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首页> 外文期刊>Remote Sensing >Influence of Plot Size on Efficiency of Biomass Estimates in Inventories of Dry Tropical Forests Assisted by Photogrammetric Data from an Unmanned Aircraft System
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Influence of Plot Size on Efficiency of Biomass Estimates in Inventories of Dry Tropical Forests Assisted by Photogrammetric Data from an Unmanned Aircraft System

机译:地块大小对无人飞行器摄影测量数据辅助的热带干燥森林清单生物量估计效率的影响

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Applications of unmanned aircraft systems (UASs) to assist in forest inventories have provided promising results in biomass estimation for different forest types. Recent studies demonstrating use of different types of remotely sensed data to assist in biomass estimation have shown that accuracy and precision of estimates are influenced by the size of field sample plots used to obtain reference values for biomass. The objective of this case study was to assess the influence of sample plot size on efficiency of UAS-assisted biomass estimates in the dry tropical miombo woodlands of Malawi. The results of a design-based field sample inventory assisted by three-dimensional point clouds obtained from aerial imagery acquired with a UAS showed that the root mean square errors as well as the standard error estimates of mean biomass decreased as sample plot sizes increased. Furthermore, relative efficiency values over different sample plot sizes were above 1.0 in a design-based and model-assisted inferential framework, indicating that UAS-assisted inventories were more efficient than purely field-based inventories. The results on relative costs for UAS-assisted and pure field-based sample plot inventories revealed that there is a trade-off between inventory costs and required precision. For example, in our study if a standard error of less than approximately 3 Mg ha ?1 was targeted, then a UAS-assisted forest inventory should be applied to ensure more cost effective and precise estimates. Future studies should therefore focus on finding optimum plot sizes for particular applications, like for example in projects under the Reducing Emissions from Deforestation and Forest Degradation, plus forest conservation, sustainable management of forest and enhancement of carbon stocks (REDD+) mechanism with different geographical scales.
机译:无人机系统(UAS)的应用有助于森林清查,为不同森林类型的生物量估算提供了可喜的结果。最近的研究表明,使用不同类型的遥感数据来帮助进行生物量估算,结果表明,估算的准确性和精确度受用于获取生物量参考值的田间采样区的大小影响。本案例研究的目的是评估马拉维干旱的热带米伦波林地中样地大小对UAS辅助生物量估算效率的影响。基于设计的现场样本清单的结果是,从使用UAS采集的航空影像获得的三维点云的辅助下,结果表明,均方根误差以及平均生物量的标准误差估计值随样本图大小的增加而降低。此外,在基于设计和模型辅助的推论框架中,不同样本地块上的相对效率值都高于1.0,这表明UAS辅助的库存比纯现场的库存更有效。关于UAS辅助的和基于纯现场的样地清单的相对成本的结果表明,在存货成本和所需精度之间要进行权衡。例如,在我们的研究中,如果目标标准误差小于约3 Mg ha?1,则应采用UAS辅助的森林清单以确保更具成本效益和更精确的估计。因此,未来的研究应着重于寻找特定应用的最佳样地面积,例如在减少毁林和森林退化所致排放量的项目中,以及森林保护,森林的可持续管理和不同地理规模的碳储量(REDD +)机制。

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