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Simulating the impacts of error in species and height upon tree volume derived from airborne laser scanning data

机译:模拟物种和高度误差对机载激光扫描数据得出的树木体积的影响

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摘要

A key requirement of sustainable forest management is accurate, timely, and comprehensive information on forest resources, which is provided through forest inventories. In Canada, forest inventories are conventionally undertaken through the delineation and interpretation of forest stands using aerial photography, supported by data from permanent and temporary sample plots. In recent years, Airborne Laser Scanning (ALS) data have been shown to provide accurate estimates of a range of forest structural attributes. As a result, ALS has emerged as an increasingly common data source for enhanced forest inventory programs. Capture of species compositional information with ALS, based upon the nature of the data, is less reliable than structural variables, with species information typically derived from spectral or textural interpretation of aerial photography or very high spatial resolution digital imagery. Utilizing national allometric equations for the major species found in British Columbia, Canada, and a series of individual tree-level simulations, we analyzed (i) how incorrect species identification can influence individual tree volume prediction; (ii) which of the possible species substitutions result in higher volume errors; (iii) how the error in height that is typical for photogrammetry-based and ALS-based forest inventories impacts individual tree volume estimates; and (iv) the impact of combined errors in both species composition and height on overall individual tree volume estimates. Our results indicate that species information is important for volume calculations, and that the use of generic (i.e. all species) or cover-type allometric equations can lead to large errors in volume estimates. We also found that, even with a 50% error in species composition (whereby incorrect species-specific equations are substituted), volume estimates derived from species-specific allometric equations were more accurate than estimates derived from generic or cover-type equations. Our findings indicate that errors in species composition have less impact on individual tree volume estimates than errors in height measurement. The implications of these results are that, with very accurate estimates of height provided by ALS and knowledge of what dominant species is expected in a stand, accurate estimates of volume can be generated in the absence of more detailed species composition information
机译:可持续森林管理的一项关键要求是通过森林清单提供有关森林资源的准确,及时和全面的信息。在加拿大,通常通过航空摄影对林分进行划定和解释,并根据永久性和临时性样地的数据进行森林清查。近年来,机载激光扫描(ALS)数据已显示出可以提供一系列森林结构属性的准确估计。结果,ALS已成为增强的森林清查程序的越来越普遍的数据源。基于数据的性质,使用ALS捕获物种组成信息的可靠性不如结构变量可靠,物种信息通常来自航空摄影的光谱或纹理解释或非常高分辨率的数字图像。利用针对加拿大不列颠哥伦比亚省发现的主要树种的国家异形方程,以及一系列单独的树级模拟,我们分析了(i)错误的物种识别如何影响树的个体体积预测; (ii)哪些可能的物种替代导致更高的体积误差; (iii)基于摄影测量和基于ALS的森林清单典型的高度误差如何影响单个树木的体积估计; (iv)物种组成和高度的综合误差对整体单个树木体积估计的影响。我们的结果表明,物种信息对于体积计算非常重要,并且使用通用(即所有物种)或掩盖型等速方程可能会导致体积估计中的较大误差。我们还发现,即使物种组成存在50%的误差(从而替换了错误的物种特定方程式),从物种特定异形方程得出的体积估计也比从通用或覆盖类型方程得出的估计更准确。我们的发现表明,与高度测量错误相比,物种组成错误对单个树木体积估计的影响较小。这些结果的含义是,利用ALS提供的高度高度非常精确的估计,以及知道展位中预计有哪些优势种,就可以在没有更详细的物种组成信息的情况下得出准确的体积估计值。

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