Development of a Model for Predicting Probabilistic Life-Cycle Cost for the Early Stage of Public-Office Construction
Decisions made in the early stages of construction projects significantly influence the costs incurred in subsequent stages. Therefore, such decisions must be based on the life-cycle cost (LCC), which includes the maintenance, repair, and replacement (MRR) costs in addition to construction costs. Fu...
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doaj-de00de002b4540288315fb8854601d792020-11-25T01:50:28ZengMDPI AGSustainability2071-10502019-07-011114382810.3390/su11143828su11143828Development of a Model for Predicting Probabilistic Life-Cycle Cost for the Early Stage of Public-Office ConstructionZhengxun Jin0Jonghyeob Kim1Chang-taek Hyun2Sangwon Han3Department of Architectural Engineering, University of Seoul, Seoul 02504, KoreaResearch and Development Center, PMPgM Co., Ltd., Seoul 02504, KoreaDepartment of Architectural Engineering, University of Seoul, Seoul 02504, KoreaDepartment of Architectural Engineering, University of Seoul, Seoul 02504, KoreaDecisions made in the early stages of construction projects significantly influence the costs incurred in subsequent stages. Therefore, such decisions must be based on the life-cycle cost (LCC), which includes the maintenance, repair, and replacement (MRR) costs in addition to construction costs. Furthermore, as uncertainty is inherent during the early stages, it must be considered in making predictions of the LCC more probabilistic. This study proposes a probabilistic LCC prediction model developed by applying the Monte Carlo simulation (MCS) to an LCC prediction model based on case-based reasoning (CBR) to support the decision-making process in the early stages of construction projects. The model was developed in two phases: first, two LCC prediction models were constructed using CBR and multiple-regression analysis. Through k-fold validation, one model with superior prediction performance was selected; second, a probabilistic LCC model was developed by applying the MCS to the selected model. The probabilistic LCC prediction model proposed in this study can generate probabilistic prediction results that consider the uncertainty of information available at the early stages of a project. Thus, it can enhance reliability in actual situations and be more useful for clients who support both construction and MRR costs, such as those in the public sector.https://www.mdpi.com/2071-1050/11/14/3828cost predictionprobabilistic modelearly stagelife-cycle costcase-based reasoningMonte Carlo simulation |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Zhengxun Jin Jonghyeob Kim Chang-taek Hyun Sangwon Han |
spellingShingle |
Zhengxun Jin Jonghyeob Kim Chang-taek Hyun Sangwon Han Development of a Model for Predicting Probabilistic Life-Cycle Cost for the Early Stage of Public-Office Construction Sustainability cost prediction probabilistic model early stage life-cycle cost case-based reasoning Monte Carlo simulation |
author_facet |
Zhengxun Jin Jonghyeob Kim Chang-taek Hyun Sangwon Han |
author_sort |
Zhengxun Jin |
title |
Development of a Model for Predicting Probabilistic Life-Cycle Cost for the Early Stage of Public-Office Construction |
title_short |
Development of a Model for Predicting Probabilistic Life-Cycle Cost for the Early Stage of Public-Office Construction |
title_full |
Development of a Model for Predicting Probabilistic Life-Cycle Cost for the Early Stage of Public-Office Construction |
title_fullStr |
Development of a Model for Predicting Probabilistic Life-Cycle Cost for the Early Stage of Public-Office Construction |
title_full_unstemmed |
Development of a Model for Predicting Probabilistic Life-Cycle Cost for the Early Stage of Public-Office Construction |
title_sort |
development of a model for predicting probabilistic life-cycle cost for the early stage of public-office construction |
publisher |
MDPI AG |
series |
Sustainability |
issn |
2071-1050 |
publishDate |
2019-07-01 |
description |
Decisions made in the early stages of construction projects significantly influence the costs incurred in subsequent stages. Therefore, such decisions must be based on the life-cycle cost (LCC), which includes the maintenance, repair, and replacement (MRR) costs in addition to construction costs. Furthermore, as uncertainty is inherent during the early stages, it must be considered in making predictions of the LCC more probabilistic. This study proposes a probabilistic LCC prediction model developed by applying the Monte Carlo simulation (MCS) to an LCC prediction model based on case-based reasoning (CBR) to support the decision-making process in the early stages of construction projects. The model was developed in two phases: first, two LCC prediction models were constructed using CBR and multiple-regression analysis. Through k-fold validation, one model with superior prediction performance was selected; second, a probabilistic LCC model was developed by applying the MCS to the selected model. The probabilistic LCC prediction model proposed in this study can generate probabilistic prediction results that consider the uncertainty of information available at the early stages of a project. Thus, it can enhance reliability in actual situations and be more useful for clients who support both construction and MRR costs, such as those in the public sector. |
topic |
cost prediction probabilistic model early stage life-cycle cost case-based reasoning Monte Carlo simulation |
url |
https://www.mdpi.com/2071-1050/11/14/3828 |
work_keys_str_mv |
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