二维卡尔曼滤波方法在航空矢量重力测量中的应用

IF 0.9 Q4 REMOTE SENSING Journal of Geodetic Science Pub Date : 2019-01-01 DOI:10.1515/jogs-2019-0009
V. Vyazmin, Y. Bolotin
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引用次数: 2

摘要

摘要本文提出了一种解决航空矢量重力测量问题的新方法。该方法的思想是考虑重力场的空间相关性,提高重力扰动矢量(GDV)水平分量的可观测性。我们考虑给定一组平行测量线上的机载数据,假设线在参考椭球之上的恒定高度上沿同一方向飞行的GDV确定问题。我们使用二维随机场模型来描述飞行高度处的重力场。随机场由两个自回归方程控制(一个沿直线方向,另一个跨直线方向)。在此基础上,提出了同时对惯性导航系统各线路上的水平分量和系统误差进行估计的问题。所开发的估计算法基于二维卡尔曼滤波和平滑技术。模拟数据处理的数值结果表明,重力水平分量的确定精度得到了提高。
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Two-dimensional Kalman filter approach to airborne vector gravimetry
Abstract The paper presents a new approach to the airborne vector gravimetry problem. The idea of the approach is to take into account spatial correlation of the gravity field to improve observability of horizontal components of the gravity disturbance vector (GDV). We consider the GDV determination problem given airborne data at a set of parallel survey lines assuming that lines are flown in the same direction at a constant height above the reference ellipsoid. We use a 2-D random field model for the gravity field at the flight height. The random field is governed by two autoregressive equations (one in the direction along the lines, the other across the lines). Then we pose the estimation problem simultaneously for the GDV horizontal components and systematic errors of an inertial navigation system at all the lines simultaneously. The developed estimation algorithm is based on 2D Kalman filtering and smoothing techniques. Numerical results obtained from simulated data processing showed improved accuracy of the gravity horizontal component determination.
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来源期刊
Journal of Geodetic Science
Journal of Geodetic Science REMOTE SENSING-
CiteScore
1.90
自引率
7.70%
发文量
3
审稿时长
14 weeks
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