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首页> 外文期刊>Geophysical Research Letters >Characterization of North American land cover from NOAA-AVHRR data using the EOS MODIS land cover classification algorithm
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Characterization of North American land cover from NOAA-AVHRR data using the EOS MODIS land cover classification algorithm

机译:使用EOS MODIS土地覆盖分类算法根据NOAA-AVHRR数据对北美土地覆盖进行表征

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摘要

Land cover is a key boundary condition in weather, climate, and terrestrial biogeochemical models. Until recently, such models have used maps depicting potential vegetation, which are known to be of relatively poor quality, to parameterize land surface properties. In this paper we describe the compilation and assessment of a new map of North American land cover produced through the application of advanced pattern recognition techniques to multitemporal satellite data. This map was produced in a fully automated fashion using supervised classification methods that are robust, fully automated, and repeatable. The processing flow described in this paper is a prototype of the algorithm to be used to generate maps of global land cover using data from EOS MODIS. The superior quality and timeliness of these maps should be very useful for a wide array of sub-continental to global-scale modeling and analysis activities. [References: 9]
机译:土地覆盖是天气,气候和陆地生物地球化学模型中的关键边界条件。直到最近,此类模型还使用描述潜在植被的地图(这些地图已知质量相对较差)来对土地表面属性进行参数化。在本文中,我们描述了通过将先进的模式识别技术应用于多时相卫星数据而制作的新的北美土地覆盖图的编译和评估。该地图是使用可靠,完全自动化且可重复的监督分类方法以全自动方式生成的。本文描述的处理流程是该算法的原型,该算法将用于使用EOS MODIS的数据生成全球土地覆盖图。这些地图的卓越质量和及时性对于全球规模的次大陆建模和分析活动而言非常有用。 [参考:9]

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