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Applications of object-based image analysis results for the farmland surrounding Kakamega Forest in western Kenya

机译:基于对象的图像分析结果在肯尼亚西部卡卡梅加森林周围农田中的应用

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For 473 km~2 of farmland surrounding Kakamega Forest in western Kenya, QuickBird satellite imagery has been analyzed by an object-based image analysis approach. Preprocessing involved atmospheric/orographic correction as well as mosaicing and was followed by ground truthing and visual interpretation. Segmentation was optimized using a newly introduced 'area fitness rate' as a discrepancy method and an 'objective function' as a goodness method. The final rule set for classification consisted of 831 individual processes and has resulted in the distinction of 15 land use/cover classes. This wealth of information has provided a thorough basis for a) the analysis of land use and landscape structures leading to ten distinct farmland types, and b) the redistribution of census population data via the development of a GIS-based population surface model. The typology and the QuickBird derived houses or the redistributed population have been used to simulate c) alternative futures of rural livelihood considering price development and crop yields, and d) rainwater harvesting potential.
机译:对于肯尼亚西部Kakamega森林周围473 km〜2的农田,QuickBird卫星图像已通过基于对象的图像分析方法进行了分析。预处理涉及大气/地形校正以及镶嵌,然后进行地面实况和视觉解释。使用新引入的“区域适应度”作为差异方法和“目标函数”作为优度方法来优化分割。最终的分类规则集由831个独立过程组成,导致区分了15种土地使用/覆盖类型。丰富的信息为a)分析导致十种不同农田类型的土地利用和景观结构提供了透彻的基础,b)通过基于GIS的人口表面模型的开发来重新分配普查人口数据。类型和由QuickBird衍生的房屋或重新分配的人口已被用于模拟c)考虑价格发展和作物产量的农村生计的替代未来,以及d)雨水收集的潜力。

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