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Estimating impervious surface distribution by spectral mixture analysis

机译:通过光谱混合分析估算不透水的表面分布

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摘要

Estimating the distribution of impervious surface, a major component of the vegetation impervious surface soil (V-I-S) model, is important in monitoring urban areas and understanding human activities. Besides its applications in physical geography, such as run-off models and urban change studies, maps showing impervious surface distribution are essential for estimating socio-economic factors, such as population density and social conditions. In this paper, impervious surface distribution, together with vegetation and soil cover, is estimated through a fully constrained linear spectral mixture model using Landsat Enhanced Thematic Mapper Plus (ETM+) data within the metropolitan area of Columbus, OH in the United States. Four endmembers, low albedo, high albedo, vegetation, and soil were selected to model heterogeneous urban land coven Impervious surface fraction was estimated by analyzing low and high albedo endmembers. The estimation accuracy for impervious surface was assessed using Digital Orthophoto Quarterquadrangle (DOQQ) images. The overall root mean square (RMS) error was 10.6%, which is comparable to the digitizing errors of DOQQ images. Results indicate that impervious surface distribution can be derived from remotely sensed imagery with promising accuracy.
机译:估计不透水表面的分布是植被不透水表面土壤(V-I-S)模型的主要组成部分,对于监测城市地区和了解人类活动非常重要。除了在自然地理学中的应用(例如径流模型和城市变化研究)外,显示不透水地表分布的地图对于估算人口密度和社会条件等社会经济因素也至关重要。本文使用美国俄亥俄州哥伦布市大都市地区的Landsat Enhanced Thematic Mapper Plus(ETM +)数据,通过完全约束的线性光谱混合模型,估计了不透水的表面分布以及植被和土壤覆盖率。选择低反照率,高反照率,植被和土壤这四个端元来模拟异质城市土地覆盖。通过分析低和高反照率端元来估计不透水表面分数。使用数字正射四分之一四边形(DOQQ)图像评估了不透水表面的估计精度。整体均方根(RMS)误差为10.6%,与DOQQ图像的数字化误差相当。结果表明不透水的表面分布可以从遥感图像中以有希望的精度得出。

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