Characterization Of Sar Images With Weighted Amplitude Transition Graphs

Eduarda T. C. Chagas, A. Frery, O. Rosso, Heitor S. Ramos
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引用次数: 1

Abstract

We propose a new technique for SAR image texture characterization based on ordinal pattern transition graphs. The proposal consists in (i) transforming a 2-D patch of data into a time series using a Hilbert Space Filling Curve, (ii) building an Ordinal Pattern Transition Graph with weighted edges; (iii) obtaining a probability distribution function from this graph; (iv) computing the Entropy and Statistical Complexity of this distribution. The weight of the edges is related to the absolute difference of observations. This modification takes into account the scattering properties of the target, and leads to a good characterization of several types of textures. Experiments with data from Munich urban areas, Guatemala forest regions, and Cape Canaveral ocean samples demonstrate the effectiveness of our technique, which achieves satisfactory levels of separability.
加权振幅转换图对Sar图像的表征
提出了一种基于有序模式转换图的SAR图像纹理表征方法。该方案包括:(i)利用Hilbert空间填充曲线将二维数据块转换为时间序列;(ii)构建带加权边的有序模式转换图;(iii)由该图得到概率分布函数;(iv)计算该分布的熵和统计复杂度。边的权重与观测值的绝对差有关。这种修改考虑到目标的散射特性,并导致几种类型的纹理的良好表征。对慕尼黑市区、危地马拉森林地区和卡纳维拉尔角海洋样本的实验证明了我们的技术的有效性,达到了令人满意的可分性水平。
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