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Olive Plantation Mapping on a Sub-Tree Scale with Object-Based Image Analysis of Multispectral UAV Data; Operational Potential in Tree Stress Monitoring

机译:基于树的橄榄树人工林映射,基于对象的多光谱无人机数据图像分析;树木压力监测中的操作潜力

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The objective of this study was to develop a methodology for mapping olive plantations on a sub-tree scale. For this purpose, multispectral imagery of an almost 60-ha plantation in Greece was acquired with an Unmanned Aerial Vehicle. Objects smaller than the tree crown were produced with image segmentation. Three image features were indicated as optimum for discriminating olive trees from other objects in the plantation, in a rule-based classification algorithm. After limited manual corrections, the final output was validated by an overall accuracy of 93%. The overall processing chain can be considered as suitable for operational olive tree monitoring for potential stresses.
机译:这项研究的目的是开发一种在亚树规模上绘制橄榄种植园的方法。为此,使用无人飞行器获取了希腊近60公顷人工林的多光谱图像。小于树冠的物体是通过图像分割产生的。在基于规则的分类算法中,三个图像特征被指示为从种植园中的其他对象中区分出橄榄树的最佳方法。经过有限的手动校正后,最终输出通过93%的总体准确度进行了验证。整个处理链可以被认为适用于对橄榄树进行潜在压力监测。

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