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Cost Efficiency Analysis of Electricity Distribution Sector under Model Uncertainty

机译:模型不确定性下配电部门的成本效率分析

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This paper discusses a Bayesian approach to analyzing cost efficiency of Distribution System Operators when model specification and variable selection are difficult to determine. Bayesian model selection and inference pooling techniques are adopted in a stochastic frontier analysis to mitigate the problem of model uncertainty. Adequacy of a given specification is judged by its posterior probability, which makes the benchmarking process not only more transparent but also much more objective. The proposed methodology is applied to one of Polish Distribution System Operators. We find that variable selection plays an important role and models, which are the best at describing the data, are rather parsimonious. They rely on just a few variables determining the observed cost. However, these models also show relatively high average efficiency scores among analyzed objects.
机译:当模型规格和变量选择难以确定时,本文讨论一种贝叶斯方法来分析配电系统运营商的成本效率。在随机前沿分析中采用贝叶斯模型选择和推理池技术来减轻模型不确定性的问题。给定规范的适当性由其后验概率来判断,这使基准化过程不仅更加透明,而且更加客观。拟议的方法适用于波兰分销系统运营商之一。我们发现变量选择起着重要的作用,而最能描述数据的模型则相当简洁。他们仅依赖于确定观察成本的一些变量。但是,这些模型还显示了分析对象之间相对较高的平均效率得分。

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