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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >Large area forest stem volume mapping in the boreal zone using synergy of ERS-1/2 tandem coherence and MODIS vegetation continuous fields
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Large area forest stem volume mapping in the boreal zone using synergy of ERS-1/2 tandem coherence and MODIS vegetation continuous fields

机译:利用ERS-1 / 2串联相干性和MODIS植被连续场的协同作用绘制寒带大面积森林茎体积图

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摘要

ERS-1/2 tandem coherence was reported to have high potential for the mapping of boreal forest stem volume (e.g. Santoro et al., 2002, 2007a; Wagner et al., 2003; Askne & Santoro, 2005). Large-scale application of the data for forest stem volume mapping, however, is hindered by the variability of coherence with meteorological and environmental acquisition conditions. The traditional way of stem volume retrieval is based on the training of models, relating coherence to stem volume, with the aid of forest inventory data which is generally available for a few small test sites but not for large areas. In this paper a new approach is presented that allows model training using the MODIS Vegetation Continuous Fields canopy cover product (Hansen et al., 2003) without further need for ground data. A comparison of the new approach with the traditional regression-based and ground-data dependent model training is presented in this paper for a multi-seasonal ERS-1/2 tandem dataset covering several well known Central Siberian forest sites. As a test scenario for large-area application, the approach was applied to a multi-seasonal ERS-1/2 tandem dataset of 223 ERS-1 and ERS-2 image pairs covering Northeast China (~1.5millionkm~2) to map four stem volume classes (0-20, 20-50, 50-80, and >80m~3/ha).
机译:据报道,ERS-1 / 2串联连贯性对于绘制北方森林茎的体积具有很高的潜力(例如Santoro等,2002,2007a; Wagner等,2003; Askne&Santoro,2005)。然而,由于气象和环境获取条件的连贯性变化,阻碍了将数据大规模应用于森林茎体积制图。传统的茎量检索方法是基于模型的训练,将一致性与茎量相关联,借助森林清单数据,该数据通常可用于少数几个小型测试站点,但不适用于大面积。在本文中,提出了一种新方法,该方法允许使用MODIS植被连续场冠层覆盖产品进行模型训练(Hansen等,2003),而无需进一步获取地面数据。本文针对涵盖多个知名西伯利亚中部森林站点的多季节ERS-1 / 2串联数据集,将新方法与传统的基于回归模型和依赖于地面数据的模型训练进行了比较。作为大面积应用的测试方案,该方法被应用于涵盖东北(约150万千米〜2)的223个ERS-1和ERS-2图像对的多季节ERS-1 / 2串联数据集,以绘制四个茎体积等级(0-20、20-50、50-80和> 80m〜3 / ha)。

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