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TerraSAR-X dual-pol time-series for mapping of wetland vegetation

机译:TerraSAR-X双极化时间序列,用于湿地植被测绘

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Mapping vegetation formations at a fine scale is crucial for assessing wetland functions and for better landscape management. Identification and characterization of vegetation formations is generally conducted at a fine scale using ecological ground surveys, which are limited to small areas. While optical remotely sensed imagery is limited to cloud-free periods, SAR time-series are used more extensively for wetland mapping and characterization using the relationship between distribution of vegetation formations and flood duration. The aim of this study was to determine the optimal number and key dates of SAR images to be classified to map wetland vegetation formations at a 1:10,000 scale. A series of eight dual-polarization TerraSAR-X images (HH/VV) was acquired in 2013 during dry and wet seasons in temperate climate conditions. One polarimetric parameter was extracted first, the Shannon entropy, which varies with wetland flooding status and vegetation roughness. Classification runs of all the possible combinations of SAR images using different k (number of images) subsets were performed to determine the best combinations of the Shannon entropy images to identify wetland vegetation formations. The classification runs were performed using Support Vector Machine techniques and were then analyzed using the McNemar test to investigate significant differences in the accuracy of all classification runs based on the different image subsets. The results highlight the relevant periods (i.e. late winter, spring and beginning of summer) for mapping vegetation formations, in accordance with ecological studies. They also indicate that a relationship can be established between vegetation formations and hydrodynamic processes with a short time-series of satellite images (i.e. 5 dates). This study introduces a new approach for herbaceous wetland monitoring using SAR polarimetric imagery. This approach estimates the number and key dates required for wetland management (e.g. restoration) and biodiversity studies using remote sensing data. (C) 2015 International Society for Photogrammetry and Remote Sensing, Inc. (ISPRS). Published by Elsevier B.V. All rights reserved.
机译:精细绘制植被图对于评估湿地功能和改善景观管理至关重要。植被形成的识别和表征通常使用生态地面调查以较小的规模进行,而生态地面调查仅限于小区域。虽然光学遥感影像仅限于无云时段,但SAR时间序列通过植被分布与洪水持续时间之间的关系而被更广泛地用于湿地测绘和特征描述。这项研究的目的是确定要分类的SAR图像的最佳数量和关键日期,以便以1:10,000的比例绘制湿地植被形成图。在温带气候条件下的干燥和潮湿季节,2013年采集了一系列八幅双极化TerraSAR-X图像(HH / VV)。首先提取一个极化参数,香农熵,该参数随湿地洪水状况和植被粗糙度而变化。使用不同的k(图像数量)子集对SAR图像的所有可能组合进行分类,以确定Shannon熵图像的最佳组合,以识别湿地植被形成。使用支持向量机技术进行分类运行,然后使用McNemar测试进行分析,以调查基于不同图像子集的所有分类运行的准确性存在显着差异。结果表明,根据生态学研究,可以绘制出有关植被形成图的相关时期(即冬末,春季和夏季初)。它们还表明,可以利用较短的卫星图像时间序列(即5个日期)在植被形成与水动力过程之间建立关系。这项研究介绍了一种使用SAR偏振图像监测草本湿地的新方法。这种方法利用遥感数据估算了湿地管理(例如恢复)和生物多样性研究所需的数量和关键日期。 (C)2015国际摄影测量与遥感学会(ISPRS)。由Elsevier B.V.发布。保留所有权利。

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