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A New Method for Automatic Gross Error Detection in Remote Sensing Image Geometric Correction

机译:遥感图像几何校正中自动粗略检测的一种新方法

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Conventional gross error detection methods are mainly based on Gauss-Markov model and Least Squares Estimation, and are not adapted to gross error detection for control points of satellite remote sensing images, due to the serious ill-condition of satellite remote sensing imaging model and many iterations in the solving process. This paper proposed a method automatically detecting gross error of control points for geometric correction of satellite remote sensing images. This method substitutes the simple Least Squares Estimation with Levenberg-Marquardt (LM) algorithm, and removes one control point with the maximum standardized residual before updating the imaging model each time, until all the gross errors are eliminated. The disadvantages of traditional data detecting methods based on hypothesis testing were analyzed first, then a new approach determining the stopping point of gross error detection was put forward, that is clustering the absolute values of standardized residual differences. Experimental results and comparisons with other methods confirmed the validity of the proposed method.
机译:传统的总误差检测方法主要基于高斯 - 马尔可夫模型和最小二乘估计,并且由于卫星遥感成像模型的严重状况和许多人来说,卫星遥感图像的控制点的控制点并不适用于卫星遥感图像的总误差检测。解决过程中的迭代。本文提出了一种自动检测卫星遥感图像几何校正的控制点的总误差的方法。该方法用Levenberg-Marquardt(LM)算法代替简单的最小二乘估计,并在每次更新成像模型之前,从最大标准化残余中移除一个控制点,直到消除所有粗略误差。首先分析了基于假设检测的传统数据检测方法的缺点,然后提出了一种确定总误差检测的停止点的新方法,这是聚类标准化残余差异的绝对值。实验结果和与其他方法的比较证实了所提出的方法的有效性。

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