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Wi-Fi CSI-Based Outdoor Human Flow Prediction Using a Support Vector Machine

机译:基于Wi-Fi CSI的户外人体流量预测使用支持向量机

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摘要

This paper proposes a channel state information (CSI)-based prediction method of a human flow that includes activity. The objective of the paper is to predict a human flow in an outdoor road. This human flow prediction is useful for the prediction of the number of passing people and their activity without privacy issues as a result of the absence of any camera systems. In this paper, we assume seven types of activities: one, two, and three people walking; one, two, and three people running; and one person cycling. Since the CSI can effectively express the effect of multipath fading in wireless signals, we expected the CSI to predict the various activities. In our proposed method, the amplitude and phase components are extracted from the measured CSI. The feature values for machine learning are the mean and variance of the maximum eigenvalue derived from the auto-correlation matrix and variance–covariance matrix composed of the amplitude or phase components and the passing time of flow. Using these feature values, we evaluated the prediction accuracy by leave-one-out cross-validation with a linear support vector machine (SVM). As a result, the proposed method achieved the maximum prediction accuracy of 100% for each direction and 99.5% for two directions.
机译:本文提出了基于包括活动的人流的基于人类流的频道状态信息(CSI)的预测方法。本文的目的是预测户外道路的人类流动。由于没有任何相机系统,这种人类流量预测可用于预测无需隐私问题的通过人数及其活动。在本文中,我们假设七种类型的活动:一个,两个和三人走路;一个,两个和三个人跑步;和一个人骑自行车。由于CSI可以有效地表达多径衰落在无线信号中的效果,因此我们期望CSI预测各种活动。在我们提出的方法中,从测量的CSI中提取幅度和相位分量。机器学习的特征值是从自动相关矩阵和由幅度或相位分量组成的自相关矩阵和方差协方差矩阵的最大特征值的均值和方差以及流量的传递时间。使用这些特征值,我们通过使用线性支持向量机(SVM)的休留次交叉验证来评估预测精度。结果,所提出的方法对于每个方向的最大预测精度为100%,两个方向的99.5%。

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