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STOCHASTIC ERROR SPECIFICATION IN PRIMAL AND DUAL PRODUCTION SYSTEMS

机译:原始生产和双重生产系统中的随机误差规范

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摘要

In this paper we derive both primal and dual-cost systems in which the stochastic specifications arise from the model (random environment or measurement errors and optimization errors)-not tacked on at the end after the deterministic system is worked out. Derivation of the error structures is based on cost-minimizing behavior on the firms. The primal systems constitute the production function and the first-order conditions of cost minimization. We consider two dual-cost systems. The first dual system is based on the cost function and cost share equations. The second dual system is based on a multiplicative general error production model that is an alternative to McElroy's additive general error production model. Our multiplicative general error model gives a clear and intuitive economic meaning to the error components. The resulting cost system is easy to estimate compared to the alternative cost systems. The error components in the multiplicative general error model can capture heterogeneity in the technology parameters even in a cross-sectional model. Panel data are not necessary to estimate either the primal or dual systems. The models are estimated using data on 72 fossil fuel-fired steam electric power generation plants (observed for the period 1986-1999) in the USA.
机译:在本文中,我们导出了原始成本和双重成本系统,在该系统中,随机指标是由模型(随机环境或测量误差和优化误差)引起的,而最终确定性系统确定后,这种随机性指标就不再适用。误差结构的推导是基于企业的成本最小化行为。原始系统构成了生产功能和成本最小化的一阶条件。我们考虑两个双重成本系统。第一个对偶系统基于成本函数和成本份额方程式。第二个对偶系统基于乘性通用误差产生模型,该模型是McElroy的加性通用误差产生模型的替代方案。我们的乘法一般误差模型为误差分量提供了清晰直观的经济意义。与替代成本系统相比,由此产生的成本系统易于估算。乘法通用误差模型中的误差成分即使在横截面模型中也可以捕获技术参数中的异质性。面板数据对于估计原始系统或对偶系统不是必需的。这些模型是根据美国72家使用化石燃料的蒸汽发电厂(1986年至1999年观察到)的数据估算的。

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  • 来源
    《Journal of applied econometrics》 |2011年第2期|p.270-297|共28页
  • 作者单位

    Department of Economics, State University of New York, Binghamton, NY 13902, USA;

    Department of Economics, Athens University of Economics and Business, Athens, Greece;

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