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首页> 外文期刊>Journal of the American Water Resources Association >THE REGIONALIZATION OF NATIONAL-SCALESPARROW MODELS FOR STREAM NUTRIENTS
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THE REGIONALIZATION OF NATIONAL-SCALESPARROW MODELS FOR STREAM NUTRIENTS

机译:养分流域国家稀疏稀疏模型的区域化

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摘要

This analysis modifies the parsimonious specification of recently published total nitrogen (TN) and total phosphorus (TP) national-scale SPAtially Referenced Regressions On Watershed attributes models to allow each model coefficient to vary geographically among three major river basins of the conterminous United States. Regionalization of the national models reduces the standard errors in the prediction of TN and TP loads, expressed as a percentage of the predicted load, by about 6 and 7%. We develop and apply a method for combining national-scale and regional-scale information to estimate a hybrid model that imposes cross-region constraints that limit regional variation in model coefficients, effectively reducing the number of free model parameters as compared to a collection of independent regional models. The hybrid TN and TP regional models have improved model fit relative to the respective national models, reducing the standard error in the prediction of loads, expressed as a percentage of load, by about 5 and 4%. Only 19% of the TN hybrid model coefficients and just 2% of the TP hybrid model coefficients show evidence of substantial regional specificity (more than ±100% deviation from the national model estimate). The hybrid models have much greater precision in the estimated coefficients than do the unconstrained regional models, demonstrating the efficacy of pooling information across regions to improve regional models.
机译:该分析修改了最近发布的国家尺度的总氮(TN)和总磷(TP)的空间分域空间参考回归属性模型的简化规范,以允许每个模型系数在美国本土三个主要流域之间在地理上发生变化。国家模型的区域化将TN和TP负荷预测中的标准误差(表示为预测负荷的百分比)降低了约6%和7%。我们开发并应用了一种方法,用于结合国家尺度和区域尺度的信息来估计一个混合模型,该模型施加了跨区域约束,从而限制了模型系数的区域变化,与独立模型的集合相比,有效地减少了自由模型参数的数量区域模型。 TN和TP混合区域模型相对于各自的国家模型,具有更高的模型拟合度,将负荷预测中的标准误差(以负荷百分比表示)降低了约5%和4%。 TN混合模型系数中只有19%,TP混合模型系数中只有2%显示出明显的区域特异性(与国家模型估计值相差超过±100%)。混合模型比无约束区域模型具有更高的估计系数精度,证明了跨区域汇总信息以改进区域模型的有效性。

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