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Feature Selection for Thermal Comfort Modeling based on Constrained LASSO Regression

机译:基于约束套索回归的热舒适建模特征选择

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Thermal comfort is influenced by many factors and can vary significantly between different individuals. Therefore, modeling personal thermal comfort is a complex challenge and requires a detailed knowledge about environmental as well as physical or even mental conditions of an occupant. However, only limited data are available which is usually restricted to environmental measurements. Furthermore in the context of commercial buildings, the calculation effort must be kept as low as possible that scaling issues related to the large number of occupants are reduced. To cope with this problem, the presented paper analyzes thermal sensation voting data collected in an open-plan office in Singapore and uses LASSO regression techniques for the identification of the most important comfort features. Well known relations between thermal comfort and the corresponding vote are considered via suitable constraints. To define a common set of optimal features, the individual regression problem is extended to an arbitrary number of occupants. This leads to multiple LASSO optimization problems that are coupled by nonlinear if-statements. A reformulation method is presented which results in a mixed integer quadratic program by introducing binary activation variables. Eventually, the method is applied to comfort modeling and the resulting model structures are compared regarding their complexity, number of selected features and prediction accuracy.
机译:热舒适性受多种因素的影响,可以在不同的个体之间的显著变化。因此,造型个人的热舒适性是一个复杂的挑战,需要对乘员的环境以及物理或甚至精神状况有详细的了解。然而,只有有限的数据是可用的,通常仅限于环境测量。此外,在商业建筑的背景下,计算工作必须保持尽可能低,这涉及到大量的居住者的比例问题减少。为了解决这个问题,所提出的分析在新加坡一间开放式办公室回收的热感觉投票数据,并使用套索回归技术的最重要的舒适性特征的识别。热舒适性和相应的投票之间众所周知的关系,通过适当的约束条件考虑。要定义一组通用的最佳特征,单独的回归问题被扩展为乘员的任意数量。这导致了多个LASSO优化问题由非线性if语句结合。甲再形成方法是通过引入二进制活化变量呈现在混合整数二次程序,其结果。最终,该方法被应用到的舒适度建模和关于它们的复杂性,所选择的特征和预测精度数进行比较所得到的模型结构。

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