Buying random yet correlated wind power

Wenyuan Tang, R. Jain
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引用次数: 3

Abstract

We consider an auction design problem, where an aggregator procures wind power from multiple wind farms. While the realized generation of each wind farm is random, the probability distribution can be learned beforehand as its private information. Since the wind farms are geographically close, the distributions are possibly correlated. We formulate a unified optimization problem to study both the welfare-maximizing and the revenue-maximizing objectives. We show that the aggregator may extract the full surplus by exploiting the correlation among the distributions. We also illustrate, through a numerical example, the case where full surplus extraction is not achievable.
购买随机但相关的风能
我们考虑一个拍卖设计问题,其中聚合器从多个风力发电场获取风力。虽然每个风电场的可实现发电量是随机的,但其概率分布可以作为其私有信息事先获知。由于风力发电场在地理上很近,所以分布可能是相关的。我们制定了一个统一的优化问题来研究福利最大化和收入最大化的目标。我们证明了聚合器可以通过利用分布之间的相关性来提取全部剩余。我们还通过一个数值例子说明了不能实现完全剩余提取的情况。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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