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Artificial cover extraction based on a Hierarchical Stripping Model in the Loess Plateau, China

机译:黄土高原地区基于分层剥离模型的人工覆盖提取

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This paper proposes a Hierarchical Stripping Model (HSM) to extract artificial cover in the Loess Plateau of China by stripping other no-artificial covers (e.g. water, vegetable, cropland, bare) hierarchically. Firstly, a Statistic Divisibility Analysis (SDA) is established to evaluate the divisibility between artificial and no-artificial cover and the divisibility values are the key base of specifying an optimal stripping sequence. And then, each no-artificial class with distinct level of divisibility is stripped by different ways which includes artificial cover index, Support Vector Machines (SVM) classification, object-oriented expert knowledge and object-oriented post-classification. This method was developed and tested on one Landsat path/raw study site that contain Yan'an City, and the overall accuracy and Kappa coefficient of the study area were 98.9286% and 0.9786 respectively. Therefore, the method has the potential to provide a robust method to extract artificial cover in complex large area.
机译:本文提出了一种分层剥离模型(HSM),通过分层剥离其他非人工覆盖物(例如水,蔬菜,农田,裸露的土地)来提取中国黄土高原的人工覆盖物。首先,建立统计可分性分析(SDA)来评估人工和非人工覆盖物之间的可分性,可分性值是指定最佳剥离顺序的关键基础。然后,通过不同的方法剥离每个具有不同可分性级别的非人工类,包括人工覆盖指数,支持向量机(SVM)分类,面向对象的专家知识和面向对象的后分类。该方法是在一个包含延安市的Landsat路径/原始研究站点上开发和测试的,研究区域的整体准确性和Kappa系数分别为98.9286%和0.9786。因此,该方法有可能提供一种鲁棒的方法来提取复杂大面积中的人工覆盖物。

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