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Variable Importance Analysis for Urban Building Energy Assessment in the Presence of Correlated Factors

机译:存在相关因素的城市建筑节能评价的变量重要性分析

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It is becoming urgent to thoroughly understand characteristics of energy use in order to reduce energy use in urban areas.When assessing energy performance in urban buildings,it is likely that explanatory variables are correlated if considering both physical conditions and social economic factors.This research applied three variable importance methods,including Genizi,CAR (Correlation-Adjusted marginal correlation),PCC (partial correlation coefficient),to identify key factors from 30 highly correlated variables in London.The results indicate that the land area for domestic buildings is the only dominant variable influencing gas use,while electricity consumption is more affected by the number of electricity meters for Economy 7 (a differential electricity tariff according to the time of day) and the number of households allocated to higher council tax band in London.Moreover,it is confirmed that the SRC (standardized regression coefficient),a commonly used method in building energy analysis,is not suitable for the correlated factors in urban energy assessment.
机译:为了减少城市地区的能源使用,彻底了解能源使用的特性变得迫在眉睫。在评估城市建筑的能源性能时,如果同时考虑物理条件和社会经济因素,说明变量很可能是相关的。通过Genizi,CAR(相关调整的边际相关性),PCC(偏相关系数)这三种变量重要性方法,从伦敦的30个高度相关变量中识别关键因素。结果表明,住宅建筑用地是唯一的优势影响瓦斯使用的变量,而用电量受经济7的电表数量(根据一天中的时间的不同而不同)和伦敦分配给较高议会税阶的家庭数量的影响更大。确认SRC(标准化回归系数)是建筑能量肛门的常用方法ysis,不适合城市能源评估中的相关因素。

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