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Accurate indoor localization based on RSSI with adaptive environmental parameters in wireless sensor networks

机译:基于RSSI准确的室内定位,无线传感器网络中的自适应环境参数

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Most of the applications in wireless sensor networks require accurate estimation of the location of a user or a mobile robot. However indoor localization cannot be effectively done using Global Positioning Systems (GPS). Recently wireless sensor networks are concerned with estimating the location of sensors using Received Signal Strength Indication (RSSI), although all the existing techniques that use RSSI have a bad accuracy of estimating the location. In this paper we have introduced a new algorithm using anew empirical method (RIMO's Empirical method) that significantly increases the accuracy of localization with minimum processing time and minimum power consumption. Our new empirical method can be extended to be used for outdoor applications with very high accuracy.
机译:无线传感器网络中的大多数应用需要精确地估计用户或移动机器人的位置。然而,使用全球定位系统(GPS)无法有效地完成室内定位。最近,无线传感器网络涉及使用接收的信号强度指示(RSSI)估计传感器的位置(RSSI),尽管使用RSSI的所有现有技术都具有估计位置的不良精度。在本文中,我们已经推出了一种新的算法,使用重生的经验方法(RIMO的经验方法),显着提高了定位的准确性和最小处理时间和最小功耗。我们的新实证方法可以扩展到具有非常高精度的户外应用。

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