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首页> 外文期刊>British Journal of Economics, Management & Trade >Semiparametric Stochastic Frontier Estimation Using Generalized Additive Models
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Semiparametric Stochastic Frontier Estimation Using Generalized Additive Models

机译:广义可加模型的半参数随机边界估计

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This article specified a semiparametric stochastic frontier function using generalized additive models that accounts for random noise in the sample data. We estimated the parameters of the model by applying the generalized spline-smoothing approach to measure technical efficiency scores of Wisconsin dairy producers between 1993 and 1998. Results showed that the sample dairy producers did not use resources efficiently, as the estimated mean technical efficiency score was found to be 0.778. Unlike precedent studies, we found no correlation between the estimated technical efficiency scores and four farm-specific characteristics, such as operation type, milk system, barn type, and milk frequency.
机译:本文使用广义加性模型指定了半参数随机边界函数,该模型考虑了样本数据中的随机噪声。我们通过应用广义样条平滑方法来衡量威斯康星州乳制品生产商在1993年至1998年之间的技术效率评分,从而估算了模型的参数。结果表明,样本乳制品生产商并未有效利用资源,因为估算的平均技术效率评分为发现为0.778。与先例研究不同,我们发现估算的技术效率得分与四个农场特定特征之间没有相关性,例如运营类型,牛奶系统,谷仓类型和牛奶频率。

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