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Urban Heat Island Monitoring And Analysis Using A Non-parametric Model: A Case Study Of Indianapolis

机译:基于非参数模型的城市热岛监测与分析:以印第安纳波利斯为例

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A procedure for the monitoring an urban heat island (UHI) was developed and tested over a selected location in the Midwestern United States. Nine counties in central Indiana were selected and their UHI patterns were modeled. Moderate Resolution Imaging Spectroradiometer (MODIS) land surface temperature (LST) images taken in 2005 were used for the research. The images were sorted based on cloud cover over the study area. The resulting 94 day and night images were used for the modeling. The technique of process convolution was then applied to the images in order to characterize the UHIs. This process helped to characterize the LST data into a continuous surface and the UHI data into a series of Gaussian functions. The diurnal temperature profiles and UHI intensity attributes (minimum, maximum and magnitude) of the characterized images were analyzed for variations. Skin temperatures within any given image varied between 2-15 ℃ and 2-8 ℃ for the day and night images, respectively. The magnitude of the UHI varied from 1-5 ℃ and 1-3 ℃ over the daytime and nighttime images, respectively. Three dimensional (3-D) models of the day and night images were generated and visually explored for patterns through animation. A strong and clearly evident UHI was identified extending north of Marion County well into Hamilton County. This information coincides with the development and expansion of northern Marion County during the past few years in contrast to the southern part. To further explore these results, an Advanced Spaceborne Thermal Emission and Reflection Radiometer (ASTER) 2004 land use land cover (LULC) dataset was analyzed with respect to the characterized UHI. The areas with maximum heat signatures were found to have a strong correlation with impervious surfaces. The entire process of information extraction was automated in order to facilitate the mining of UHI patterns at a global scale. This research has proved to be promising approach for the modeling and mining of UHIs from large amount of remote sensing images. Furthermore, this research also aids in 3-D diachronic analysis.
机译:开发了一种监视城市热岛(UHI)的程序,并在美国中西部的选定位置进行了测试。选择了印第安纳州中部的9个县,并对它们的UHI模式进行了建模。该研究使用了2005年拍摄的中分辨率成像光谱仪(MODIS)地表温度(LST)图像。根据研究区域的云量对图像进行分类。所得的94个昼夜图像用于建模。然后将过程卷积技术应用于图像以表征UHI。此过程有助于将LST数据表征为连续的表面,并将UHI数据表征为一系列的高斯函数。分析了特征图像的昼夜温度曲线和UHI强度属性(最小值,最大值和大小)的变化。在任何给定图像中,白天和夜间图像的皮肤温度分别在2-15℃和2-8℃之间变化。在白天和夜间,UHI的大小分别在1-5℃和1-3℃之间变化。生成了白天和夜晚图像的三维(3-D)模型,并通过动画在视觉上探索了图案。发现了一个强烈而明显的超高强度铀,从马里恩县北部一直延伸到汉密尔顿县。与南部地区相比,该信息与过去几年马里恩县北部的发展和扩张相吻合。为了进一步探索这些结果,针对特征化的UHI,分析了先进的星载热发射和反射辐射计(ASTER)2004土地使用土地覆盖(LULC)数据集。发现具有最大热特征的区域与不渗透表面具有很强的相关性。信息提取的整个过程是自动化的,以促进在全球范围内挖掘UHI模式。事实证明,这项研究是从大量遥感影像中对超高强度卫星进行建模和挖掘的有前途的方法。此外,这项研究还有助于进行3D历时分析。

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