Digital Tool Supporting the Documentation and Analysis of Cultural Heritage: The Case of the Analytical 3D Model of the Zamość Fortress
Abstract
This paper presents a city-scale digital documentation and analysis workflow for cultural heritage assets, demonstrated on the example of the UNESCO-listed historic centre and fortress area of Zamość (Poland). The study integrates terrestrial laser scanning (TLS) with unmanned aerial vehicle (UAV) and terrestrial photogrammetry to produce a geometrically consistent 3D dataset covering over 100 buildings and key public-space elements. The processing pipeline includes scan registration, image-based reconstruction, and cross-sensor alignment, followed by the creation of an analytical 3D model segmented by address and parcel identifiers to enable linkage with municipal datasets.
A semantic layer is implemented by assigning a structured set of building- and neighbourhood-level parameters and mapping them into building information modelling (BIM)/openBIM structures (Revit shared parameters and industry foundation classes (IFC) Property Sets), targeting a level of information adequate for conservation-oriented diagnostics and urban-scale assessments rather than detailed component-level historic building information modelling (HBIM). Geometric quality is verified using independent checkpoints and registration statistics (e.g., root mean square error (RMSE) where applicable), yielding a typical spatial agreement on the order of 4 cm to 5 cm for the integrated model in representative test areas.
The resulting environment supports multi-criteria querying and visualisation, including functional categorisation, technical condition screening (e.g., moisture-related indicators), and energy-related attributes for prioritisation at the district scale. The main contribution is a reproducible integration of multi-source survey data with an explicit semantic/BIM mapping and verifiable accuracy reporting for a heritage city context, clarifying which outputs stem from the proposed method (data integration, segmentation, semantic schema, and validation) versus the standard capabilities of the employed software.
Keywords:
digital twin, cultural heritage documentation, 3D modelling, terrestrial laser scanning, UAV photogrammetry, BIM/IFCReferences
- López F.J., Lerones P.M., Llamas J., Gómez-García-Bermejo J., Zalama E., A review of heritage building information modelling(H-BIM), Multimodal Technologies and Interaction, 2(2): 21, 2018, https://doi.org/10.3390/mti2020021
- Biagini C., Capone P., Donato V., Facchini N., Towards the BIM implementation for historical building restoration sites, Automation in Construction, 71: 74–86, 2016, https://doi.org/10.1016/j.autcon.2016.03.003
- Alshawabkeh Y., Baik A., Miky Y., Integration of laser scanner and photogrammetry for heritage BIM enhancement, ISPRS International Journal of Geo-Information, 10(5): 316, 2021, https://doi.org/10.3390/ijgi10050316
- Masciotta M.G., Sanchez-Aparicio L.J., Oliveira D.V., González-Aguilera D., Integration of laser scanning technologies and 360° photography for the digital documentation and management of cultural heritage buildings, International Journal of Architectural Heritage, 17(1): 56–75, 2023, https://doi.org/10.1080/15583058.2022.2069062
- Andriasyan M., Moyano J., Nieto-Julián J.E., Antón D., From point cloud data to building information modelling: An automatic parametric workflow for heritage, Remote Sensing, 12(7): 1094, 2020, https://doi.org/10.3390/rs12071094
- Jordan-Palomar I., Tzortzopoulos P., García-Valldecabres J., Pellicer E., Protocol to manage heritage-building interventions using heritage building information modelling(HBIM), Sustainability, 10(4): 908, 2018, https://doi.org/10.3390/su10040908
- Sztwiertnia D., Ochałek A., Tama A., Lewińska P., HBIM(heritage building information modell) of the Wang Stave Church in Karpacz – Case study, International Journal of Architectural Heritage, 15(5): 713–727, 2019, https://doi.org/10.1080/15583058.2019.1645238
- Chen L., Dai C., Zhou M., Lu J., Development and application of an HBIM method for timber structures integrated with digital technologies, npj Heritage Science, 13: 381, 2025, https://doi.org/10.1038/s40494-025-01925-2
- Rocha G., Mateus L., Fernandez J.H., Ferreira V., A scan-to-BIM methodology applied to heritage buildings, Heritage, 3(1): 47–67, 2020, https://doi.org/10.3390/heritage3010004
- Crisan A., Pepe M., Costantino D., Herban S., From 3D point cloud to an intelligent model set for cultural heritage conservation, Heritage, 7(3): 1419–1437, 2024, https://doi.org/10.3390/heritage7030068
- Szostak B., Wac M., The use of digital technologies in assessing the technical condition of historic structures, Budownictwo i Architektura, 23(4): 151–172, 2024, https://doi.org/10.35784/bud-arch.6669
- Barazzetti L., Banfi F., Brumana R., Gusmeroli G., Previtali M., Schiantarelli G., Cloud-to-BIM-to-FEM: Structural simulation with accurate historic BIM from laser scans, Simulation Modelling Practice and Theory, 57: 71–87, 2015, https://doi.org/10.1016/j.simpat.2015.06.004
- Dore C., Murphy M., McCarthy S., Brechin F., Casidy C., Dirix E., Structural simulations and conservation analysis – historic building information model(HBIM), ISPRS International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XL-5/W4: 351–357, 2015, https://doi.org/10.5194/isprsarchives-XL-5-W4-351-2015
- Oostwegel L.J.N., Jaud Š., Muhič S., Malovrh Rebec K., Digitalization of culturally significant buildings: ensuring high-quality data exchanges in the heritage domain using OpenBIM, Heritage Science, 10: 10, 2022, https://doi.org/10.1186/s40494-021-00640-y
- Funari M.F., Hajjat A.E., Masciotta M.G., Oliveira D.V., Lourenço P.B., A parametric scan-to-FEM framework for the digital twin generation of historic masonry structures, Sustainability, 13(19): 11088, 2021, https://doi.org/10.3390/su131911088
- Vuoto A., Funari M.F., Lourenço P.B., Shaping digital twin concept for built cultural heritage conservation: A systematic literature review, International Journal of Architectural Heritage, 18(11): 1762–1795, 2024, https://doi.org/10.1080/15583058.2023.2258084
- Noronha Pinto de Oliveira e Sousa M., Correa F.R., Towards digital twins for heritage buildings: A workflow proposal, International Journal of Architectural Computing, 21(4): 712–729, 2023, https://doi.org/10.1177/1478077123116822
- Pepe M., Palumbo D., Dewedar A.K.H., Spacone E., Toward to combination of GIS-HBIM models for multiscale spatial information about an historic center, Heritage, 7(12): 6966–6980, 2024, https://doi.org/10.3390/heritage7120322
- Vecco M., A definition of cultural heritage: From the tangible to the intangible, Journal of Cultural Heritage, 11(3): 321–324, 2010, https://doi.org/10.1016/j.culher.2010.01.006
- Acierno M., Cursi S., Simeone D., Fiorani D., Architectural heritage knowledge modelling: An ontology-based framework for conservation process, Journal of Cultural Heritage, 24: 124–133, 2017, https://doi.org/10.1016/j.culher.2016.09.010
- Penttilä H., Rajala M., Freese S., Building information modelling of modern historic buildings, [in:] Proceedings of the 25th eCAADe Conference on Predicting the Future, pp. 607–613, Frankfurt am Main, Germany, 26–29 September, 2007, https://doi.org/10.52842/conf.ecaade.2007.607
- Tomaževič M., Lutman M., Heritage masonry buildings in urban settlements and the requirements of Eurocodes: Experience of Slovenia, International Journal of Architectural Heritage, 1(1): 108–130, 2007, https://doi.org/10.1080/15583050601126186
- Gursel I., Sariyildiz S., Akin Ö., Stouffs R., Modelling and visualization of lifecycle building performance assessment, Advanced Engineering Informatics, 23(4): 396–417, 2009, https://doi.org/10.1016/j.aei.2009.06.010
- Letellier R., Eppich R. [Eds.], Recording, Documentation and Information Management for the Conservation of Heritage Places, Routledge, Abingdon, UK, 2015.
- Battina S., Jaganathan S., AI and digital twin applications in 3D information models for heritage buildings: A systematic review, International Journal of Engineering and Technology Management Sciences, 7(3): 122–131, 2023, https://doi.org/10.46647/ijetms.2023.v07i03.017
- Najjar M., Figueiredo K., Palumbo M., Haddad A., Integration of BIM and LCA: Evaluating the environmental impacts of building materials at an early stage of designing a typical office building, Journal of Building Engineering, 14: 115–126, 2017, https://doi.org/10.1016/j.jobe.2017.10.005
- Eleftheriadis S., Mumovic D., Greening P., Life cycle energy efficiency in building structures: A review of current developments and future outlooks based on BIM capabilities, Renewable and Sustainable Energy Reviews, 67(C): 811–825, 2017, https://doi.org/10.1016/j.rser.2016.09.028
- EU Directive 2018/844/EU, Energy Performance of Buildings, Official Journal of the European Union, 2018.
- Directive of the European Parliament and of the Council, On the energy performance of buildings, Official Journal of the European Union, 2021.
- Ministry of Economic Development, Ministry of the Environment and Protection of Natural Resources and the Sea, Integrated national energy and climate plan, European Commission, 2020.
- EASEE Project, Envelope approach to improve sustainability and energy efficiency in existing multi-storey multi-owner residential buildings, CORDIS, 2016.
- FARO Technologies, User manual for SCENE, online: https://knowledge.faro.com/Software/FARO_SCENE/SCENE/User_Manual_for_SCENE [access: 23.09.2025].
- Capturing Reality, RealityCapture – Documentation and Manual, Epic Games, online: https://dev.epicgames.com/community/learning/knowledge-base/R85v/realityscan-help-realitycapture-documentation-and-manual [access: 23.09.2025].
- Argasiński K., Kuroczyński P., Preservation through digitization – Standardization in documentation of build cultural heritage using capturing reality techniques and heritage/historic BIM methodology, The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XLVIII-M-2: 87–94, 2023, https://doi.org/10.5194/isprs-archives-XLVIII-M-2-2023-87-2023
- Stylianidis E., Evangelidis K., Vital R., Dafiotis P., Sylaiou S., 3D documentation and visualization of cultural heritage buildings through the application of geospatial technologies, Heritage, 5(4): 2818–2832, 2022, https://doi.org/10.3390/heritage5040146
- Jo Y.H., Park J.H., Hong E., Han W., Three-dimensional digital documentation and accuracy analysis of the Choijin Lama Temple in Mongolia, Journal of Conservation Science, 36(4): 264–274, 2020, https://doi.org/10.12654/JCS.2020.36.4.04
- Kong X., Monitoring time-varying changes of historic structures through photogrammetry-driven digital twinning, The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XLVIII-2: 181–186, 2024, https://doi.org/10.5194/isprs-archives-XLVIII-2-2024-181-2024
- Fidan Ş., Ulvi A., Yiğit A.Y., Hamal S.N.G., Yakar M., Combination of terrestrial laser scanning and unmanned aerial vehicle photogrammetry for heritage building information modelling: A case study of Tarsus St. Paul Church, Photogrammetric Engineering and Remote Sensing, 89(12): 753–760, 2023, https://doi.org/10.14358/PERS.23-00031R2
- Szostak B., Wac M., Historic crypts of the Church of the Exaltation of the Holy Cross in Łuków – Challenges preceding adaptation, Zeszyty Naukowe Politechniki Poznańskiej. Architektura, Urbanistyka, Architektura Wnętrz, 2024(20): 51–75, 2024, https://doi.org/10.21008/j.2658-2619.2024.20.4
- Aricò M., Dardanelli G., La Guardia M., Lo Brutto M., Three-dimensional documentation and virtual web navigation system for the indoor and outdoor exploration of a complex cultural heritage site, Electronics, 13(14): 2833, 2024, https://doi.org/10.3390/electronics13142833
- Konstantakis M. et al., An improved approach for generating digital twins of cultural spaces through the integration of photogrammetry and laser scanning technologies, Digital, 4(1): 215–231, 2024, https://doi.org/10.3390/digital4010011

