Identyfikatory
Warianty tytułu
Języki publikacji
Abstrakty
Building Information Modeling (BIM) is the process of generating 3D models based on object databases. They are made for various types of buildings, sites and objects, and their task is to represent all the structural and architectural features of the object using parametric models. The BIM technology involves the preparation of the model that is already at the design stage of the building, in such a way that it is used during conceptual and implementation works, as well as during its final operation. However, a BIM model of existing objects can also be generated. Historic buildings are a special group of objects The HBIM (Heritage Building Information Modeling) model is used not only as an inventory of the object in its current state, but also as a background and a tool for visualising the object in its restored state, or as a source of information about the building itself for conservation, renovation and documentation purposes. Such a model can be created based on various types of source data. The basis for the development of the BIM model can be formed by data acquired during the inventory of the facility using surveying methods, laser scanning and photogrammetry. This paper presents the process of data acquisition of a historic object using the example of Lamus Dworski with the use of TLS and UAV. The study also includes the process of HBIM modeling of the object using point clouds as well as photographic documentation and data recorded in the monument card.
Słowa kluczowe
Czasopismo
Rocznik
Tom
Strony
23--34
Opis fizyczny
Bibliogr. 25 poz., fot., rys.
Twórcy
autor
- University of Agriculture in Krakow Department of Land Surveying ul. Balicka 253a, 30-198 Kraków
Bibliografia
- Abualdenien J., Borrmann A. 2021. Ensemble-learning approach for the classification of Levels of Geometry (LOG) of building elements. Advanced Engineering Informatics, 51, 101497, doi.org/10.1016/j.aei.2021.101497
- Adamus Ł. 2012. Modelowanie informacji o budynku (BIM). Podstawy teoretyczne. Prace Instytutu Techniki Budowlanej, 4 (146), 13–25.
- Alshawabkeh Y., Baik A., Miky Y. 2021. Integration of Laser Scanner and Photogrammetry for Heritage BIM Enhancement. ISPRS International Journal of Geo-Information, 202, 10, 316. doi.org/10.3390/ijgi10050316
- Baselga S., Garrigues P., Berné J.L., Anquela A.B., Martín A. 2011. Deformation monitoring in historic buildings: A case study. Survey Review, 43, 484–492. doi.org/10.1179/003962611X13117748891912
- BIM Object. Serwis internetowy z udostępnionymi bazami rodzin i komponentów, wygenerowanych w technologii BIM, www.bimobject.com
- Brumana R., Torre S., Previtali M., Barazzetti L., Cantini L., Oreni D., Banfi F. 2018. Generative HBIM modelling to embody complexity (LOD, LOG, LOA, LOI): surveying, preservation, site intervention – the Basilica di Collemaggio (L’Aquila). Applied Geomatics, 10, 545–567. https://doi.org/10.1007/s12518-018-0233-3
- Croce V., Caroti G., De Luca L., Jacquot K., Piemonte A., Véron P. 2021. From the Semantic Point Cloud to Heritage-Building Information Modeling: A Semiautomatic Approach Exploiting Machine Learning. Remote Sensing, 13, 461. doi.org/10.3390/rs13030461
- Guan S., Zhu Z., Wang G. 2022. A Review on UAV-Based Remote Sensing Technologies for Construction and Civil Applications. Drones, 6, 117. doi.org/10.3390/drones6050117
- Kasznia D., Migiera J., Wierzowiecki P. 2017. BIM w praktyce: standardy, wdrożenia, case study. Wydawnictwo Naukowe PWN, Warszawa.
- Klapa P. 2022. TLS point cloud as a data source for multi-LOD of 3D models. Geomatics, Landmanagement and Landscape, 2, 63–73. doi.org/10.15576/GLL/2022.2.63
- Klapa P., Mitka B., Zygmunt M. 2022. Integration of TLS and UAV data for the generation of a three-dimensional basemap. Advances in Geodesy and Geoinformation (formerly Geodesy and Cartography), 71, 2, article no. e27, 2022. doi.org/10.24425/agg.2022.141301
- Klapa P., Gawronek P. 2023. Synergy of Geospatial Data from TLS and UAV for Heritage Building Information Modeling (HBIM). Remote Sensing, 15 (1), 128. https://doi.org/10.3390/rs15010128
- Lamus Dworski. Experimental Station in Garlica Murowana, University of Agriculture in Krakow (Stacja Doświadczalna w Garlicy Murowanej, Uniwersytet Rolniczy w Krakowie). https://wbio.urk.edu.pl/index/site/7938
- León-Robles C.A., Reinoso-Gordo J.F., González-Quiñones J.J. 2019. Heritage Building Information Modeling (H-BIM) Applied to A Stone Bridge. ISPRS Int. J. Geo-Inf., 8, 121. doi.org/10.3390/ijgi8030121
- López F.J., Lerones P.M., Llamas J., Gómez-García-Bermejo J., Zalama E. 2018. A Review of Heritage Building Information Modeling (H-BIM). Multimodal Technol. Interact., 2, 21.doi.org/10.3390/mti2020021
- Maiezza P. 2019. As-built reliability in architectural HBIM modelling. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XLII-2/ W9. 2019 8th Intl. Workshop 3D-ARCH “3D Virtual Reconstruction and Visualization of Complex Architectures”, 6–8 February 2019, Bergamo, Italy. doi.org/10.5194/isprs-archivesXLII-2-W9-461-2019
- Moyano J., León J., Nieto-Julián J., Bruno S. 2021. Semantic interpretation of architectural and archaeological geometries: Point cloud segmentation for HBIM parameterisation. Automation in Construction, 130. 103856. doi.org/10.1016/j.autcon.2021.103856.
- Mukupa W., Roberts G.W., Hancock C.M., Al-Manasir K. 2017. A review of the use of terrestrial laser scanning application for change detection and deformation monitoring of structures. Survey Review, 49, 99–116. doi.org/10.1080/00396265.2015.1133039
- National Heritage Board of Poland (Narodowy Instytut Dziedzictwa). Register of monuments: Monument card No. 1429/3 Lamus Dworski (Rejestr. A-442), Garlica Murowana. https://zabytek.pl/pl/obiekty/g-224570
- Noszczyk T., Gawronek P. 2020. Remote Sensing and GIS for Environmental Analysis and Cultural Heritage. Remote Sensing, 12, 3960. doi.org/10.3390/rs12233960
- Polski Związek Pracodawców Budownictwa. 2020. BIM_Standard PL, Warszawa.
- Ravi R., Lin Y.J., Elbahnasawy M., Shamseldin T., Habib A. 2018. Bias impact analysis and calibration of terrestrial mobile Lidar system with several spinning multibeam laser scanners. IEEE Transactions on Geoscience and Remote Sensing, 56(9), 5261–5275. doi.org/10.1109/TGRS.2018.2812782
- Tomana A. 2016. BiM Innowacyjna technologia w budownictwie: podstawy, standardy narzędzia. PWB Media Zdziebłowski Spółka Jawna, Kraków.
- U.S. Institute of Building Documentation (USIBD). 2016. Level of Accuracy (LOA) Specification Guide: Level of Accuracy (LOA) Specification for Building Documentation, USA, USIBD Document C120TM [Guide], Version 2.0.
- Yang S., Xu S., Huang W. 2022. Point Cloud for Cultural Heritage: A Scientometric. Remote Sensing, 14, 5542. doi.org/10.3390/rs14215542
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-750f86a9-ecbc-418c-af34-96cf503a3474