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Performance Study of the Robust Bayesian Regularization Technique for Remote Sensing Imaging in Geophysical Applications

机译:鲁棒贝叶斯正则化技术在地球物理应用中的遥感成像性能研究

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In this paper, a performance study of a methodology for reconstruction of high-resolution remote sensing imagery is presented. This method is the robust version of the Bayesian regularization (BR) technique, which performs the image reconstruction as a solution of the ill-conditioned inverse spatial spectrum pattern (SSP) estimation problem with model uncertainties via unifying the Bayesian minimum risk (BMR) estimation strategy with the maximum entropy (ME) randomized a priori image model and other projection-type regularization constraints imposed on the solution. The results of extended comparative simulation study of a family of image formation/enhancement algorithms that employ the RBR method for high-resolution reconstruction of the SSP is presented. Moreover, the computational complexity of different methods are analyzed and reported together with the scene imaging protocols. The advantages of the remote sensing imaging experiment (that employ the BR-based estimator) over the cases of poorer designed experiments (that employ the conventional matched spatial filtering as well as the least squares techniques) are verified trough the simulation study. Finally, the application of this estimator in geophysical applications of remote sensing imagery is described.
机译:本文对高分辨率遥感影像的重建方法进行了性能研究。此方法是贝叶斯正则化(BR)技术的可靠版本,该技术通过统一贝叶斯最小风险(BMR)估计,将图像重建作为具有模型不确定性的病态逆空间频谱模式(SSP)估计问题的解决方案最大熵(ME)的随机策略将先验图像模型随机化,并将其他投影类型的正则化约束强加于解决方案。提出了使用RBR方法对SSP进行高分辨率重构的一系列图像形成/增强算法的扩展比较仿真研究的结果。此外,分析和报告了不同方法的计算复杂性,以及场景成像协议。通过模拟研究证实了遥感成像实验(采用基于BR的估计器)相对于设计较差的实验(采用常规匹配空间滤波以及最小二乘技术)的优势。最后,描述了该估计器在遥感影像地球物理应用中的应用。

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