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Evaluating Population Forecast Accuracy: A Regression Approach Using County Data

机译:评估人口预测准确性:使用县数据的回归方法

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摘要

Many studies have evaluated the impact of differences in population size and growth rate on population forecast accuracy. Virtually all these studies have been based on aggregate data; that is, they focused on average errors for places with particular size or growth rate characteristics. In this study, we take a different approach by investigating forecast accuracy using regression models based on data for individual places. Using decennial census data from 1900 to 2000 for 2,482 counties in the US, we construct a large number of county population forecasts and calculate forecast errors for 10- and 20-year horizons. Then, we develop and evaluate several alternative functional forms of regression models relating population size and growth rate to forecast accuracy; investigate the impact of adding several other explanatory variables; and estimate the relative contributions of each variable to the discriminatory power of the models. Our results confirm several findings reported in previous studies but uncover several new findings as well. We believe regression models based on data for individual places provide powerful but under-utilized tools for investigating the determinants of population forecast accuracy.
机译:许多研究评估了人口规模和增长率差异对人口预测准确性的影响。实际上,所有这些研究都基于汇总数据。也就是说,他们专注于具有特定大小或增长率特征的地方的平均误差。在本研究中,我们通过使用基于各个地点数据的回归模型调查预测准确性来采用不同的方法。利用1900年至2000年美国2482个县的十年人口普查数据,我们构建了大量的县人口预测并计算10年和20年范围的预测误差。然后,我们开发并评估将人口规模和增长率与预测准确性相关的回归模型的几种替代功能形式;研究添加其他几个解释变量的影响;并估计每个变量对模型的鉴别能力的相对贡献。我们的结果证实了先前研究中报道的一些发现,但也发现了一些新发现。我们认为,基于各个地点数据的回归模型为调查人口预测准确性的决定因素提供了功能强大但未充分利用的工具。

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