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How to visualize the Urban Heat Island in Gridded Datasets?

机译:如何在网格数据集中可视化城市热岛?

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摘要

The Urban Heat Island (UHI) describes the increase of near surface temperatures within an urban area compared to its rural surrounding. While the concept of the UHI is in itself quite simple, it is more complex to apply it to gridded datasets. The main complication lies in the rural baseline definition. Therefore, we propose three approaches to calculate the spatial UHI representation for gridded datasets from (i) a single point baseline, (ii) an area averaged baseline, and (iii) a nearest neighbor-based baseline field. Based on these approaches, seven methods are tested as an example for a case study utilizing model simulations for three metropolitan areas in Central and Western Europe (Berlin, Paris and Rhine-Ruhr Metropolitan Area). The results show that all methods perform reasonable in absence of complex terrain, biases and large scale temperature gradients. However, with at least one of these features present, the UHI visualization is less prominent or nonexistent, except for the nearest-neighbor approach which consistently shows reasonable spatial characteristics of the UHI across all scenarios.
机译:与其农村周边相比,城市热岛(UHI)描述了城市地区内的近地表温度的增加。虽然UHI的概念本身非常简单,但将其应用于网格数据集是更复杂的。主要并发症在于农村基线定义。因此,我们提出了三种方法来计算来自(i)单点基线的网格数据集的空间UHI表示,(ii)区域平均基线,(iii)基于最近的基于邻居基线字段。基于这些方法,测试了七种方法作为用于中欧和西欧三个大都市区的模型模拟的案例研究的示例(柏林,巴黎和莱茵 - 鲁尔大都市区)。结果表明,所有方法都在没有复杂地形,偏差和大规模温度梯度的情况下进行合理。然而,除了存在这些特征中的至少一个,除了最接近的邻近方法之外,UHI可视化不太突出或不存在,这一致地显示所有场景的UHI的合理空间特征。

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