Thermal comfort
Revisiting individual and group differences in thermal comfort based on ASHRAE database." Energy and Buildings 219 (2020) 110017.
, , , , , , and . "Interactions and Comprehensive Effect of Indoor Environmental Quality Factors on Occupant Satisfaction." Building and Environment 167.01 (2020).
, , and . "Dimension analysis of subjective thermal comfort metrics based on ASHRAE Global Thermal Comfort Database using machine learning." Journal of Building Engineering 29 (2020) 101120.
, , , , , and . "Learning occupants’ indoor comfort temperature through a Bayesian inference approach for office buildings in United States." Renewable and Sustainable Energy Reviews 119 (2020) 109593.
, and . "The Squeaky wheel: Machine learning for anomaly detection in subjective thermal comfort votes." Building and Environment 151 (2019) 219–227.
, , , , and . "Energy-Efficient and Comfortable Buildings through Multivariate Integrated Control (ECoMIC). Andover, MA: Philips Electronics North America Corporation, 2013.
, , , and . High Performance Building Mockup in FLEXLAB. Berkeley, CA: Lawrence Berkeley National Laboratory, 2014.
, , , and . Ventilation, temperature, and HVAC characteristics in small and medium commercial buildings in California." Indoor Air 22.4 (2012) 309–320.
, , , , , , and . "Energy and Indoor Environmental Quality in Relocatable Classrooms." Indoor Air 2002, 9th International Conference on Indoor Air Quality and Climate. Vol. II. Monterey, CA, 2002. 62–69.
, , , , , , , , , , , , and . "Pagination
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