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The Costs of Privacy in Local Energy Markets

机译:本地能源市场的隐私成本

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Many renewable sources for electricity generation are distributed and volatile by nature, and become inefficient and difficult to coordinate with traditional power transmission paths. As a part of the transition from fossil fuel to renewable sources, local energy markets allow an efficient allocation and distribution of energy from local sources to nearby households. When using a discrete time double auction model, bids in such markets reflect the supply and demand of energy. However, since the energy demand of a household contains personal information, such markets are not in line with privacy legislation. In this paper, we investigate the influence of anonymization methods on local energy markets. In particular, we anonymize the bids of the order book, and we compare the CO2 emissions and the expenses of market participants of this allocation with a non-anonymous one. We have modeled the flows of personal data for a local energy auction platform, and we have developed a model for the supply and demand of electricity of a small town in the near future. Our experiments show that with elementary anonymization methods, the impact of anonymization on the costs and on the CO2 emissions is small.
机译:本质上,许多用于发电的可再生资源是分散的和易挥发的,并且效率低下并且难以与传统的电力传输路径协调。作为从化石燃料向可再生能源过渡的一部分,本地能源市场允许从本地能源到附近家庭的有效能源分配和分配。使用离散时间两次拍卖模型时,此类市场中的出价反映了能源的供求关系。但是,由于家庭的能源需求包含个人信息,因此此类市场与隐私法规不符。在本文中,我们研究了匿名化方法对本地能源市场的影响。特别是,我们将订单书的出价匿名化,并将此分配的二氧化碳排放量和市场参与者的费用与一个非匿名的进行比较。我们为本地能源拍卖平台的个人数据流建模,并为不久的将来开发了一个小镇的电力供需模型。我们的实验表明,使用基本匿名方法,匿名对成本和CO2排放的影响很小。

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