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Assessment of forest restoration with multitemporal remote sensing imagery

机译:利用多时相遥感影像评估森林恢复

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Climate variability and man-made impacts have severely damaged forests around the world in recent years, which calls for an urgent need of restoration aiming toward long-term sustainability for the forest environment. This paper proposes a new three-level decision tree (TLDT) approach to map forest, shadowy, bare and low-vegetated lands sequentially by integrating three spectral indices. TLDT requires neither image normalization nor atmospheric correction, and improves on the other methods by introducing more levels of decision tree classification with inputs from the same multispectral imagery. This approach is validated by comparing the results obtained from aerial orthophotos (25?cm) that were acquired at approximately the same time in which the Formosa-2 images (8?m) were being taken. The overall accuracy is as high as 96.8% after excluding the deviations near the boundary of each class caused by the different resolutions. With TLDT, the effectiveness of forest restoration at 30 sites are assessed using all available multispectral Formosat-2 images acquired between 2005 and 2016. The distinction between natural regeneration and regrowth enhanced by restoration efforts were also made by using the existing dataset and TLDT developed in this research. This work supports the use of multitemporal remote sensing imagery as a reliable source of data for assessing the effectiveness of forest restoration on a regular basis. This work also serves as the basis for studying the global trend of forest restoration in the future.
机译:近年来,气候多变性和人为影响严重破坏了世界各地的森林,这迫切需要恢复以实现森林环境的长期可持续性。本文提出了一种新的三级决策树(TLDT)方法,通过整合三个光谱指数来依次绘制森林,阴影,裸露和低植被的土地。 TLDT既不需要图像归一化也不需要大气校正,并且通过引入来自同一多光谱图像的输入的决策树分类的更高级别来改进其他方法。通过比较从在拍摄Formosa-2图像(8?m)的大约同一时间获取的航空正射照片(25?cm)获得的结果,可以验证这种方法的有效性。排除由不同分辨率引起的每个类别的边界附近的偏差后,整体精度高达96.8%。使用TLDT,使用2005年至2016年间获取的所有可用多光谱Formosat-2图像评估了30个地点的森林恢复有效性。还通过利用现有数据集和由这项研究。这项工作支持将多时相遥感影像用作可靠的数据来源,以便定期评估森林恢复的有效性。这项工作还作为研究未来全球森林恢复趋势的基础。

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