基于Worldview-2卫星和无人机图像的橡树蛀虫攻击干树结果检测——面向对象方法

Y. T. Mollaei, A. Karamshahi, S. Y. Erfanifard
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引用次数: 2

摘要

在伊朗,森林清查信息对土地管理至关重要,因为伊朗10%的土地由森林组成。因此,准确的森林信息,如树木数、高度、胸径和体积,对森林管理至关重要。虽然这些数据传统上需要劳动密集和耗时的实地测量,但遥感等新技术已经补充和取代了其中一些实地测量。虽然不同类型的传感器用于提取树木单株信息,但由于WV-2具有较高的空间和光谱分辨率,因此近年来主要使用WorldView-2 (WV-2)来提取地表信息。本研究采用基于KNN方法的目标基分类器对WV-2卫星进行分类,并对研究地点的无人机图像进行评估精度。研究表明,基于目标的分类算法在干树分类中准确率最高。本研究旨在评估WV-2数据在识别和测量单株树木中提取森林特征的可能性。我们的研究结果表明,WV-2数据、基于目标分类的NDVI可以用于检测多种原因和几种森林覆盖类型的树木死亡率。
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Detection of the Dry Trees Result of Oak Borer Beetle Attack Using Worldview-2 Satellite and UAV Imagery an Object-Oriented Approach
In Iran, forest inventory information has been essential with respect to land management because 10% of Iran is composed of forests. Therefore, accurate forest information such as tree counts, height, DBH, and volume are critical for forest management. While such data traditionally have required labor intensive and time consuming field measurement, new technologies such as remote sensing have supplemented and supplanted some of these field measurements. Although different types of sensors have been used to extract individual trees information, WorldView-2 (WV-2) has been used recently to extract surface information because WV-2 have high spatial and spectral resolution. In this study, object base classifiers (with KNN way) were used to classify WV-2 satellite and do assessment accuracy with UAV image in study sites. the study indicate that the classification accuracy of Objectbased algorithm was best for extraction of dry trees. This study is conducted to evaluate the possibility of WV-2 data to extract forest characteristics from identifying and measuring individual trees. Our results demonstrate that WV-2 data, NDVI with object-based classification can be used to detect tree mortality resulting from numerous causes and in several forest cover types.
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