Evaluation and Experimental Results

机译:个人设备秋季预测和预防系统综述:评价与实验结果

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摘要

Injuries due to unintentional falls cause high social cost in which several systems have been developed to reduce them. Recently, two trends can be recognized. Firstly, the market is dominated by fall detection systems, which activate an alarm after a fall occurrence, but the focus is moving towards predicting and preventing a fall, as it is the most promising approach to avoid a fall injury. Secondly, personal devices, such as smartphones, are being exploited for implementing fall systems, because they are commonly carried by the user most of the day. This paper reviews various fall prediction and prevention systems, with a particular interest to the ones that can rely on the sensors embedded in a smartphone, i.e., accelerometer and gyroscope. Kinematic features obtained from the data collected from accelerometer and gyroscope have been evaluated in combination with different machine learning algorithms. An experimental analysis compares the evaluated approaches by evaluating their accuracy and ability to predict and prevent a fall. Results show that tilt features in combination with a decision tree algorithm present the best performance.
机译:由于无意下降导致的伤害导致高社会成本,其中开发了几种系统以减少它们。最近,可以识别出两种趋势。首先,市场是由秋季检测系统主导的,它在发生堕落后激活警报,但重点正在朝向预测和防止跌倒,因为它是避免摔倒伤害最有希望的方法。其次,正在利用智能手机等个人设备来实现秋季系统,因为它们通常由一天中的大部分时间携带。本文审查了各种秋季预测和预防系统,特别感兴趣地依赖于智能手机中嵌入的传感器,即加速度计和陀螺仪。从加速度计和陀螺仪收集的数据获得的运动特征已经与不同的机器学习算法组合进行了评估。实验分析通过评估其准确性和预测能力和预防秋季来进行评估的方法。结果表明,倾斜特征与决策树算法结合呈现最佳性能。

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