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Monitoring the Impact of Land Cover Change on Surface Urban Heat Island through Google Earth Engine: Proposal of a Global Methodology, First Applications and Problems

机译:通过谷歌地球发动机监测土地覆盖变化对地表城市热岛的影响:全球方法,第一次应用和问题的建议

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摘要

All over the world, the rapid urbanization process is challenging the sustainable development of our cities. In 2015, the United Nation highlighted in Goal 11 of the SDGs (Sustainable Development Goals) the importance to “Make cities inclusive, safe, resilient and sustainable”. In order to monitor progress regarding SDG 11, there is a need for proper indicators, representing different aspects of city conditions, obviously including the Land Cover (LC) changes and the urban climate with its most distinct feature, the Urban Heat Island (UHI). One of the aspects of UHI is the Surface Urban Heat Island (SUHI), which has been investigated through airborne and satellite remote sensing over many years. The purpose of this work is to show the present potential of Google Earth Engine (GEE) to process the huge and continuously increasing free satellite Earth Observation (EO) Big Data for long-term and wide spatio-temporal monitoring of SUHI and its connection with LC changes. A large-scale spatio-temporal procedure was implemented under GEE, also benefiting from the already established Climate Engine (CE) tool to extract the Land Surface Temperature (LST) from Landsat imagery and the simple indicator Detrended Rate Matrix was introduced to globally represent the net effect of LC changes on SUHI. The implemented procedure was successfully applied to six metropolitan areas in the U.S., and a general increasing of SUHI due to urban growth was clearly highlighted. As a matter of fact, GEE indeed allowed us to process more than 6000 Landsat images acquired over the period 1992–2011, performing a long-term and wide spatio-temporal study on SUHI vs. LC change monitoring. The present feasibility of the proposed procedure and the encouraging obtained results, although preliminary and requiring further investigations (calibration problems related to LST determination from Landsat imagery were evidenced), pave the way for a possible global service on SUHI monitoring, able to supply valuable indications to address an increasingly sustainable urban planning of our cities.
机译:全世界遍布全球,快速城市化进程挑战了我们城市的可持续发展。 2015年,联合国的目标是在SDGS(可持续发展目标)的目标11中强调“使城市包容,安全,弹性和可持续发展”的重要性。为了监测有关SDG 11的进展,需要适当指标,代表城市条件的不同方面,显然包括土地覆盖(LC)变化和城市气候与其最鲜明的特色,城市热岛(UHI) 。 UHI的一个方面是表面城市热岛(苏海),已经通过多年来通过空中和卫星遥感进行了研究。这项工作的目的是展示谷歌地球发动机(GEE)的目前的潜力,以处理巨大而不断增加的免费卫星地球观测(EO)大数据,以实现苏智的长期和广泛的时空监测及其连接LC变化。在GEE下实施了大规模的时空程序,也从已经建立的气候发动机(CE)工具中得到了从Landsat意象提取的土地表面温度(LST),简单的指标下降率矩阵被引入全球代表LC变化对苏海的净效应。已实施的程序已成功应用于美国的六个大都市地区,并且明显突出了城市增长导致的苏海的普遍增加。事实上,吉河确实允许我们处理1992 - 2011年期间收购的6000多种山顶图像,对Suhi与LC变更监测进行了长期和广泛的时空研究。提出的程序和令人鼓舞的成果的目前可行性虽然初步和需要进一步调查(与Landsat Imagery的LST确定相关的校准问题被证明),但为苏海监测的可能全球服务铺平了道路,能够提供有价值的指示解决我们城市日益上可持续的城市规划。

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