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Characterizing fractional vegetation cover and land surface temperature based on sub-pixel fractional impervious surfaces from Landsat TM/ETM+

机译:基于Landsat TM / ETM +的亚像素不透水面表征植被覆盖度和土地表面温度

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摘要

Estimating the distribution of impervious surfaces and vegetation is important for analyzing urban landscapes and their thermal environment. The application of a crisp classification of land cover types to analyze urban landscape patterns and land surface temperature (LST) in land cover types to analyze urban landscape patterns and land surface temperature (LST) in detail presents a challenge, mainly due to the complex characteristics of urban landscapes. In this paper, sub-pixel percentage impervious surface area (ISA) and fractional vegetation cover (FVC) were extracted from bi-temporal TM/ETM+ data by linear spectral mixture analysis (LSMA). Their accuracy was assessed with proportional area estimates of impervious surface and vegetation extracted from high resolution data. A range approach was used to classify percentage ISA into different categories by setting thresholds of fractional values and these were compared for their LST patterns. For each ISA category, FVC, LST and percentage ISA were used to quantify the urban thermal characteristics of different developed areas in the city of Fuzhou, China. Urban LST scenarios in different seasons and ISA categories were simulated to analyze the seasonal variations and the impact of urban landscape pattern changes on the thermal environment. The results show that FVC and LST based on percentage ISA can be used to quantitatively analyse the process of urban expansion and its impacts on the spatial-temporal distribution patterns of the urban thermal environment. This analysis can support urban planning by providing knowledge on the climate adaptation potential of specific urban spatial patterns.
机译:估计不透水的表面和植被的分布对于分析城市景观及其热环境很重要。主要是由于复杂的特征,应用清晰的土地覆盖类型分类来分析城市景观模式和地表温度(LST)中的土地覆盖类型来详细分析城市景观模式和地表温度(LST)带来了挑战城市景观。本文通过线性光谱混合分析(LSMA)从双时相TM / ETM +数据中提取了亚像素不透水表面积(ISA)和部分植被覆盖度(FVC)。通过从高分辨率数据提取的不透水表面和植被的比例区域估计来评估其准确性。通过设置分数值的阈值,使用范围法将百分比ISA划分为不同类别,并将它们的LST模式进行比较。对于每种ISA类型,均使用FVC,LST和ISA百分比来量化中国福州市不同发达地区的城市热力特征。模拟了不同季节和ISA类别的城市LST情景,以分析季节变化以及城市景观格局变化对热环境的影响。结果表明,基于ISA的FVC和LST可用于定量分析城市扩张过程及其对城市热环境时空分布格局的影响。通过提供有关特定城市空间模式的气候适应潜力的知识,该分析可以支持城市规划。

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