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A new approach to quantifying soil temperature responses to changing air temperature and snow cover

机译:一种量化土壤温度对变化的气温和积雪的响应的新方法

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摘要

Seasonal snow cover provides an effective insulating barrier, separating shallow soil (0.25 m) from direct localized meteorological conditions. The effectiveness of this barrier is evident in a lag in the soil temperature response to changing air temperature. The causal relationship between air and soil temperatures is largely because of the presence or absence of snow cover, and is frequently characterized using linear regression analysis. However, the magnitude of the dampening effect of snow cover on the temperature response in shallow soils is obscured in linear regressions. In this study the author used multiple linear regression (MLR) with dummy predictor variables to quantify the degree of dampening between air and shallow soil temperatures in the presence and absence of snow cover at four Greenland sites. The dummy variables defining snow cover conditions were z = 0 for the absence of snow and z = 1 for the presence of snow cover. The MLR was reduced to two simple linear equations that were analyzed relative to z = 0 and z = 1 to enable validation of the selected equations. Compared with ordinary linear regression of the datasets, the MLR analysis yielded stronger coefficients of multiple determination and less variation in the estimated regression variables.
机译:季节性积雪可提供有效的隔热屏障,将浅层土壤(0.25 m)与直接局部气象条件分隔开。在土壤温度对空气温度变化的响应滞后的情况下,这种屏障的有效性显而易见。空气和土壤温度之间的因果关系主要是由于是否存在积雪,并且经常使用线性回归分析来表征。但是,在线性回归中模糊了积雪对浅层土壤温度响应的阻尼作用大小。在这项研究中,作者使用带有虚拟预测变量的多元线性回归(MLR)来量化在四个格陵兰岛有无积雪的情况下空气与浅层土壤温度之间的衰减程度。定义积雪条件的虚拟变量对于不存在积雪为z = 0,对于存在积雪为z = 1。 MLR简化为两个简单的线性方程,相对于z = 0和z = 1进行了分析,以验证所选方程。与数据集的普通线性回归相比,MLR分析得出的多重确定系数更强,而估计回归变量的变化较小。

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