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Nonparametric Estimation of Production Functions

机译:生产函数的非参数估计

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摘要

While the primary use of data envelopment analysis is the estimation of production frontiers and the subsequent measurement of efficiency, a more recent literature has been concerned with the estimation of production functions that allow observed points beyond the frontier. This could arise with noisy data for example. Banker and Maindiratta (1992) provided a foundation by extending DEA to estimate efficiency in the presence of statistical noise. The programming model estimates the frontier via maximum likelihood while constraining the production set to be convex by imposing the celebrated Afriat conditions. Since then, there have been several alternative models that have been developed. In this paper we apply several competing methodologies to estimate production functions using data from the English Premier League from 2009 to 2010.
机译:尽管数据包络分析的主要用途是估计生产前沿和随后进行的效率测量,但最近的文献关注的是生产函数的估算,该功能允许观察点超出前沿。例如,这可能出现在嘈杂的数据中。 Banker和Maindiratta(1992)通过扩展DEA来估计存在统计噪声时的效率提供了基础。编程模型通过最大似然估计边界,同时通过施加著名的Afriat条件将生产集约束为凸面。从那时起,已经开发了几种替代模型。在本文中,我们使用了几种竞争方法来使用2009至2010年英超联赛的数据估算生产功能。

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