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Regional Scale Land Cover Characterization Using MODIS-NDVI 250 m Multi-Temporal Imagery: A Phenology-Based Approach

机译:使用MODIS-NDVI 250 m多时相影像的区域尺度土地覆盖特征:基于物候学的方法

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Currently available land cover data sets for large geographic regions are produced on an intermittent basis and are often dated. Ideally, annually updated data would be available to support environmental status and trends assessments and ecosystem process modeling. This research examined the potential for vegetation phenology-based land cover classification over the 52,000 km~2 Albemarle-Pamlico estuarine system (APES) that could be performed annually. Traditional hyperspec-tral image classification techniques were applied using MODIS-NDVI 250 ml 6-day composite data over calendar year 2001 to support the multi-temporal image analysis approach. A reference database was developed using archival aerial photography that provided detailed mixed pixel cover-type data for 31,322 sampling sites corresponding to MODIS 250 m pixels. Accuracy estimates for the classification indicated that the overall accuracy of the classification ranged from 73% for very heterogeneous pixels to 89% when only homogeneous pixels were examined. These accuracies are comparable to similar classifications using much higher spatial resolution data, which indicates that there is significant value added to relatively coarse resolution data though the addition of multi-temporal observations.
机译:当前可用于大型地理区域的土地覆盖数据集是间歇性生成的,并且经常过时。理想情况下,可以使用每年更新的数据来支持环境状况和趋势评估以及生态系统过程建模。这项研究调查了每年可进行的52,000 km〜2的雅宝-帕姆利科河口系统(APES)上基于植被物候学的土地覆被分类的潜力。传统的高光谱图像分类技术在2001日历年使用250毫升MODIS-NDVI 6天复合数据进行了应用,以支持多时相图像分析方法。使用档案航空摄影开发了参考数据库,该数据库为31,322个采样点提供了详细的混合像素覆盖类型数据,对应于250 m像素的MODIS。分类的准确度估算表明,分类的整体准确度从非常异类像素的73%到仅检查同质像素的89%不等。这些精度可与使用更高空间分辨率数据的相似分类相媲美,这表明尽管添加了多时相观测值,但仍为相对粗略分辨率数据增加了可观的价值。

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