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Mapping of Land Degradation from ASTER Data: A Comparison of Object-Based and Pixel-Based Methods

机译:基于ASTER数据的土地退化图:基于对象和基于像素的方法的比较

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摘要

Land degradation in Tongyu County, Northeast China was mapped from the visible, near infrared, and shortwave infrared bands of ASTER data using the per pixel-based maximum likelihood and object-based image classification methods, comparatively. In both methods the land covers were mapped into nine categories, three of which were related to land degradation. It is found that the ASTER image of 15 m spatial resolution allowed the mapping to be achieved at an overall accuracy of 70.6% using the pixel-based method. The accuracy for degraded land was slightly higher at 73.3%. If mapped from the same image segmented at 10 pixels (150 m) using the object-oriented method, the overall accuracy rose to 74.2%. However, the accuracy of severely degraded (i.e., bare ground) decreased, and the accuracy of degraded land also decreased to 65.8%. The overall accuracy rose to 76% if the classification was performed to the same image segmented at 20 pixels. However, the accuracy for degraded land was lowered further to 64.6%, even though the accuracy of bare ground was improved to 82.1%. It is concluded that object-oriented image classification does not fare much better than pixel-based image classification in mapping degraded lands from moderate-spatial-resolution satellite data such as ASTER due to their fragmented and discontinuous spatiality. At the 15m resolution level, scale does not seem to exert a noticeable impact on the object-based classification accuracy.
机译:相对而言,使用基于像素的最大似然法和基于对象的图像分类方法,从ASTER数据的可见,近红外和短波红外波段绘制了东北东北Tong县的土地退化图。在这两种方法中,土地覆被分为九类,其中三类与土地退化有关。结果发现,空间分辨率为15 m的ASTER图像允许使用基于像素的方法以70.6%的总精度实现映射。退化土地的准确性略高,为73.3%。如果使用面向对象方法从以10个像素(150 m)分割的同一图像进行映射,则总精度将提高到74.2%。但是,严重退化(即裸露地面)的精度下降,退化土地的精度也下降到65.8%。如果对以20像素分割的同一图像进行分类,则总体准确度将提高到76%。但是,即使裸地的精度提高到82.1%,退化土地的精度也进一步降低到64.6%。结论是,在从中等空间分辨率的卫星数据(例如ASTER)绘制退化土地的地图中,由于面向对象的图像分类由于其零散的和不连续的空间性,因此其效果不会比基于像素的图像分类好得多。在15m分辨率级别上,缩放比例似乎不会对基于对象的分类准确性产生明显影响。

著录项

  • 来源
    《GIScience & remote sensing》 |2008年第2期|p.149-166|共18页
  • 作者

    Jay Gao;

  • 作者单位

    School of Geography, Geology and Environmental Science, University of Auckland, Private Bag 92019, Auckland, New Zealand;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 测绘学;
  • 关键词

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