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The Abnormal Behavior Recognition Based on the Smart Mobile Sensors

机译:基于智能移动传感器的异常行为识别

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The widespread popularity of smart phones with built-in sensor technology makes our life more convenient. In this paper, a new method based on smart phone is proposed to recognize the behavior of users. Firstly, the intelligent mobile phone is used to realize the behavior data collection, then the High Pass Filtering Algorithm and the Mean Filter Algorithm are combined to pre-process of the collected data, finally, we use the method of Multi Strategy Feature fusion to realize data classification and recognition, the last realize the discovery and recognition of mobile phone user's behavior. Experiments through the 6 kinds of behavior, including walking, running, jumping up and down stairs, tumbling, fall, jumping behavior of 30 different performers to complete 1440 sets of 8 sets of experimental data independently, the recognition accuracy is above 90% by using the method mentioned above, the experimental results show that the proposed method is effective.
机译:内置传感器技术的智能手机的广泛普及使我们的生活更加便捷。本文提出了一种基于智能手机的新方法来识别用户的行为。首先利用智能手机实现行为数据的采集,然后结合高通滤波算法和均值滤波算法对采集到的数据进行预处理,最后采用多策略特征融合的方法实现数据分类与识别,最后实现了手机用户行为的发现与识别。通过对30种不同表演者的步行,奔跑,上下楼梯跳跃,翻倒,摔倒,跳跃行为这6种行为进行实验,分别完成1440套8组实验数据,通过使用识别率达到90%以上实验表明,该方法是有效的。

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