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Detailed maps of tropical forest types are within reach: forest tree communities for Trinidad and Tobago mapped with multiseason Landsat and multiseason fine-resolution imagery.

机译:热带森林类型的详细地图近在咫尺:特立尼达和多巴哥的林木群落已映射了多个季节的Landsat和多个季节的高分辨率图像。

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Tropical forest managers need detailed maps of forest types for REDD+, but spectral similarity among forest types; cloud and scan-line gaps; and scarce vegetation ground plots make producing such maps with satellite imagery difficult. How can managers map tropical forest tree communities with satellite imagery given these challenges Here we describe a case study of mapping tropical forests to floristic classes with gap-filled Landsat imagery by judicious combination of field and remote sensing work. For managers, we include background on current and forthcoming solutions to the problems of mapping detailed tropical forest types with Landsat imagery. In the study area, Trinidad and Tobago, class characteristics like deciduousness allowed discrimination of floristic classes. We also discovered that we could identify most of the tree communities in (1) imagery with fine spatial resolution of <=1 m; (2) multiseason fine resolution imagery (viewable with Google Earth); or (3) Landsat imagery from different dates, particularly imagery from drought years, even if decades old, allowing us to collect the extensive training data needed for mapping tropical forest types with "noisy" gap-filled imagery. Further, we show that gap-filled, synthetic multiseason Landsat imagery significantly improves class-specific accuracy for several seasonal forest associations. The class-specific improvements were better for comparing classification results; for in some cases increases in overall accuracy were small. These detailed mapping efforts can lead to new views of tropical forest landscapes. Here we learned that the xerophytic rain forest of Tobago is closely associated with ultramafic geology, helping to explain its unique physiognomy.
机译:热带森林管理者需要针对REDD +的森林类型的详细地图,但是森林类型之间的光谱相似性;云和扫描线之间的差距;植被稀疏的地块使制作带有卫星图像的地图变得困难。在面临这些挑战的情况下,管理者如何利用卫星图像绘制热带林木群落。在此,我们描述了一个案例研究,该研究是通过野外和遥感工作的明智结合,利用填空的Landsat图像将热带森林映射到植物种类。对于管理人员,我们提供了有关使用Landsat影像绘制详细热带森林类型的问题的最新解决方案的背景信息。在研究区域特立尼达和多巴哥,落叶性等阶级特征允许区分植物区系。我们还发现,我们可以在(1)图像中以<= 1 m的精细空间分辨率识别大多数树木群落; (2)多个季节的高分辨率图像(可在Google地球上查看);或(3)不同日期的Landsat影像,尤其是干旱年代的影像,即使已有数十年之久,也使我们能够使用“嘈杂”的空白影像来收集绘制热带森林类型所需的大量训练数据。此外,我们显示出空白的,合成的多季节Landsat影像可以显着提高几个季节森林协会的特定于类别的准确性。特定于类别的改进更好地比较了分类结果;在某些情况下,整体准确性的提高很小。这些详细的制图工作可以带来热带森林景观的新视野。在这里,我们了解到多巴哥的旱生雨林与超镁铁质地质学密切相关,有助于解释其独特的地貌。

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