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Fingerprint positioning method in inter-coordinate estimation using weighted average of existence probability distribution output of 3-layer NN

机译:使用3层NN的存在概率分布输出的加权平均值的坐标间估计的指纹定位方法

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This contribution describes a fingerprint position estimation using RSSI (Received Signal Strength Indicator) of wireless LAN Access Points (APs) that employs Neural Network (NN). We propose position estimation using the weighted intermediate point to estimate the exact position. In this method, RSSI of UD (User Data) is collated with the RSSI in DB (data base). RSSI of DB was measured on coordinates in advance. Therefore, one of the coordinates is selected as the estimation result. The coordinate closest to correct point is selected in case of estimation at the intermediate point of the coordinates. In this study, we propose to estimate the intermediate point using weighting with the existence probability distribution of limited coordinate output from NN. The accuracy of proposed position estimation method was verified using three-layer NN based on measured data.
机译:该贡献描述了使用使用神经网络(NN)的无线LAN接入点(AP)的RSSI(接收信号强度指示器)的指纹位置估计。我们使用加权中间点提出位置估计以估计确切的位置。在此方法中,UD(用户数据)的RSSI与DB中的RSSI(数据库)进行分类。 DB的RSSI预先测量坐标。因此,选择其中一个坐标作为估计结果。在坐标的中间点的估计的情况下,选择最接近正确点的坐标。在这项研究中,我们建议使用来自Nn的有限坐标输出的有限坐标输出的存在概率分布来估计中间点。基于测量数据使用三层NN验证了所提出的位置估计方法的准确性。

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