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首页> 外文期刊>Trends in Ecology & Evolution >The Use of Extreme Value Theory for Forecasting Long-Term Substation Maximum Electricity Demand
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The Use of Extreme Value Theory for Forecasting Long-Term Substation Maximum Electricity Demand

机译:使用极值理论预测长期变电站的最大电力需求

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摘要

Substation annual maximum electricity demand events are extreme, as customers respond to infrequent and extreme weather. Despite the extreme nature of annual maximum demand, the statistical theory of extreme values has only rarely, if ever, been applied. To support long-term planning, utilities typically complete energy consumption and maximum demand forecasts, which are often conducted separately through two different process, leading to inconsistent trends and messages. To address these shortcomings, a point process approach from extreme value theory is proposed to model substation maximum demand as a function of trends in three common factors already required by utilities including customer count, average demand, and installed photovoltaic capacity. The point process model can be parameterized as a nonstationary generalized extreme value distribution with location and scale parameters dependent on the trends of these factors. As the generalized extreme value distribution governs the behaviors of block maxima (annual maximum demand) with forecast trends of three common factors, substation maximum demand can be estimated as per quantiles required by planning standards. Therefore, the proposed approach is not only realistic and flexible to forecast maximum demand but also ensures consistent outcomes and messaging between the two outputs from energy consumption and maximum demand forecasts.
机译:变电站年度最大电力需求事件是极端的,因为客户应对罕见和极端的天气。尽管年度最大需求的极端性质,但如果有的话,极端价值的统计理论很少被应用。为了支持长期规划,公用事业公司通常完全完成能耗和最大需求预测,这些预测通常通过两个不同的过程进行分别进行,导致趋势和信息不一致。为解决这些缺点,提出了一种极值理论的点过程方法,以模拟变电站的最大需求,作为公用事业,平均需求和安装光伏容量的三个普遍因素中的三种普遍因素的趋势。点流程模型可以参数化,作为非间断的广义极值分布,其位置和比例参数取决于这些因素的趋势。随着广义极值分布控制块最大值的行为(年度最大需求)与预测三个常见因素的预测趋势,可以根据规划标准所需的量级估算变电站最大需求。因此,拟议的方法不仅可以预测最大需求,而且确保两种输出之间的一致结果和消息传递,以及从能量消耗和最大需求预测之间的一致结果和消息。

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