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Integrated LiDAR and IKONOS multispectral imagery for mapping mangrove distribution and physical properties

机译:集成的LiDAR和IKONOS多光谱图像,用于绘制红树林分布和物理属性

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摘要

The distribution of mangroves and other tropical and subtropical vegetation in the Greater Everglades Ecosystem is largely dependent on subtle variations in elevation, with mangroves occupying the lowest elevations. Combining a digital terrain model (DTM) derived from last-return light detection and ranging (LiDAR) data with IKONOS multispectral imagery in a maximum likelihood supervised classification resulted in a 7.1% increase in overall classification accuracy among seven classes (red mangrove, black mangrove, tropical hardwood hammock, coastal rock barren vegetation, mudflat, sand/rock and asphalt) compared with using the multispectral imagery alone, and the classification accuracy was improved for all four spectrally similar vegetation classes. A digital canopy model (DCM) was created by subtracting the digital terrain model from a digital surface model derived from LiDAR first returns. The DCM-recorded heights well correlated with mangrove canopy heights measured in the field but were systematically lower, by up to 2 m, for the tallest canopy. LiDAR has been documented to underestimate vegetation heights but the presence of water beneath some of the red mangrove canopy probably exacerbated this effect. The DCM and empirical allometric algorithms were used to estimate stem density and biomass for the classified red and black mangroves.
机译:大沼泽地生态系统中的红树林和其他热带及亚热带植被的分布在很大程度上取决于海拔的细微变化,其中红树林的海拔最低。将来自最后返回光检测和测距(LiDAR)数据的数字地形模型(DTM)与IKONOS多光谱图像相结合,以最大可能性进行监督分类,从而使七个类别(红红树林,黑红树林)的总体分类精度提高了7.1% ,热带硬木吊床,沿海岩石贫瘠的植被,滩涂,沙子/岩石和沥青)与单独使用多光谱影像相比,并且对所有四个光谱相似的植被类别,其分类准确性都有所提高。通过从源自LiDAR首次返回的数字地表模型中减去数字地形模型来创建数字树冠模型(DCM)。 DCM记录的高度与野外测得的红树林冠层高度高度相关,但最高的冠层有系统地降低了2 m。激光雷达已被证明低估了植被高度,但是在某些红树林冠层下面的水的存在可能加剧了这种影响。 DCM和经验异速生长算法用于估计已分类的红树林和红树林的茎密度和生物量。

著录项

  • 来源
    《International journal of remote sensing》 |2011年第21期|p.6765-6781|共17页
  • 作者

    JOHN CHADWICK;

  • 作者单位

    Department of Geography and Earth Sciences, University of North Carolina at Charlotte, Charlotte, NC 28223, USA;

  • 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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