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FOREST AND FOREST CHANGE MAPPING WITH C- AND L-BAND SAR IN LIWALE, TANZANIA

机译:坦桑尼亚Liwale的C-和L频段SAR森林和森林改变映射

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As part of a Tanzanian-Norwegian cooperation project on Monitoring Reporting and Verification (MRV) for REDD+, 2007-2011 C-and L-band synthetic aperture radar (SAR) backscatter data from Envisat ASAR and ALOS Palsar, respectively, have been processed, analysed and used for forest and forest change mapping over a study side in Liwale District in Lindi Region, Tanzania. Land cover observations from forest inventory plots of the National Forestry Resources Monitoring and Assessment (NAFORMA) project have been used for training Gaussian Mixture Models and k-means classifier that have been combined in order to map the study region into forest, woodland and non-forest areas. Maximum forest and woodland extension masks have been extracted by classifying maximum backscatter mosaics in HH and HV polarizations from the 2007-2011 ALOS Palsar coverage and could be used to map efficiently inter-annual forest change by filtering out changes in non-forest areas. Envisat ASAR APS (alternate polarization mode) have also been analysed with the aim to improve the forest/woodland/non-forest classification based on ALOS Palsar. Clearly, the combination of C-band SAR and L-band SAR provides useful information in order to smooth the classification and especially increase the woodland class, but an overall improvement for the wall-to-wall land type classification has yet to be confirmed. The quality assessment and validation of the results is done with very high resolution optical data from WorldView, Ikonos and RapidEye, and NAFORMA field observations.
机译:作为坦桑尼亚 - 挪威合作项目的一部分,用于监测报告和验证(MRV)的Redd +,2007-2011 C-L-BAND合成孔径雷达(SAR)分别从Envisat Asar和Alos Palsar的反向散射数据进行了处理,坦桑尼亚林迪地区Liwale地区研究方的林和森林变迁绘图。来自国家林业资源监测和评估(Naforma)项目的森林库存图中的土地覆盖意见已被用于培训高斯混合模型和K-Means分类器,以便将研究区域映射到森林,林地和非 - 森林地区。通过在2007-2011 Alos Palsar覆盖范围内分类HH和HV偏振中的最大反向散射马赛克来提取最大森林和林地延伸面具,并可通过过滤非林区的变化来映射有效的年度森林变化。也已经分析了Envisat ASAR APS(替代偏振模式),旨在改善基于Alos Palsar的森林/林地/非林分类。显然,C频段SAR和L波段SAR的组合提供了有用的信息,以便平滑分类,特别是林地阶级,但墙壁陆地分类的总体改进尚未得到证实。结果的质量评估和验证是通过来自WorldView,Ikonos和Rapideye的非常高分辨率的光学数据,以及Naforma现场观察完成。

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