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Augmented instrumental variable method for position and heading estimation with RDOA measurements

机译:用RDOA测量的增强仪器变量法进行方位和航向估计

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摘要

In this paper, we proposed a position and heading estimation algorithm using only range difference of arrival (RDOA) measurements. Based on RDOA measurements, an uncertain linear measurement model is derived and both position and heading are estimated with the instrumental variable (IV) method which can show unbiased estimation results for the uncertainty of the model. In addition, to remove the unknown bias included in the measurement model error, we augment the bias to the state vector of the model. Since the proposition inherits the characteristic of the IV method, it does not need the stochastic information of the RDOA measurement excepting the assumption that the RDOA measurement noise is zero mean and white, and the zero mean error performance can be guaranteed when variances of RDOA measurement noises are identical. Through simulations, the performance of the proposed algorithm is verified at various positions and headings in the sensor network and compared with the robust least squares method which shows a zero mean error performance under the assumption that the stochastic information is known exactly.
机译:在本文中,我们提出了仅使用到达距离差(RDOA)测量值的位置和航向估计算法。基于RDOA测量结果,推导出不确定的线性测量模型,并通过工具变量(IV)方法估计位置和航向,这可以显示模型不确定性的无偏估计结果。另外,为了消除测量模型误差中包括的未知偏差,我们将偏差增加到模型的状态向量。由于该命题继承了IV方法的特性,因此除了RDOA测量噪声为零均值和白色的假设外,不需要RDOA测量的随机信息,并且在RDOA测量的方差时可以保证零均值误差性能。噪音是相同的。通过仿真,在传感器网络的各个位置和航向上验证了所提算法的性能,并与鲁棒最小二乘方法进行了比较,后者在假定随机信息精确已知的情况下表现出零均值误差性能。

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