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A systematic approach to model the influence of the type and density of vegetation cover on urban heat using remote sensing

机译:利用遥感建立植被覆盖类型和密度对城市热影响的系统方法

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Cities around the world are pursuing increasing green or vegetation cover as a way of managing heat whilst improving beauty, biodiversity and recreational value. However, the pattern of the relationship between vegetation cover and urban temperature can be masked, controlled or exaggerated by vegetation structure, topography and other climate variables. This study examines the relationship between Sydney's urban surface temperature and vegetation cover as defined by two vegetation indices; mixed vegetation cover and tree cover exclusively. The shape of this relationship and relative influence of confounding factors are explored using penalised-likelihood criteria ranked regressions. Overall, increasing tree cover reduces average surface temperatures more dramatically than mixed vegetation cover. This study demonstrates that the extent of influence of greencover on surface temperatures is more accurately defined by identifying and incorporating site specific factors that confound the influence. Best predictor models are significantly improved when the influences of elevation, coastal effects and urban structure are added. Therefore, heat reducing urban greening strategies will be improved if based on local variables and conditions. (C) 2014 Elsevier B.V. All rights reserved
机译:世界各地的城市都在寻求增加绿色或植被覆盖的方法,以作为一种在改善美感,生物多样性和娱乐价值的同时管理热量的方式。但是,植被结构,地形和其他气候变量可以掩盖,控制或夸大植被覆盖率与城市温度之间关系的模式。这项研究考察了悉尼的城市表面温度与植被覆盖率之间的关系,该关系由两个植被指数定义;仅混合植被和树木。这种关系的形状和混杂因素的相对影响使用刑罚似然标准排名回归进行了探讨。总体而言,增加树木覆盖率比混合植被覆盖率能显着降低平均地表温度。这项研究表明,通过识别并结合混淆该影响的特定地点因素,可以更准确地定义植被对表面温度的影响程度。当添加海拔,海岸效应和城市结构的影响时,最佳预测器模型将得到显着改善。因此,如果根据当地变量和条件,减少热量的城市绿化策略将得到改善。 (C)2014 Elsevier B.V.保留所有权利

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