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Improved triangular prism methods for fractal analysis of remotely sensed images

机译:改进的三角棱镜方法用于遥感图像的分形分析

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摘要

Feature extraction has been a major area of research in remote sensing, and fractal feature is a natural characterization of complex objects across scales. Extending on the modified triangular prism (MTP) method, we systematically discuss three factors closely related to the estimation of fractal dimensions of remotely sensed images. They are namely the (F1) number of steps, (F2) step size, and (F3) estimation accuracy of the facets' areas of the triangular prisms. Differing from the existing improved algorithms that separately consider these factors, we simultaneously take all factors to construct three new algorithms, namely the modification of the eight-pixel algorithm, the four corner and the moving-average MTP. Numerical experiments based on 4000 generated images show their superior performances over existing algorithms: our algorithms not only overcome the limitation of image size suffered by existing algorithms but also obtain similar average fractal dimension with smaller standard deviation, only 50% for images with high fractal dimensions. In the case of real-life application, our algorithms more likely obtain fractal dimensions within the theoretical range. Thus, the fractal nature uncovered by our algorithms is more reasonable in quantifying the complexity of remotely sensed images. Despite the similar performance of these three new algorithms, the moving-average MTP can mitigate the sensitivity of the MTP to noise and extreme values. Based on the numerical and real-life case study, we check the effect of the three factors, (F1)-(F3), and demonstrate that these three factors can be simultaneously considered for improving the performance of the MTP method. (C) 2016 Elsevier Ltd. All rights reserved.
机译:特征提取一直是遥感研究的主要领域,而分形特征是跨尺度对复杂对象的自然表征。在改进的三角棱镜(MTP)方法的基础上,我们系统地讨论了与估计遥感图像的分形维数密切相关的三个因素。它们是(F1)步数,(F2)步长和(F3)三角棱镜小平面区域的估计精度。与分别考虑这些因素的现有改进算法不同,我们同时考虑所有因素来构造三个新算法,即八像素算法的修改,四个角点和移​​动平均MTP。基于4000张生成的图像的数值实验显示了其优于现有算法的性能:我们的算法不仅克服了现有算法所遭受图像尺寸的局限,而且获得了具有较小标准偏差的相似平均分形维数,对于具有高分形维数的图像仅获得了50% 。在实际应用中,我们的算法更有可能获得理论范围内的分形维数。因此,在量化遥感图像的复杂度时,我们的算法发现的分形性质更为合理。尽管这三种新算法的性能相似,但移动平均MTP可以减轻MTP对噪声和极值的敏感性。在数值和实际案例研究的基础上,我们检查了三个因素(F1)-(F3)的影响,并证明可以同时考虑这三个因素以改善MTP方法的性能。 (C)2016 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Computers & geosciences》 |2016年第ptaa期|64-77|共14页
  • 作者

    Zhou Yu; Fung Tung; Leung Yee;

  • 作者单位

    Chinese Univ Hong Kong, Dept Geog & Resource Management, Shatin, Hong Kong, Peoples R China|Chinese Univ Hong Kong, Inst Future Cities, Shatin, Hong Kong, Peoples R China;

    Chinese Univ Hong Kong, Dept Geog & Resource Management, Shatin, Hong Kong, Peoples R China|Chinese Univ Hong Kong, Inst Environm Energy & Sustainabil, Shatin, Hong Kong, Peoples R China;

    Chinese Univ Hong Kong, Dept Geog & Resource Management, Shatin, Hong Kong, Peoples R China|Chinese Univ Hong Kong, Inst Future Cities, Shatin, Hong Kong, Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Fractal dimension; Triangular prism method; Number of steps; Step sizes; Area of triangular prism facets;

    机译:分形维数;三角棱镜法;步数;步长;三角棱镜面的面积;

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