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contributor authorLiu Xin;Song Yongze;Yi Wen;Wang Xiangyu;Zhu Junxiang
date accessioned2019-02-26T07:55:52Z
date available2019-02-26T07:55:52Z
date issued2018
identifier other%28ASCE%29CO.1943-7862.0001495.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4250351
description abstractThe improvement of construction productivity has always been a key concern for both researchers and project managers. Several studies have analyzed construction productivity from different perspectives; however, little research has been conducted to evaluate the impact of outdoor ambient environmental factors on construction productivity, especially at the project level. Therefore, to assess such impacts, a nonparametric regression model—the generalized additive model (GAM)—and a nonlinear machine learning model—random forest (RF)—are comparatively used to assess these contributors on the scaffolding construction performance factor (PF). The meteorological variables used in this study include temperature, humidity, ambient pressure, wind speed and wind direction, specific weather event (clear day, fog, rain, or thunderstorm), and the ultraviolet (UV) index. Results demonstrate that the joint meteorological factors play a key role in construction PF variation, with contribution ranging from 32.5% (GAM) to 59.41% (RF). The better performance of RF and GAM shows that the relationship between outdoor ambient environment and construction productivity is nonlinear and should be built by nonlinear models.
publisherAmerican Society of Civil Engineers
titleComparing the Random Forest with the Generalized Additive Model to Evaluate the Impacts of Outdoor Ambient Environmental Factors on Scaffolding Construction Productivity
typeJournal Paper
journal volume144
journal issue6
journal titleJournal of Construction Engineering and Management
identifier doi10.1061/(ASCE)CO.1943-7862.0001495
page4018037
treeJournal of Construction Engineering and Management:;2018:;Volume ( 144 ):;issue: 006
contenttypeFulltext


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