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A Real-Time Intelligent Wireless Mobile Station Location Estimator with Application to TETRA Network

机译:实时智能无线移动台位置估计器及其在TETRA网络中的应用

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摘要

Mobile location estimation has received considerable interest over the past few years due to its great potential in different applications such as logistics, patrol, and fleet management. Many mobile location estimation techniques had been proposed to improve the accuracy of location estimation. Location estimation based on artificial intelligence techniques is a recent alternative approach. In this paper, Adaptive Neuro-Fuzzy Inference system (ANFIS) is used as a robust location estimator to locate the mobile station (MS) using the MS geo-fencing area data within 9 km from a serving base station. Extensive evaluations and comparisons have been performed, and a set of statistical parameters has been obtained. From the comparison of the proposed ANFIS estimator with the neural-network-based estimators, it is found that ANFIS estimator is faster and more robust. Its Average Computation Time (ACT) is 0.076 sec. While the ACT for Multilayer Perceptron (MLP) and Radial-Based Function (RBF) neural networks is 0.88 and 1.7, respectively. Whereas on comparing ANFIS with other techniques, it is found that in ANFIS estimator, 67 percent of the estimated location errors do not exceed 149 m, while these for the statistical, multiple linear regression, and geometric are 170, 280, and 2,346 m, respectively. Thus, the results clearly reveal that the proposed ANFIS estimator outperforms all other techniques.
机译:过去几年中,由于移动位置估计在后勤,巡逻和车队管理等不同应用中具有巨大潜力,因此引起了极大的兴趣。已经提出了许多移动位置估计技术来提高位置估计的准确性。基于人工智能技术的位置估计是最近的替代方法。在本文中,自适应神经模糊推理系统(ANFIS)被用作鲁棒的位置估计器,使用距服务基站9公里以内的MS地理围栏区域数据来定位移动站(MS)。进行了广泛的评估和比较,并获得了一组统计参数。通过将拟议的ANFIS估计器与基于神经网络的估计器进行比较,发现ANFIS估计器更快,更健壮。其平均计算时间(ACT)为0.076秒。而多层感知器(MLP)和径向函数(RBF)神经网络的ACT分别为0.88和1.7。在将ANFIS与其他技术进行比较时,发现在ANFIS估算器中,估计位置误差的67%不会超过149 m,而对于统计误差,多元线性回归和几何误差则分别为170、280和2,346 m,分别。因此,结果清楚地表明,提出的ANFIS估计器优于所有其他技术。

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