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首页> 外文期刊>International journal of digital Earth >Quantifying individual tree growth and tree competition using bi-temporal airborne laser scanning data: a case study in the Sierra Nevada Mountains, California
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Quantifying individual tree growth and tree competition using bi-temporal airborne laser scanning data: a case study in the Sierra Nevada Mountains, California

机译:使用双颞空气传播激光扫描数据量化单个树生长和树竞争:加利福尼亚山脉内华达山脉的案例研究

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摘要

Improved monitoring and understanding of tree growth and its responses to controlling factors are important for tree growth modeling. Airborne Laser Scanning (ALS) can be used to enhance the efficiency and accuracy of large-scale forest surveys in delineating three-dimensional forest structures and under-canopy terrains. This study proposed an ALS-based framework to quantify tree growth and competition. Bi-temporal ALS data were used to quantify tree growth in height (H), crown area (A), crown volume (V), and tree competition for 114,000 individual trees in two conifer-dominant Sierra Nevada forests. We analyzed the correlations between tree growth attributes and controlling factors (i.e. tree sizes, competition, forest structure, and topographic parameters) at multiple levels. At the individual tree level, H had no consistent correlations with controlling factors, A and V were positively related to original tree sizes (R0.3) and negatively related to competition indices (R-0.3). At the forest-stand level, H and A were highly correlated to topographic wetness index (|R|0.7), V was positively related to original tree sizes (|R|0.8). Multivariate regression models were simulated at individual tree level for H, A, and V with the R-2 ranged from 0.1 to 0.43. The ALS-based tree height estimation and growth analysis results were consistent with field measurements.
机译:改善了对树木增长的监测和理解及其对控制因素的反应对于树生长建模很重要。空中激光扫描(ALS)可用于提高大规模森林调查在划定三维森林结构和冠层下的地形中的大规模森林调查的效率和准确性。本研究提出了基于ALS的框架来量化树增长和竞争。双颞ALS数据用于量化高度(H),冠部(A),皇冠(V),以及在两个针叶树优势塞拉尼亚森林中为114,000个单独树木的树竞争的树长。我们在多个层面分析了树生长属性与控制因子之间的相关性(即树大小,竞争,森林结构和地形参数)之间的相关性。在各个树级,H与控制因子没有一致的相关性,A和V与原始树尺寸(R> 0.3)呈正相关,并且与竞争指数呈负相关(R& -0.3)。在森林 - 立式水平,H和A与地形湿度指数(|& 0.7)高度相关,V与原始树尺寸正面(|& 0.8)。在H,A和V的单个树级模拟多变量回归模型,R-2的范围为0.1至0.43。基于ALS的树高度估计和生长分析结果与现场测量一致。

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