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Identifying key variables and interactions in statistical models of building energy consumption using regularization

机译:使用正则化识别建筑能耗统计模型中的关键变量和相互作用

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摘要

Statistical models can only be as good as the data put into them. Data about energy consumption continues to grow, particularly its non-technical aspects, but these variables are often interpreted differently among disciplines, datasets, and contexts. Selecting key variables and interactions is therefore an important step in achieving more accurate predictions, better interpretation, and identification of key subgroups for further analysis.
机译:统计模型只能与放入其中的数据一样好。有关能耗的数据一直在增长,特别是非技术方面的数据,但是这些变量在学科,数据集和环境之间的解释常常不同。因此,选择关键变量和相互作用是实现更准确的预测,更好的解释以及确定关键子组以进行进一步分析的重要步骤。

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