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Self-Organizing Map Approach for Determining Mobile User Location Using IEEE 802.11 Signals

机译:使用IEEE 802.11信号确定移动用户位置的自组织地图方法

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This paper describes a study towards user location system based on Kohonen Self-Organizing Maps (SOM) algorithm for locating user location with the existing Wi-Fi signals. With the novel use of Wi-Fi based on the IEEE 802.11 standards: inferring the location of a wireless client from signal quality measures, the Kohonen SOM paradigms were used. SOM as an unsupervised learning techniques of Artificial Neural Network (ANN) capable for summarizing high-dimensional data which cause region of the network to respond similarly to certain input patterns by analyzing the signal strength or signal-to-noise (SNR) of the wireless access points (AP) that enable a wireless networked device to infer the location of wireless client Location estimation is then computed using SOM on sample sets. We outline the study leading to the system and provide location performance metrics where a user who is using wireless local area network (WLAN) will be able to detect with the existing of Wi-Fi signal nodes with the SOM technique, highlighting position at the current time.
机译:本文介绍了基于Kohonen自组织映射(SOM)算法与现有的Wi-Fi信号定位用户位置向用户定位系统的研究。基于IEEE 802.11标准的新用途的Wi-Fi的:从推断信号质量测量的无线客户端的位置,使用了Kohonen的SOM范例。 SOM作为人工神经网络(ANN)的能够用于通过分析所述无线的信号强度或信号与噪声(SNR)总结高维数据,其导致网络响应的区域同样地特定输入模式的无监督的学习技术使得一无线联网设备来推断无线客户端的位置估计的位置的接入点(AP),然后使用在样本集计算SOM。我们勾勒出研究导致系统,并提供定位性能指标,其中谁在使用无线局域网(WLAN)的用户将能够与Wi-Fi信号的节点与SOM技术现有的,在当前的突出位置,以检测时间。

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