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A Fixed-Threshold Approach to Generate High-Resolution Vegetation Maps for IKONOS Imagery

机译:一种固定阈值方法,可为IKONOS影像生成高分辨率植被图

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Vegetation distribution maps from remote sensors play an important role in urban planning, environmental protecting and related policy making. The normalized difference vegetation index (NDVI) is the most popular approach to generate vegetation maps for remote sensing imagery. However, NDVI is usually used to generate lower resolution vegetation maps, and particularly the threshold needs to be chosen manually for extracting required vegetation information. To tackle this threshold selection problem for IKONOS imagery, a fixed-threshold approach is developed in this work, which integrates with an extended Tasseled Cap transformation and a designed image fusion method to generate high-resolution (1-meter) vegetation maps. Our experimental results are promising and show it can generate more accurate and useful vegetation maps for IKONOS imagery.
机译:遥感器的植被分布图在城市规划,环境保护和相关政策制定中起着重要作用。标准化差异植被指数(NDVI)是生成用于遥感影像的植被图的最流行方法。但是,NDVI通常用于生成分辨率较低的植被图,尤其是需要手动选择阈值以提取所需的植被信息。为了解决IKONOS图像的阈值选择问题,在这项工作中开发了一种固定阈值方法,该方法与扩展的Tasseled Cap变换和设计的图像融合方法相集成,以生成高分辨率(1米)植被图。我们的实验结果很有希望,并表明它可以为IKONOS影像生成更准确和有用的植被图。

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