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首页> 外文期刊>International journal of remote sensing >Integrating global land cover products to refine Globel_and30 forest types: a case study of conterminous United States (CONUS)
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Integrating global land cover products to refine Globel_and30 forest types: a case study of conterminous United States (CONUS)

机译:整合全球陆地覆盖产品以优化全球林(Hompel_And30)森林类型:对孔雀石(Conus)的案例研究

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摘要

Highly accurate and detailed information on land cover products is crucial in studying global climate change and sustainable development. GlobeLand30 is the first global 30 m resolution Land cover (LC) product based on remote sensing data developed by Chinese scientists. GlobeLand30 has 10 first-level classes of products. However, no second-level classification products have been released. This study presents an integration method based on fuzzy theory and combines three 30 m resolution LC products, namely, National Land Cover Database 2011 (NLCD 2011), Fine Resolution Observation and Monitoring of Global Land Cover Segmentation 2010 (FROM-GLC-Seg) and global forest cover data (treecover2010) products, using the European Environment Information and Observation Network Action Group on Land Monitoring in the European (EAGLE) system of semantic translation. The conterminous United States region is adopted as the research area, and the GlobeLand30 (2010) forest class is subdivided into coniferous, broadleaf and mixed forests. Three different weighted voting methods are applied. The difference is whether the user or local accuracy of the source product is considered. The result shows that the respective accuracies of broadleaf, coniferous, and mixed forests are approximately 65.8%, 57.0%, and 40.9% of the weighted voting method without considering any product's accuracy; 79.3%, 65.9%, and 58.4% of the weighted voting method considering the user accuracy; and 79.9%, 69.9%, and 59.3% of the weighted voting method considering the local accuracy of each product, respectively. The proposed method for refining the GlobeLand30 first class forest can be applied to other classes and land cover products.
机译:关于陆地覆盖产品的高度准确和详细信息对于研究全球气候变化和可持续发展至关重要。 Globeland30是基于中国科学家开发的遥感数据的第一个全球30米分辨率的土地覆盖(LC)产品。 Globaland30拥有10级产品的10级产品。但是,没有释放第二级分类产品。本研究提出了一种基于模糊理论的集成方法,结合了三个30米分辨率的LC产品,即国家土地覆盖数据库2011(NLCD 2011),全球陆地覆盖分割2010(从GLC-SEG)和监测全球森林覆盖数据(Treecover2010)产品,使用欧洲环境信息和观察网络动作组在欧洲(鹰)语义翻译中的土地监测。 Conterlinousd美国地区被采用作为研究领域,全球陆地林阶层被细分为针叶树,阔叶和混合林。应用了三种不同的加权投票方法。差异是考虑源产品的用户或局部精度。结果表明,无需考虑任何产品的准确性的加权投票方式的相应精度,针叶和​​混合林的相应精度约为65.8%,57.0%和40.9%;考虑用户准确性的加权投票方法的79.3%,65.9%和58.4%;考虑到每种产品的局部准确性,79.9%,69.9%和59.3%的加权投票方法。提出的炼制全球一流森林的方法可以应用于其他班级和陆地覆盖产品。

著录项

  • 来源
    《International journal of remote sensing》 |2021年第6期|2105-2130|共26页
  • 作者单位

    Beijing Univ Civil Engn & Architecture Sch Geomat & Urban Spatial Informat Beijing 100044 Peoples R China;

    Beijing Univ Civil Engn & Architecture Sch Geomat & Urban Spatial Informat Beijing 100044 Peoples R China;

    Henan Surveying & Mapping Engn Inst Zhengzhou Peoples R China;

    Beijing Univ Civil Engn & Architecture Sch Geomat & Urban Spatial Informat Beijing 100044 Peoples R China;

    Beijing Univ Civil Engn & Architecture Sch Geomat & Urban Spatial Informat Beijing 100044 Peoples R China;

    Henan Surveying & Mapping Engn Inst Zhengzhou Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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