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Comparison of Spectral Analysis Techniques for Impervious Surface Estimation Using Landsat Imagery

机译:利用Landsat影像进行不透水面估计的光谱分析技术比较

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Various methodologies have been used to estimate and map percent impervious surface area (%ISA) using moderate resolution remote sensing imagery (e.g., Landsat Thematic Mapper). There is, however, a lack of comparative analyses among these methods. This study compares three major spectral analysis techniques (regression modeling, regression tree, and normalized spectral mixture analysis (NSMA)) for continuous %ISA estimation using Landsat imagery for 1986 and 2002 for the seven-county Twin Cities Metropolitan Area of Minnesota. Our study showed that all three techniques demonstrate the capability for estimating %ISA accurately, with RMSE ranging from 7.3 percent to 11 percent and R2 of 0.90 to 0.96 for both years. Comparatively, regression modelingand regression tree methods produced similar results; however, both of them are highly dependent on accurate masks to differentiate urban impervious surfaces from bare soil. Within the urban mask, the regression tree-based estimates were the most accurate. In terms of time and cost, the NSMA approach is most efficient, but it tends to underestimate the percent imperviousness for highly developed areas. Findings from the study provide guidance for the selection of %ISA estimation techniques using moderate resolution remote sensing data, along with information for further methodological improvements.
机译:使用中等分辨率的遥感图像(例如,Landsat Thematic Mapper),已使用各种方法来估计和绘制不渗透表面积百分比(%ISA)。但是,这些方法之间缺乏比较分析。这项研究比较了三项主要的频谱分析技术(回归模型,回归树和归一化频谱混合分析(NSMA)),这些数据用于使用1986年和2002年的Landsat影像对明尼苏达州的七县双城都会区进行连续%ISA估计。我们的研究表明,所有这三种技术均显示出能够准确估算%ISA的能力,两年均方根误差(RMSE)在7.3%至11%之间,R2在0.90至0.96之间。相比之下,回归建模和回归树方法产生的结果相似。但是,它们都高度依赖精确的遮罩来区分城市的不透水表面和裸露的土壤。在市区范围内,基于回归树的估计最为准确。就时间和成本而言,NSMA方法是最有效的,但它往往低估了高度发达地区的防渗百分比。该研究结果为使用中等分辨率遥感数据选择%ISA估算技术提供了指导,并提供了进一步改进方法的信息。

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