首页> 外文期刊>Journal of the Optical Society of America, A. Optics, image science, and vision >Scene estimation from speckled synthetic aperture radar imagery: Markov-random-field approach
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Scene estimation from speckled synthetic aperture radar imagery: Markov-random-field approach

机译:有斑点的合成孔径雷达图像的场景估计:马尔可夫随机场方法

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摘要

A novel Markov-random-field model for speckled synthetic aperture radar (SAR) imagery is derived according to the physical, spatial statistical properties of speckle noise in coherent imaging. A convex Gibbs energy function for speckled images is derived and utilized to perform speckle-compensating image estimation. The image estimation is formed by computing the conditional expectation of the noisy image at each pixel given its neighbors, which is further expressed in terms of the derived Gibbs energy function. The efficacy of the proposed technique, in terms of reducing speckle noise while preserving spatial resolution, is studied by using both real and simulated SAR imagery. Using a number of commonly used metrics, the performance of the proposed technique is shown to surpass that of existing speckle-noise-filtering methods such as the Gamma MAP, the modified Lee, and the enhanced Frost.
机译:根据相干成像中斑点噪声的物理,空间统计特性,推导了斑点合成孔径雷达(SAR)图像的新型马尔可夫随机场模型。导出用于斑点图像的凸吉布斯能量函数,并将其用于执行斑点补偿图像估计。图像估计是通过计算每个像素在给定其邻居下的有噪图像的条件期望而得出的,该条件期望进一步用导出的吉布斯能量函数表示。通过使用真实和模拟SAR图像,研究了在减少斑点噪声的同时保持空间分辨率方面所提出技术的功效。使用许多常用的度量标准,所提出的技术的性能被证明超过了现有的斑点噪声滤波方法,例如Gamma MAP,改进的Lee和增强的Frost。

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