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SAR image analysis of the sea surface by local fractal dimension estimation

机译:局部分形尺寸估计的海面SAR图像分析

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A wavelet-based approach to local fractal dimension estimation of SAR images of the sea surface is presented. Fractal analysis is considered as a tool for image texture characterization which can play a fundamental role to automatically detect oil slicks, and possibly distinguish them from natural surface films. A fractional Brownian motion (fBm) model is assumed for the clean sea surface. FBm processes have been proved to be suitable to describe signals backscattered by many natural surfaces, particularly by the sea surface within a certain range of scales. By using the properties of the average power spectra of fBm's, it is possible to estimated the fractal dimension, as demonstrated on synthetic fBm realizations. In this paper, a redundant wavelet representation is applied for estimating the local fractal dimension of the sea surface. By using this technique, which allows to operate at the original image resolution, all discontinuities of the fractal sea surface can be detected and accurately localized. Experimental results on true SAR images show that without considering the backscatter coefficient for calculating the fractal dimension, but only textural features, it is possible to detect oil slicks and man-made objects on the sea surface.
机译:提出了一种基于小波的局部分形尺寸估计海面SAR图像的方法。分形分析被认为是图像纹理表征的工具,其可以起到自动检测油光滑的基本作用,并且可能将它们与天然表面薄膜区分开来。假设洁净海表面的分数褐色运动(FBM)模型。已证明FBM工艺适合描述许多天然表面的信号反向散射,特别是在一定范围内的海面。通过使用FBM的平均功率光谱的性质,可以估计在合成FBM实现上所证明的分形维数。在本文中,施加冗余小波表示用于估计海面的局部分形维数。通过使用该技术,该技术允许在原始图像分辨率下操作,可以检测和准确地定位分形海表面的所有不连续性。真正的SAR图像的实验结果表明,在不考虑计算分形尺寸的反向散射系数,而是只有纹理特征,可以检测海面上的油气光滑和人造物体。

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