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首页> 外文期刊>Energy economics >Stochastic semi-nonparametric frontier estimation of electricity distribution networks: Application of the StoNED method in the Finnish regulatory model
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Stochastic semi-nonparametric frontier estimation of electricity distribution networks: Application of the StoNED method in the Finnish regulatory model

机译:配电网络的随机半非参数边界估计:StoNED方法在芬兰监管模型中的应用

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摘要

Electricity distribution network is a prime example of a natural local monopoly. In many countries, electricity distribution is regulated by the government. Many regulators apply frontier estimation techniques such as data envelopment analysis (DEA) or stochastic frontier analysis (SFA) as an integral part of their regulatory framework. While more advanced methods that combine nonparametric frontier with stochastic error term are known in the literature, in practice, regulators continue to apply simplistic methods. This paper reports the main results of the project commissioned by the Finnish regulator for further development of the cost frontier estimation in their regulatory framework. The key objectives of the project were to integrate a stochastic SFA-style noise term to the nonparametric, axiomatic DEA-style cost frontier, and to take the heterogeneity of firms and their operating environments better into account. To achieve these objectives, a new method called stochastic nonparametric envelopment of data (StoNED) was examined. Based on the insights and experiences gained in the empirical analysis using the real data of the regulated networks, the Finnish regulator adopted the StoNED method in use from 2012 onwards.
机译:配电网络是当地自然垄断的典型例子。在许多国家/地区,电力分配受政府监管。许多监管机构将前沿估计技术(例如数据包络分析(DEA)或随机前沿分析(SFA))用作其监管框架的组成部分。虽然在文献中将非参数边界与随机误差项结合在一起的更先进的方法是已知的,但实际上,监管机构仍在继续采用简化的方法。本文报告了芬兰监管机构委托开展的项目的主要成果,该项目的结果是在其监管框架内进一步发展成本前沿估算。该项目的主要目标是将随机SFA风格的噪声术语与非参数公理DEA风格的成本边界相集成,并更好地考虑企业及其运营环境的异质性。为了实现这些目标,研究了一种称为数据的随机非参数包络(StoNED)的新方法。基于使用受监管网络的真实数据进行的实证分析中获得的见识和经验,芬兰监管机构采用了从2012年开始使用的StoNED方法。

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