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首页> 外文期刊>IET Cyber-Physical Systems: Theory & Applications >Smart building uncertainty analysis via adaptive Lasso
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Smart building uncertainty analysis via adaptive Lasso

机译:通过自适应套索进行智能建筑不确定性分析

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Uncertainty analysis plays a pivotal role in identifying the important parameters affecting building energy consumption and estimate their effects at the early design stages. In this work, we consider the adaptive Lasso for uncertainty analysis in building performance simulation. This procedure has several appealing features: (1) We can introduce a large number of possible physical and environmental parameters at the initial stage to obtain a more complete picture of the building energy consumption. (2) The procedure could automatically select parameters and estimate influences simultaneously and no prior knowledge is required. (3) Due to computational efficiency of the procedure, non-linear relationship between the building performance and the input parameters could be accommodated. (4) The proposed adaptive Lasso can use a small number of samples to achieve high modeling accuracy and further reduce the huge computational cost of running building energy simulation programs. Furthermore, we propose a stable algorithm to rank input parameters to better identify important input parameters that affect energy consumption. A case study shows the superior performance of the procedure compared with LS and OMP in terms of modeling accuracy and computational cost.
机译:不确定性分析在确定影响建筑物能耗的重要参数并在设计的早期阶段估计其影响方面起着关键作用。在这项工作中,我们考虑将自适应套索用于建筑性能模拟中的不确定性分析。该程序具有几个吸引人的功能:(1)在初始阶段,我们可以引入大量可能的物理和环境参数,以更全面地了解建筑能耗。 (2)该程序可以自动选择参数并同时估计影响,并且不需要先验知识。 (3)由于该程序的计算效率,可以适应建筑物性能和输入参数之间的非线性关系。 (4)提出的自适应套索可以使用少量样本来实现较高的建模精度,并进一步降低运行建筑能耗模拟程序的巨大计算成本。此外,我们提出了一种稳定的算法来对输入参数进行排名,以更好地识别影响能耗的重要输入参数。案例研究表明,与LS和OMP相比,该程序在建模精度和计算成本方面具有优越的性能。

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