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Estimation of FPAR and FPAR profile for maize canopies using airborne LiDAR

机译:使用机载LiDAR估算玉米冠层的FPAR和FPAR轮廓

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摘要

FPAR (fraction of photosynthetically active radiation) and FPAR profile (vertical FPAR distribution) are important parameters for characterizing the vegetation growth status and studying global climate change. Few studies have been carried out to estimate FPAR and FPAR profile using waveform LiDAR data. This research explored the potential of airborne small-footprint full-waveform LiDAR in the estimation of FPAR and FPAR profile of the maize canopy in Huailai County of Hebei Province, China. First, the maize growing area was identified by a simple decision tree model. Second, raw waveform data were processed to extract LiDAR-derived energy ratio and energy ratio profile. Third, FPAR and FPAR profile were estimated from LiDAR-derived metrics. Finally, we analyzed the FPAR and FPAR profile estimation results and assessed the model validity using the leave-one-out cross-validation (LOOCV) method. The comparative analyses found that the LiDAR-derived energy ratio profile and field-measured FPAR profile had the same trend and similar change rate for all maize layers. The accuracy assessments indicated that the FPAR and FPAR profile were estimated well by the LiDAR waveform data, with the high R-2 (0.90 for the whole canopy, and 0.95, 0.90, 0.93, 0.92, and 0.97 for layers 1-5) and low RMSEs (0.042 for the whole canopy, and 0.033, 0.035, 0.039, 0.043, and 0.044 for layers 1-5). The spatial distribution map of FPAR was produced to describe the maize growth status of the whole study area, and the map showed that the FPAR distributed relatively uniformly. This study suggested that airborne small-footprint full-waveform LiDAR was useful in accurately measuring FPAR and FPAR profile of the maize canopy and in effectively mapping the maize FPAR spatial distribution.
机译:FPAR(光合有效辐射的分数)和FPAR轮廓(垂直FPAR分布)是表征植被生长状况和研究全球气候变化的重要参数。很少有研究使用波形LiDAR数据估算FPAR和FPAR轮廓。本研究探索了机载小尺寸全波形LiDAR在估算河北省怀来县玉米冠层FPAR和FPAR剖面方面的潜力。首先,通过简单的决策树模型确定玉米种植区。其次,处理原始波形数据以提取LiDAR得出的能量比和能量比曲线。第三,FPAR和FPAR配置文件是根据LiDAR得出的指标估算的。最后,我们分析了FPAR和FPAR配置文件估计结果,并使用留一法交叉验证(LOOCV)方法评估了模型的有效性。比较分析发现,所有玉米层的LiDAR能量比分布图和现场测量的FPAR分布图具有相同的趋势和相似的变化率。精度评估表明,通过LiDAR波形数据可以很好地估计FPAR和FPAR轮廓,其中R-2高(整个树冠为0.90,而第1-5层为0.95、0.90、0.93、0.92和0.97),并且RMSE低(整个树冠为0.042,而第1-5层为0.033、0.035、0.039、0.043和0.044)。绘制了FPAR的空间分布图来描述整个研究区域的玉米生长状况,该图表明FPAR分布相对均匀。这项研究表明,机载小尺寸全波形LiDAR可用于准确测量玉米冠层的FPAR和FPAR轮廓以及有效绘制玉米FPAR空间分布图。

著录项

  • 来源
    《Ecological indicators》 |2017年第12期|53-61|共9页
  • 作者单位

    Chinese Acad Sci, Inst Remote Sensing & Digital Earth, Key Lab Digital Earth Sci, Beijing 100094, Peoples R China|Univ Chinese Acad Sci, Beijing 100049, Peoples R China;

    Chinese Acad Sci, Inst Remote Sensing & Digital Earth, Key Lab Digital Earth Sci, Beijing 100094, Peoples R China;

    Univ North Texas, Dept Geog, Denton, TX 76203 USA;

    Peking Univ, Sch Earth & Space Sci, Inst Remote Sensing & Geog Informat Syst, Beijing 100871, Peoples R China;

    Chinese Acad Sci, Inst Remote Sensing & Digital Earth, Key Lab Digital Earth Sci, Beijing 100094, Peoples R China;

    Chinese Acad Sci, Inst Remote Sensing & Digital Earth, Key Lab Digital Earth Sci, Beijing 100094, Peoples R China;

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

    Airborne LiDAR; Full-waveform; FPAR; Maize; FPAR profile;

    机译:机载LiDAR;全波形;FPAR;玉米;FPAR轮廓;

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