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Extraction of built-up areas in Chinese silk road economic belt based on DMSP-OLS data

机译:基于DMSP-OLS数据的中国丝绸之路经济带中的建筑区域提取

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Monitoring urban spatial information is vital to reveal the relationship between the human activity and environment, especially in the Chinese Silk Road Economic Belt, so as to allocate resources reasonably and realize sustainable development. To promote the remote sensing application in this field, a new method was proposed for urban built-up areas extraction mainly based on the support vector machine (SVM) classification with iterative sample refinement, combining Defense Meteorological Satellite Program-Operational Linescan System (DMSP-OLS) nighttime light data, and other auxiliary data such as Landsat images and the GlobeLand30 land cover product. Experiments were conducted by using the proposed approach for several cities in the southwest of the Chinese Silk Road Economic Belt, as classified by statistics and Landsat images. Compared with the traditional threshold dichotomy method and the state-of-the-art improved neighborhood focal statistics (NFS) method, the proposed method achieved better performance with respect to less relative error, and higher overall accuracy and Kappa coefficient.
机译:监测城市空间信息对于揭示人类活动与环境之间的关系至关重要,特别是在中国丝绸之路经济带上,以合理地分配资源,实现可持续发展。为推广该领域的遥感应用,建议为城市建筑区域提取的新方法主要基于支持向量机(SVM)分类,采用迭代样品细化,结合防御气象卫星计划运行线路系统(DMSP- OLS)夜间光数据和其他辅助数据,如Landsat Images和Globeland30陆地覆盖产品。通过使用统计和LANDSAT图像分类的中国丝绸之路经济带上的几个城市的拟议方法进行了实验。与传统的阈值二分法方法和最先进的邻域焦点统计(NFS)方法相比,所提出的方法相对于较少的相对误差实现了更好的性能,以及更高的整体精度和kappa系数。

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