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A comparative performance analysis of position estimation algorithms for GNSS localization in urban areas

机译:城市地区GNSS定位定位估计算法的比较绩效分析

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Global Navigation Satellite Systems (GNSS) have become an integral part of all applications where mobility plays an important role. However, The performances of GNSS-based positioning systems can be affected in constrained environments (urban and indoor environments), due to masking of satellites by buildings and multipath effects. In this paper, a comparative investigation on classical GNSS localization algorithms in urban areas is presented and analyzed in terms of mean squared error. As a result, Kalman filter estimation shows the best error performance in good environments (all satellites are in direct sight). Nevertheless, in constrained environments, the Kalman filter and least square method show important positioning errors because their measurement noise model is unsuitable.
机译:全球导航卫星系统(GNSS)已成为所有申请的组成部分,其中流动性起着重要作用。然而,由于建筑物和多径效应的卫星掩蔽,基于GNSS的定位系统的性能可能受到约束环境(城市和室内环境)的影响。本文在平均平方误差方面介绍和分析了对城市地区古典GNSS定位算法的比较调查。因此,卡尔曼滤波器估计显示了良好环境中最好的错误性能(所有卫星都是直接的视线)。然而,在约束环境中,卡尔曼滤波器和最小二乘法显示出重要的定位误差,因为它们的测量噪声模型是不合适的。

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