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首页> 外文期刊>Ecological indicators >Mapping forest height using photon-counting LiDAR data and Landsat 8 OLI data: A case study in Virginia and North Carolina, USA
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Mapping forest height using photon-counting LiDAR data and Landsat 8 OLI data: A case study in Virginia and North Carolina, USA

机译:使用光子计数的LIDAR数据和Landsat 8 Oli数据映射森林高度:在美国弗吉尼亚州和北卡罗来纳州的案例研究

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摘要

Large-scale, accurate and detailed forest height map is worthwhile and necessary for understanding and assessing global carbon cycle and biodiversity. The Ice, Cloud and Land Elevation Satellite-2 (ICESat-2) mission, employing a photon-counting LiDAR (PCL) system, offers an opportunity to map global forest height with high resolution. This study aimed to map forest height at a spatial resolution of 30 m by combining Multiple Altimeter Beam Experimental Lidar (MABEL) data with Landsat 8 Operational Land Imager (OLI) data. There are four key steps to accomplish this goal. First, a segmentation method based on the Douglas-Peucker algorithm was proposed to solve the problem of large turns or calibration maneuvers in MABEL data. Second, we estimated forest height and selected the forest height samples with high accuracy and reliability by developing three filters including signal-to-noise ratio (SNR) filter, slope filter, and canopy photons density (CPD) filter. Third, forest height models based on both random forest (RF) and stepwise multiple regression algorithms were developed to establish relationships between the selected forest height samples and predicator variables of Landsat-derived spectral indices, topographic variables and geographic coordinates. Finally, a wall-to-wall forest height map was generated by applying the developed forest height models to predicator variables, and the accuracy of forest height map was validated using airborne LiDAR-derived forest heights. An area of 160, 000 km(2) in southeast Virginia and east North Carolina was chosen for testing the methods proposed in this study. The results demonstrated that the Douglas-Peucker algorithm can effectively solve the MABEL data overlapping issues caused by large turns and calibration maneuvers in flight lines. The suitable filters for selecting forest heights are SNR 6, terrain slope 25 degrees, and 40 CPD 170. These developed filters can substantially increase the accuracies of forest height models. The results also indicated that RF-derived forest height models achieved higher modeling accuracy than stepwise regression-derived forest height models. RF-derived forest height models yielded coefficient of determination (R-2) values of 0.59, 0.68 and 0.62 and RMSE values of 4.55 m, 3.41 m and 4.08 m for deciduous forest, evergreen forest and mixed forest, respectively. Compared to LiDAR-derived forest height, the forest height map produced in this study has a R-2 value of 0.54 and a RMSE value of 6.85 m, which demonstrates that combination of MABEL data and Landsat 8 OLI data can be used to generate forest height maps with a spatial resolution of 30 m.
机译:大规模,准确和详细的森林高度地图对于理解和评估全球碳循环和生物多样性是必要的。使用光子计数LIDAR(PCL)系统的冰,云和陆地海拔卫星-2(ICESAT-2)任务,为全球森林高度提供高分辨率,提供了机会。本研究旨在通过将多个高度计梁实验激光雷达(MABEL)数据与Landsat 8运营地成像器(OLI)数据组合来以30米的空间分辨率映射森林高度。完成这一目标有四个关键步骤。首先,提出了一种基于Douglas-Peucker算法的分割方法来解决MABEL数据中的大转或校准机动的问题。其次,我们估计森林高度,并选择森林高度样本,采用高精度和可靠性,通过开发三个过滤器,包括信噪比(SNR)过滤器,坡度滤波器和顶层光子密度(CPD)滤波器。第三,基于随机森林(RF)和逐步多元回归算法的森林高度模型是开发的,以建立Landsat衍生的光谱指数,地形变量和地理坐标所选的森林高度样本和序列变量之间的关系。最后,通过将开发的森林高度模型应用于令人变量来产生壁到墙林高图,并且使用空中激光雷达衍生的森林高度来验证森林高度图的准确性。选择在东南弗吉尼亚州和东北卡罗莱纳州160,000公里(2)的面积用于测试本研究中提出的方法。结果表明,道格拉斯 - PEUCKER算法可以有效地解决了由飞行线中的大转弯和校准行动引起的MABEL数据重叠问题。用于选择森林高度的合适过滤器是SNR> 6,地形斜率<25度和40

著录项

  • 来源
    《Ecological indicators》 |2020年第7期|106287.1-106287.12|共12页
  • 作者单位

    Chinese Acad Sci Aerosp Informat Res Inst Key Lab Digital Earth Sci Beijing 100094 Peoples R China|Univ Chinese Acad Sci Coll Resources & Environm Beijing 100049 Peoples R China;

    Chinese Acad Sci Aerosp Informat Res Inst Key Lab Digital Earth Sci Beijing 100094 Peoples R China|Univ Chinese Acad Sci Coll Resources & Environm Beijing 100049 Peoples R China;

    Chinese Acad Sci Aerosp Informat Res Inst Key Lab Digital Earth Sci Beijing 100094 Peoples R China;

    Univ North Texas Dept Geog & Environm Denton TX 76203 USA;

    Chinese Acad Sci Aerosp Informat Res Inst Key Lab Digital Earth Sci Beijing 100094 Peoples R China;

    Beijing Inst Spacecraft Syst Engn Beijing 100048 Peoples R China;

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

    ICESat-2; Multiple Altimeter Beam Experimental Lidar (MABEL); Operational Land Imager (OLI); Forest height mapping; Random forest (RF); Filtering;

    机译:ICESAT-2;多个高度计光束实验激光雷达(MABEL);运营陆地成像仪(OLI);森林高度映射;随机森林(RF);过滤;

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