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首页> 外文期刊>International journal of applied earth observation and geoinformation >Universal reconstruction method for radiometric quality improvement of remote sensing images
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Universal reconstruction method for radiometric quality improvement of remote sensing images

机译:改善遥感影像辐射质量的通用重建方法

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摘要

The performance of remote sensing images in some applications is often affected by the existence of noise, blurring, stripes and corrupted pixels, as well as the hardware limits of the sensor with respect to spatial resolution. This paper presents a universal reconstruction method that can be used to improve the image quality by performing image denoising, deconvolution, destriping, inpainting, interpolation and super-resolution reconstruction. The proposed method consists of two parts: a universal image observation model and a universal image reconstruction model. In the observation model, most degradation processes in remote sensing imaging are considered in order to relate the desired image to the observed images. For the reconstruction model, we use the maximum a posteriori (MAP) framework to set up the minimization energy equation. The likelihood probability density function (PDF) is constructed based on the image observation model, and a robust Huber-Markov model is employed as the prior PDF. Experimental results are presented to illustrate the effectiveness of the proposed method.
机译:在某些应用中,遥感图像的性能通常受噪声,模糊,条纹和损坏的像素的存在以及传感器相对于空间分辨率的硬件限制的影响。本文提出了一种通用的重建方法,可以通过执行图像去噪,去卷积,去条纹,修复,内插和超分辨率重建来提高图像质量。该方法包括两部分:通用图像观察模型和通用图像重建模型。在观察模型中,考虑了遥感成像中的大多数降级过程,以便将所需图像与观察图像相关联。对于重建模型,我们使用最大后验(MAP)框架来建立最小化能量方程。基于图像观测模型构造似然概率密度函数(PDF),并采用鲁棒的Huber-Markov模型作为现有的PDF。实验结果表明了该方法的有效性。

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