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The novel use of proximal photogrammetry and terrestrial LiDAR to quantify the structural complexity of orchard trees

机译:新颖的使用近端摄影测量和陆地激光乐队量化果树树的结构复杂性

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摘要

Within the agrifood sector, the production of high yields is a driver for UK orchard husbandry. Currently, orchard tree management is typically a non-discriminatory method with all trees subjected to the same interventions. Previous studies indicate that structural complexity of individual orchard trees is an indicator for future yield, which can guide the management of individual trees. However, data on the structure of individual trees is often limited. This study investigated the suitability of using remote sensing methods to capture data that can be used to quantify tree structure. Descriptive metrics based on the mathematical assessment of self-affinity and dimensionality were applied to the remotely-sensed data to quantify tree structure, and were also analysed for suitability as a predictor of fruit yield. The findings suggest that while proximal photogrammetry is informative, terrestrial LiDAR data can be used to quantify structural complexity most effectively and this approach holds greater potential for informing orchard management.
机译:在农业食品部门,高收益率的生产是英国果园饲养的司机。目前,果园树管理通常是一种非歧视性方法,所有树木都会受到相同的干预措施。以前的研究表明,个体果园树的结构复杂性是未来产量的指标,可以指导各种树木的管理。然而,关于个体树木结构的数据通常是有限的。本研究调查了使用遥感方法捕获可用于量化树结构的​​数据的适用性。基于自亲和力和维度的数学评估的描述性度量被应用于远程感测的数据以量化树结构,并且还被分析为适用性作为水果产量的预测。研究结果表明,虽然近端摄影测量是信息的,但是,陆地激光雷达数据可用于量化最有效的结构复杂性,并且这种方法能够更大地了解果园管理的潜力。

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