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Estimation of a preference map of new consumers for spatial load forecasting simulation methods using a spatial analysis of points

机译:使用点的空间分析为空间负荷预测模拟方法估算新消费者的偏好图

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The paper presents a spatial analysis of points especially suited to estimate a preference map for new consumers, which is then used as an analytical tool in spatial electric load forecasting. This approach is an exploratory spatial data analysis used to discover useful point patterns in the spatial location of distribution transformers to calculate a preference value for each area, rating it with respect to a hypothetical load change that may occur. We consider the locations of distribution transformers occupied land. Random points are generated in the study area where the new loads are expected; these points are referred to as unoccupied land. The method uses a generalized additive model (GAM) to estimate the probability of unoccupied land becoming occupied land. We test the approach with data from a real distribution system in a mid-size city in Brazil; the result is a preference map that shows the areas where new consumers are most likely to be allocated. The main advantage of this method is the ability work with a small-scale resolution, which enables the use of a resolution suitable for spatial load forecasting method chosen. We test the calculated probabilities in a spatial load forecasting simulation, yielding results with lower spatial error when compared with the heuristic technique.
机译:本文介绍了对点的空间分析,这些点特别适合于估算新消费者的偏好图,然后将其用作空间电负荷预测的分析工具。这种方法是一种探索性空间数据分析,用于发现配电变压器的空间位置中的有用点模式,以计算每个区域的偏好值,并针对可能发生的假设负载变化对其进行评级。我们考虑配电变压器所占的位置。研究区域中将产生预期新载荷的随机点;这些点称为空地。该方法使用广义加性模型(GAM)来估计未占用土地成为占用土地的可能性。我们使用来自巴西中型城市的实际分销系统中的数据测试了该方法;结果是一个偏好图,该图显示了最有可能分配新消费者的区域。这种方法的主要优点是能够以小规模的分辨率工作,从而可以使用适合于所选空间负荷预测方法的分辨率。我们在空间负荷预测模拟中测试计算出的概率,与启发式技术相比,产生的结果具有较低的空间误差。

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