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An Enhanced Indoor Positioning Technique Based on a Novel Received Signal Strength Indicator Distance Prediction and Correction Model

机译:基于新型接收信号强度指示距预测和校正模型的增强室内定位技术

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摘要

Indoor positioning has become a very promising research topic due to the growing demand for accurate node location information for indoor environments. Nonetheless, current positioning algorithms typically present the issue of inaccurate positioning due to communication noise and interferences. In addition, most of the indoor positioning techniques require additional hardware equipment and complex algorithms to achieve high positioning accuracy. This leads to higher energy consumption and communication cost. Therefore, this paper proposes an enhanced indoor positioning technique based on a novel received signal strength indication (RSSI) distance prediction and correction model to improve the positioning accuracy of target nodes in indoor environments, with contributions including a new distance correction formula based on RSSI log-distance model, a correction factor (Beta) with a correction exponent (Sigma) for each distance between unknown node and beacon (anchor nodes) which are driven from the correction formula, and by utilizing the previous factors in the unknown node, enhanced centroid positioning algorithm is applied to calculate the final node positioning coordinates. Moreover, in this study, we used Bluetooth Low Energy (BLE) beacons to meet the principle of low energy consumption. The experimental results of the proposed enhanced centroid positioning algorithm have a significantly lower average localization error (ALE) than the currently existing algorithms. Also, the proposed technique achieves higher positioning stability than conventional methods. The proposed technique was experimentally tested for different received RSSI samples’ number to verify its feasibility in real-time. The proposed technique’s positioning accuracy is promoted by 80.97% and 67.51% at the office room and the corridor, respectively, compared with the conventional RSSI trilateration positioning technique. The proposed technique also improves localization stability by 1.64 and 2.3-fold at the office room and the corridor, respectively, compared to the traditional RSSI localization method. Finally, the proposed correction model is totally possible in real-time when the RSSI sample number is 50 or more.
机译:由于对室内环境的准确节点位置信息不断增长,室内定位已成为一个非常有前途的研究课题。尽管如此,当前定位算法通常呈现由于通信噪声和干扰而导致的不准确定位问题。此外,大多数室内定位技术需要额外的硬件设备和复杂的算法来实现高定位精度。这导致能耗更高和通信成本。因此,本文提出了一种基于新颖的接收信号强度指示(RSSI)距离预测和校正模型的增强的室内定位技术,以提高室内环境中的目标节点的定位精度,其中贡献包括基于RSSI日志的新距离校正公式 - 与从校正公式驱动的未知节点和信标(锚节点)之间的每个距离的校正因子(Beta)具有校正指数(sigma),并且通过利用未知节点中的先前因素,增强质心应用定位算法用于计算最终节点定位坐标。此外,在这项研究中,我们使用蓝牙低能量(BLE)信标来满足低能耗的原理。所提升的质心定位算法的实验结果比当前现有的算法具有显着更低的平均分子化误差(ALE)。而且,所提出的技术实现比常规方法更高的定位稳定性。该提出的技术是针对不同接收的RSSI样本的数字进行了实验测试的,以实时验证其可行性。与传统的RSSI三边定位技术相比,所提出的技术的定位精度分别在办公室室和走廊上升高了80.97%和67.51%。与传统的RSSI定位方法相比,所提出的技术分别在办公室房间和走廊的定位稳定性分别提高1.64和2.3倍。最后,当RSSI样本号为50或更大时,所提出的校正模型完全可以实时实现。

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