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As-built data acquisition for vision-based construction progress monitoring: A qualitative evaluation of factors.

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dc.contributor.author Reja, VK
dc.contributor.author Varghese, K
dc.contributor.author Ha, QP
dc.contributor.editor Sandanayake, YG
dc.contributor.editor Gunatilake, S
dc.contributor.editor Waidyasekara, KGAS
dc.date.accessioned 2022-12-29T07:42:41Z
dc.date.available 2022-12-29T07:42:41Z
dc.date.issued 2022-06-24
dc.identifier.uri http://dl.lib.uom.lk/handle/123/19962
dc.description.abstract The accuracy of computer vision-based progress monitoring of construction projects depends on the quality of data acquired. The data acquisition can be conducted through different vision-based sensors combined with several options for sensor mounting. Several factors affect this combination and considering these factors in selecting the acquisition technology and sensor mounting combination is critical for acquiring accurate vision-based data for the project. Currently, their definition and impact of these factors on the selection of these technologies are both subjective, and there are no formal studies to evaluate the impact. Hence, in this study, we first identify and define twelve key factors affecting data acquisition technology and eight factors affecting sensor mounting. Next, a questionnaire survey was designed, and responses from professionals were used to evaluate the Relative Importance Index (RII) for the individual factors for these technologies and methods. The obtained ratings were compared to the author's initial assessment, and the cause for a few variations obtained was justified. This study provides a clear assessment of these factors and forms a basis for selection based on the factors involved with the project requirements. en_US
dc.language.iso en en_US
dc.subject As-built modelling en_US
dc.subject Data Acquisition en_US
dc.subject Reality Capture en_US
dc.subject Scan-to-BIM en_US
dc.subject Technology Selection en_US
dc.title As-built data acquisition for vision-based construction progress monitoring: A qualitative evaluation of factors. en_US
dc.type Conference-Full-text en_US
dc.identifier.year 2022 en_US
dc.identifier.conference World Construction Symposium en_US
dc.identifier.place Sri Lanka en_US
dc.identifier.pgnos pp. 138-149. en_US
dc.identifier.proceeding 10th World Construction Symposium en_US
dc.identifier.email varunreja7@gmail.com en_US
dc.identifier.email quang.ha@uts.edu.au en_US
dc.identifier.email koshy@iitm.ac.in en_US
dc.identifier.doi https://doi.org/10.31705/WCS.2022.12. en_US


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  • WCS - 2022 [76]
    Proceedings of The 10th World Construction Symposium 2022

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