书目名称 | Forecasting and Assessing Risk of Individual Electricity Peaks | 编辑 | Maria Jacob,Cláudia Neves,Danica Vukadinović Greet | 视频video | | 概述 | Presents a self-contained theory and algorithms for individual energy load peak prediction.Implementations are available in Python in R.Uses case studies on publicly available data and has accessible | 丛书名称 | Mathematics of Planet Earth | 图书封面 |  | 描述 | .The overarching aim of this open access book is to present self-contained theory and algorithms for investigation and prediction of electric demand peaks. A cross-section of popular demand forecasting algorithms from statistics, machine learning and mathematics is presented, followed by extreme value theory techniques with examples..In order to achieve carbon targets, good forecasts of peaks are essential. For instance, shifting demand or charging battery depends on correct demand predictions in time. Majority of forecasting algorithms historically were focused on average load prediction. In order to model the peaks, methods from extreme value theory are applied. This allows us to study extremes without making any assumption on the central parts of demand distribution and to predict beyond the range of available data. . .While applied on individual loads, the techniques described in this book can be extended naturally to substations, or to commercial settings.Extreme value theory techniques presented can be also used across other disciplines, for example for predicting heavy rainfalls, wind speed, solar radiation and extreme weather events. The book is intended for students, acade | 出版日期 | Book‘‘‘‘‘‘‘‘ 2020 | 关键词 | 60G70, 05C85 , 62M10, 68T05; electricity forecasting; extreme value theory; scedasis; heteroscedasticity | 版次 | 1 | doi | https://doi.org/10.1007/978-3-030-28669-9 | isbn_softcover | 978-3-030-28668-2 | isbn_ebook | 978-3-030-28669-9Series ISSN 2524-4264 Series E-ISSN 2524-4272 | issn_series | 2524-4264 | copyright | The Editor(s) (if applicable) and The Author(s) 2020 |
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