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首页> 外文期刊>International Journal of Distributed Sensor Networks >Human Moving Pattern Recognition toward Channel Number Reduction Based on Multipressure Sensor Network
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Human Moving Pattern Recognition toward Channel Number Reduction Based on Multipressure Sensor Network

机译:基于多压力传感器网络的通道数减少人体运动模式识别

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A pair of sensing shoes for measuring foot pressure was developed. This system aims at recognizing human movement in unlimited environments. The multipressure sensor network of seven sensors on one insole was set up. Analysis for discriminating the user’s movements from foot pressure distribution was carried out, considering the movements of standing, walking, going upstairs, and going downstairs. These actions were discriminated using characteristics extracted from the data of sensors. The classifier based on SVM showed highly accurate movement recognition. Specifically, to improve the classification performance, PCA based dimensionality reduction and channel reduction based data fusion were introduced. Experimental outcomes verified the testing speed of the classification function which was improved without affecting the accuracy rate. The results confirmed that this discriminant analysis can be employed for automatically recognizing human moving pattern based on foot pressure signal.
机译:开发了用于测量脚压力的一双传感鞋。该系统旨在识别无限制环境中的人类运动。在一个鞋垫上建立了由七个传感器组成的多压力传感器网络。考虑到站立,行走,上楼和下楼的动作,进行了区分用户动作与脚压力分布的分析。使用从传感器数据中提取的特征来区分这些动作。基于SVM的分类器显示出高度准确的运动识别。具体而言,为了提高分类性能,引入了基于PCA的降维和基于信道减少的数据融合。实验结果验证了分类函数的测试速度,该速度在不影响准确率的情况下得以提高。结果证实,该判别分析可用于基于脚压力信号自动识别人的运动模式。

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