Detection of damage in heritage constructions based on 3D point clouds. A systematic review
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R. Pierdicca | L. Sánchez-Aparicio | Jesús García-Gago | D. Sanz-Arauz | Javier Pinilla-Melo | Federico Luis del Blanco-García | D. Mencías-Carrizosa | P. Villanueva-Llauradó | J. Aira-Zunzunegui | David Mencías-Carrizosa | David Sanz-Arauz
[1] Songnian Li,et al. Three-Dimensional Point Cloud Semantic Segmentation for Cultural Heritage: A Comprehensive Review , 2023, Remote. Sens..
[2] D. Costantino,et al. UAV Platforms and the SfM-MVS Approach in the 3D Surveys and Modelling: A Review in the Cultural Heritage Field , 2022, Applied Sciences.
[3] J. Katzer,et al. Application of TLS Technology for Documentation of Brickwork Heritage Buildings and Structures , 2022, Coatings.
[4] M. Buongiorno,et al. Laser Scanning Investigation and Geophysical Monitoring to Characterise Cultural Heritage Current State and Threat by Traffic-Induce Vibrations: The Villa Farnesina in Rome , 2022, Remote. Sens..
[5] Suhan Yang,et al. 3D Point Cloud for Cultural Heritage: A Scientometric Survey , 2022, Remote. Sens..
[6] Á. Török,et al. Detecting short-term weathering of stone monuments by 3D laser scanning: lithology, wall orientation, material loss , 2022, Journal of Cultural Heritage.
[7] Mezgeen A. Rasol,et al. Review of InfraRed Thermography and Ground-Penetrating Radar Applications for Building Assessment , 2022, Advances in Civil Engineering.
[8] D. González-Aguilera,et al. HBIM for supporting the diagnosis of historical buildings: case study of the Master Gate of San Francisco in Portugal , 2022, Automation in Construction.
[9] J. Moyano,et al. Collaborative Workflow in an HBIM Project for the Restoration and Conservation of Cultural Heritage , 2022, International Journal of Architectural Heritage.
[10] A. Sadhu,et al. LiDAR-Based Structural Health Monitoring: Applications in Civil Infrastructure Systems , 2022, Sensors.
[11] K. Reicherter,et al. 3D Modelling of Archaeoseismic Damage in the Roman Site of Baelo Claudia (Gibraltar Arc, South Spain) , 2022, Applied Sciences.
[12] G. Morgenthal,et al. Integration and Comparison Methods for Multitemporal Image-Based 2D Annotations in Linked 3D Building Documentation , 2022, Remote. Sens..
[13] M. Alonso,et al. Bayesian assessment of surface recession patterns in brick buildings with critical factors identification , 2022, Boletín de la Sociedad Española de Cerámica y Vidrio.
[14] Zheng Sun,et al. High-Definition Survey of Architectural Heritage Fusing Multisensors—The Case of Beamless Hall at Linggu Temple in Nanjing, China , 2022, Sensors.
[15] C. Stephan,et al. Bautechnische Untersuchungen an der historischen Kanalbrücke Minden , 2022, Bautechnik.
[16] P. Kot,et al. THE INTEGRATION OF THE MULTI-TEMPORAL CONSERVATION WORKS AND NON-INVASIVE MEASUREMENTS , 2022, The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences.
[17] M. Cabaleiro,et al. HBIM Application in Historic Timber Structures: A Systematic Review , 2022, International Journal of Architectural Heritage.
[18] T. Lipecki. Non-Contact Diagnostics of the Geometry of a Historic Wooden Building as an Element of Periodic Safety Assessment , 2022, Sensors.
[19] C. Suchocki,et al. Crack detection in building walls based on geometric and radiometric point cloud information , 2022, Automation in Construction.
[20] A. Yudono,et al. Investigating Surface Fractures and Materials Behavior of Cultural Heritage Buildings Based on the Attribute Information of Point Clouds Stored in the TLS Dataset , 2022, Remote. Sens..
[21] E. Ekiert,et al. Research and TLS (LiDAR) Construction Diagnostics of Clay Brick Masonry Arched Stairs , 2022, Materials.
[22] A. Behnood,et al. 3D point cloud data processing with machine learning for construction and infrastructure applications: A comprehensive review , 2022, Adv. Eng. Informatics.
[23] Silvana Bruno,et al. Semantic interpretation of architectural and archaeological geometries: Point cloud segmentation for HBIM parameterisation , 2021 .
[24] E. Malinverni,et al. Multidisciplinary Approach for the Analysis of Structural Heritage at Risk: The Case Study of Stylite Tower at Umm ar-Rasas (Jordan) , 2021, International Journal of Architectural Heritage.
[25] Juan Moyano,et al. Analysis and management of structural deformations through parametric models and HBIM workflow in architectural heritage , 2021, Journal of Building Engineering.
[26] M. Hou,et al. A METHOD FOR MONITORING BULGE OF ANCIENT CITY WALL AFTER REPAIR , 2021, The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences.
[27] Linh Truong-Hong,et al. Structural assessment using terrestrial laser scanning point clouds , 2021, International Journal of Building Pathology and Adaptation.
[28] ANGELO MASSAFRA,et al. DIGITAL SURVEY AND PARAMETRIC 3D MODELLING FOR THE VULNERABILITY ASSESSMENT OF MASONRY HERITAGE: THE BASILICA OF SAN DOMENICO IN SIENA, ITALY , 2021, Structural Studies, Repairs and Maintenance of Heritage Architecture XVII.
[29] A. Georgopoulos,et al. 3D AND HYPERSPECTRAL DATA INTEGRATION FOR ASSESSING MATERIAL DEGRADATION IN MEDIEVAL MASONRY HERITAGE BUILDINGS , 2021, The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences.
[30] Yuan He,et al. Study on the Causes of Secondary Cracks of the Eave Wall Mural of Daxiong Hall at Fengguo Temple in Yixian, Liaoning, China , 2021 .
[31] Somchai Chucheepsakul,et al. An Alternative Method for Long-Term Monitoring of Thai Historic Pagodas Based on Terrestrial Laser Scanning Data: A Case Study of Wat Krachee in Ayutthaya , 2021 .
[32] P. Lourenço,et al. Automatic Detection of Surface Damage in Round Brick Chimneys by Finite Plane Modelling from Terrestrial Laser Scanning Point Clouds. Case Study of Bragança Dukes’ Palace, Guimarães, Portugal , 2021, International Journal of Architectural Heritage.
[33] Richard L. Wood,et al. Feature-Based Point Cloud-Based Assessment of Heritage Structures for Nondestructive and Noncontact Surface Damage Detection , 2021 .
[34] Carlos Rivera-Gómez,et al. Non-destructive testing and Finite Element Method integrated procedure for heritage diagnosis: The Seville Cathedral case study , 2021 .
[35] Jaime Gómez García-Bermejo,et al. BIM Supported Surveying and Imaging Combination for Heritage Conservation , 2021, Remote. Sens..
[36] M. Cabaleiro,et al. Combination of laser scanner and drilling resistance tests to measure geometry change for structural assessment of timber beams exposed to fire , 2021 .
[37] Dhiraj Sangwan,et al. An object detection approach for detecting damages in heritage sites using 3-D point clouds and 2-D visual data , 2021 .
[38] Luisa M. S. Gonçalves,et al. A Building Information Modeling Approach to Integrate Geomatic Data for the Documentation and Preservation of Cultural Heritage , 2020, Remote. Sens..
[39] Gulshan Taj,et al. Monitoring of Historical Structures using Drones , 2020, IOP Conference Series: Materials Science and Engineering.
[40] Luisa María Gil-Martín,et al. Probabilistic identification of surface recession patterns in heritage buildings based on digital photogrammetry , 2020 .
[41] F. Buill,et al. Terrestrial Laser Scanner for the Formal Assessment of a Roman-Medieval Structure—The Cloister of the Cathedral of Tarragona (Spain) , 2020 .
[42] A. Spanò,et al. HBIM parametric modelling from clouds to perform structural analyses based on finite elements: a case study on a parabolic concrete vault , 2020, Applied Geomatics.
[43] Stefano Morelli,et al. Characterization and Geotechnical Investigations of a Riverbank Failure in Florence, Italy, UNESCO World Heritage Site , 2020, Journal of Geotechnical and Geoenvironmental Engineering.
[44] E. Mayo-Wilson,et al. The PRISMA 2020 statement: an updated guideline for reporting systematic reviews , 2020, BMJ.
[45] Francesco Micelli,et al. Seismic Capacity Estimation of a Masonry Bell-Tower with Verticality Imperfection Detected by a Drone-Assisted Survey , 2020, Infrastructures.
[46] Manuel Cabaleiro,et al. HBIM for storing life-cycle data regarding decay and damage in existing timber structures , 2020 .
[47] J. Aguiar,et al. THE ROLE OF 3D DOCUMENTATION FOR RESTORATION INTERVENTIONS. THE CASE STUDY OF VALFLORES IN LOURES, PORTUGAL , 2020 .
[48] Pierre Grussenmeyer,et al. Review of built heritage modelling: Integration of HBIM and other information techniques , 2020 .
[49] Filiberto Chiabrando,et al. A Multidisciplinary Study on the Seismic Vulnerability of St. Agostino Church in Amatrice following the 2016 Seismic Sequence , 2020, International Journal of Architectural Heritage.
[50] Loris Barbieri,et al. Damage Indices and Photogrammetry for Decay Assessment of Stone-Built Cultural Heritage: The Case Study of the San Domenico Church Main Entrance Portal (South Calabria, Italy) , 2020 .
[51] Andrea Masiero,et al. On the Use of the OptD Method for Building Diagnostics , 2020, Remote. Sens..
[52] Jacek Katzer,et al. Remote Detection of Moisture and Bio-Deterioration of Building Walls by Time-Of-Flight and Phase-Shift Terrestrial Laser Scanners , 2020, Remote. Sens..
[53] P. Lourenço,et al. Advanced non-destructive techniques for the diagnosis of historic buildings: The Loka-Hteik-Pan temple in Bagan , 2020 .
[54] Somchai Chucheepsakul,et al. Application of 3D laser scanning technology for preservation and monitoring of Thai pagoda: A case study of Wat Krachee Ayutthaya , 2020, IOP Conference Series: Earth and Environmental Science.
[55] Manuel Castellano-Román,et al. HBIM as Support of Preventive Conservation Actions in Heritage Architecture. Experience of the Renaissance Quadrant Façade of the Cathedral of Seville , 2020, Applied Sciences.
[56] Paul Sestras,et al. Feasibility Assessments Using Unmanned Aerial Vehicle Technology in Heritage Buildings: Rehabilitation-Restoration, Spatial Analysis and Tourism Potential Analysis , 2020, Sensors.
[57] José Juan de Sanjosé-Blasco,et al. Tower of Belém (Lisbon)–Status Quo 3D Documentation and Material Origin Determination , 2020, Sensors.
[58] José Antonio Benavides López,et al. Levantamiento arquitectónico y análisis arqueológico del castillo de Píñar como punto de partida para su conservación , 2020 .
[59] C. Suchocki. Comparison of Time-of-Flight and Phase-Shift TLS Intensity Data for the Diagnostics Measurements of Buildings , 2020, Materials.
[60] Fabio Fatiguso,et al. Remote diagnosis and control of the heritage Architecture by photorealistic digital environments and models , 2019 .
[61] Derek D. Lichti,et al. Concrete Preliminary Damage Inspection by Classification of Terrestrial Laser Scanner Point Clouds through Systematic Threshold Definition , 2019, ISPRS Int. J. Geo Inf..
[62] Branko Glisic,et al. Documentation, structural health monitoring and numerical modelling for damage assessment of the Morris Island Lighthouse , 2019, Philosophical Transactions of the Royal Society A.
[63] Frédéric Bosché,et al. Automated defect detection and classification in ashlar masonry walls using machine learning , 2019, Automation in Construction.
[64] D. González-Aguilera,et al. A Digital-based Integrated Methodology for the Preventive Conservation of Cultural Heritage: The Experience of HeritageCare Project , 2019, International Journal of Architectural Heritage.
[65] Nicola Lercari,et al. Spatial analysis and heritage conservation: Leveraging 3-D data and GIS for monitoring earthen architecture , 2019, Journal of Cultural Heritage.
[66] Nicola Lercari. Monitoring earthen archaeological heritage using multi-temporal terrestrial laser scanning and surface change detection , 2019, Journal of Cultural Heritage.
[67] Diego González-Aguilera,et al. A COMPARATIVE STUDY BETWEEN WMMS AND TLS FOR THE STABILITY ANALYSIS OF THE SAN PEDRO CHURCH BARREL VAULT BY MEANS OF THE FINITE ELEMENT METHOD , 2019, The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences.
[68] Yolanda Spairani-Berrio,et al. THE USAGE OF TLS AND PHOTOGRAMMETRY DURING THE RESTORATION PROCESS OF SPANISH NATIONAL MONUMENT , 2019, The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences.
[69] G. Caroti,et al. ASSESSMENT OF EARTHQUAKE-INDUCED DAMAGE LEVEL ON BUILDINGS: ANALYSIS OF TWO DIFFERENT SURVEY METHODS FOR A CASE STUDY , 2019, ISPRS - International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences.
[70] W. Błaszczak-Bąk,et al. DEFECT DETECTION OF HISTORIC STRUCTURES IN DARK PLACES BASED ON THE POINT CLOUD ANALYSIS BY MODIFIED OptD METHOD , 2019, The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences.
[71] Luís F. Ramos,et al. Non-destructive means and methods for structural diagnosis of masonry arch bridges , 2019, Automation in Construction.
[72] Giacomo Patrucco,et al. Structure-from-Motion (SFM) Photogrammetry as a Non-Invasive Methodology to Digitalize Historical Documents: A Highly Flexible and Low-Cost Approach? , 2019, Heritage.
[73] H. Viles,et al. A controlled field experiment to investigate the deterioration of earthen heritage by wind and rain , 2019, Heritage Science.
[74] J. S. Pozo-Antonio,et al. Quantification and mapping of deterioration patterns on granite surfaces by means of mobile LiDAR data , 2019, Measurement.
[75] Benachir Medjdoub,et al. As-Built 3D Heritage City Modelling to Support Numerical Structural Analysis: Application to the Assessment of an Archaeological Remain , 2019, Remote. Sens..
[76] Jean-Louis Batoz,et al. From Point Cloud Data to Structural Analysis Through a Geometrical hBIM-Oriented Model , 2019, ACM Journal on Computing and Cultural Heritage.
[77] M. Cozzolino,et al. The contribution of indirect topographic surveys (photogrammetry and laser scanner) and GPR investigations in the study of the vulnerability of the Abbey of Santa Maria a Mare, Tremiti Islands (Italy) , 2019, Annals of Geophysics.
[78] Juan Enrique Nieto-Julián,et al. Implementation and Management of Structural Deformations into Historic Building Information Models , 2019, International Journal of Architectural Heritage.
[79] P. Orlano. GEOMATIC TECHNIQUES FOR THE COLONNADE STRUCTURAL ANALYSIS OF THE HISTORICAL “CHIARAMONTE STERI” BUILDING , 2019, The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences.
[80] Andrea Masiero,et al. TLS FOR DETECTING SMALL DAMAGES ON A BUILDING FAÇADE , 2019, The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences.
[81] V. M. Nannei,et al. INTEGRATED SURVEY TECHNIQUES: PRELIMINARY STUDIES FOR THE CONSERVATION OF VILLA GALVAGNINA , 2019, The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences.
[82] Soraya Genin,et al. PHOTOGRAMMETRY: METHODS OF SURVEY AND APPLICATIONS ON RESTORATION WORKS , 2019, The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences.
[83] C. Santagati,et al. A multi-technique characterization study of building materials from the Exedra of S. Nicolò l’Arena in Catania (Italy) , 2019, Journal of Building Engineering.
[84] Ekta Baranwal,et al. Application of Unmanned Aerial Vehicle (UAV) for Damage Assessment of a Cultural Heritage Monument , 2019 .
[85] B. Glisic,et al. The Foundation Walls of the Baptistery Di San Giovanni: A Combination of Laser Scanning and Finite-Distinct Element Modeling to Ascertain Damage Origins , 2019, International Journal of Architectural Heritage.
[86] Fabio Fatiguso,et al. Advanced damage detection techniques in historical buildings using digital photogrammetry and 3D surface anlysis , 2019, Journal of Cultural Heritage.
[87] Marcello Balzani,et al. 3D DATA PROCESSING TOWARD MAINTENANCE AND CONSERVATION. THE INTEGRATED DIGITAL DOCUMENTATION OF CASA DE VIDRO , 2019, The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences.
[88] R. Brumana,et al. A LAYERED-WEB INTERFACE BASED ON HBIM AND 360° PANORAMAS FOR HISTORICAL, MATERIAL AND GEOMETRIC ANALYSIS , 2019, The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences.
[89] S. Coll-Pla,et al. TERRESTRIAL LASER SCANNER AND FAST CHARACTERIZATION OF SUPERFICIAL LESIONS IN ARCHITECTURAL DIAGNOSIS , 2019, The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences.
[90] Wioleta Błaszczak-Bąk,et al. Down-Sampling of Point Clouds for the Technical Diagnostics of Buildings and Structures , 2019, Geosciences.
[91] Bashar Alsadik,et al. Out of Plumb Assessment for Cylindrical-Like Minaret Structures Using Geometric Primitives Fitting , 2019, ISPRS Int. J. Geo Inf..
[92] M. Núñez Peiró,et al. Source area definition for local climate zones studies. A systematic review , 2019, Building and Environment.
[93] B. Glisic,et al. Integrating Non-Destructive Testing, Laser Scanning, and Numerical Modeling for Damage Assessment: The Room of the Elements , 2019, Heritage.
[94] Qian Wang,et al. Applications of 3D point cloud data in the construction industry: A fifteen-year review from 2004 to 2018 , 2019, Adv. Eng. Informatics.
[95] Davide Prati,et al. Knowledge Methods to Extend the Service Life of Historic Timber Roofs , 2018 .
[96] Krisada Chaiyasarn,et al. CRACK DETECTION IN HISTORICAL STRUCTURES BASED ON CONVOLUTIONAL NEURAL NETWORK , 2018, International Journal of GEOMATE.
[97] Antonella Manzo,et al. On the Integration of Digital 2D and 3D Survey Models for the Geometrical Configuration and the Damage Assessment of a Medieval Building in Venice , 2018, EuroMed.
[98] A. Kaliszewska,et al. Non-invasive Investigation and Documentation in the Bieliński Palace in Otwock Wielki , 2018, EuroMed.
[99] Daniela Oreni,et al. SCAN to HBIM-Post Earthquake Preservation: Informative Model as Sentinel at the Crossroads of Present, Past, and Future , 2018, EuroMed.
[100] Irene Bellagamba,et al. Photogrammetric survey to support Non Destructive Tests at St. Alexander Catacombs in Rome , 2018, 2018 Metrology for Archaeology and Cultural Heritage (MetroArchaeo).
[101] M. DeJong,et al. Mapping deformations and inferring movements of masonry arch bridges using point cloud data , 2018, Engineering Structures.
[102] P. Ortiz,et al. 3D laser scanning applied to diagnosis in vaults , 2018, Conserving Cultural Heritage.
[103] Luigi Maria Galantucci,et al. A proposal for a new standard quantification of damages of cultural heritages, based on 3D scanning , 2018 .
[104] Gianni Bartoli,et al. Advanced procedure for documenting and assessment of Cultural Heritage: from Laser Scanning to Finite Element. , 2018, IOP Conference Series: Materials Science and Engineering.
[105] Davide Mezzino,et al. Unmanned Aerial Vehicles (UAV) Photogrammetry in the Conservation of Historic Places: Carleton Immersive Media Studio Case Studies , 2018 .
[106] Facundo José López,et al. A Review of Heritage Building Information Modeling (H-BIM) , 2018, Multimodal Technol. Interact..
[107] Luigi Barazzetti,et al. An integrated approach for threat assessment and damage identification on built heritage in climate-sensitive territories: the Albenga case study (San Clemente church) , 2018 .
[108] Q. Li,et al. DAMAGE DETECTION FOR HISTORICAL ARCHITECTURES BASED ON TLS INTENSITY DATA , 2018 .
[109] Carlos A. León-Robles,et al. Cultural Heritage Conservation and Sustainability Based on Surveying and Modeling: The Case of the 14th Century Building Corral del Carbón (Granada, Spain) , 2018 .
[110] G. Casula,et al. An innovative methodology for the non-destructive diagnosis of architectural elements of ancient historical buildings , 2018, Scientific Reports.
[111] Belén Riveiro,et al. Detection of structural faults in piers of masonry arch bridges through automated processing of laser scanning data , 2018 .
[112] Susana Lagüela-Lopez,et al. Reconstructing the Roman Site "Aquis Querquennis" (Bande, Spain) from GPR, T-LiDAR and IRT Data Fusion , 2018, Remote. Sens..
[113] Ivan Roselli,et al. Health assessment and ambient vibration testing of the “Ponte delle Torri” of Spoleto during the 2016–2017 Central Italy seismic sequence , 2018 .
[114] Valentina Bonora,et al. An integrated Terrestrial Laser Scanner (TLS), Deviation Analysis (DA) and Finite Element (FE) approach for health assessment of historical structures. A minaret case study , 2017 .
[115] Adam Frost,et al. 3D digital documentation for disaster management in historic buildings: Applications following fire damage at the Mackintosh building, The Glasgow School of Art , 2017 .
[116] Y. Hashash,et al. Overview of the 2015 Gorkha, Nepal, Earthquake and the Earthquake Spectra Special Issue , 2017 .
[117] Andrew Sowter,et al. New approach for monitoring historic and heritage buildings: Using terrestrial laser scanning and generalised Procrustes analysis , 2017 .
[118] Michal Kedzierski,et al. INTEGRATION OF POINT CLOUDS AND IMAGES ACQUIRED FROM A LOW-COST NIR CAMERA SENSOR FOR CULTURAL HERITAGE PURPOSES , 2017 .
[119] Vid Petrovic,et al. INTERACTIVE CLASSIFICATION OF CONSTRUCTION MATERIALS: FEEDBACKDRIVEN FRAMEWORK FOR ANNOTATION AND ANALYSIS OF 3D POINT CLOUDS , 2017 .
[120] Ivan Roselli,et al. 3D Photogrammetric Reconstruction by Drone Scanning for FE Analysis and Crack Pattern Mapping of the “Bridge of the Towers”, Spoleto , 2017 .
[121] Wioleta Błaszczak-Bąk,et al. The OptD-multi method in LiDAR processing , 2017 .
[122] Grazia Tucci,et al. SAN CARLO DEI BARNABITI: RESTORATION AND REINFORCEMENT OF THE ROOFING OF A FLORENTINE BAROQUE MASTERPIECE , 2017 .
[123] George Pantazis,et al. MERGING GEOMETRIC DOCUMENTATION WITH MATERIALS CHARACTERIZATION AND ANALYSIS OF THE HISTORY OF THE HOLY AEDICULE IN THE CHURCH OF THE HOLY SEPULCHRE IN JERUSALEM , 2017 .
[124] Manuela Cecconi,et al. THE TEMPIO DELLA CONSOLAZIONE IN TODI: INTEGRATED GEOMATICTECHNIQUES FOR A MONUMENT DESCRIPTION INCLUDING STRUCTURALDAMAGE EVOLUTION IN TIME , 2017 .
[125] Fulvio Rinaudo,et al. METRIC SURVEY AND BIM TECHNOLOGIES TO RECORD DECAY CONDITIONS , 2017 .
[126] Eva Coisson,et al. LASER-SCANNER SURVEY OF STRUCTURAL DISORDERS: AN INSTRUMENT TOINSPECT THE HISTORY OF PARMA CATHEDRAL’S CENTRAL NAVE , 2017 .
[127] Antonia Teresa Spano,et al. High scale 3D modelling and orthophoto of curved masonries for a multipurpose representation, analysis and assessment , 2017 .
[128] Pilar Ortiz,et al. Integration of georeferenced informed system and digital image analysis to asses the effect of cars pollution on historical buildings , 2017 .
[129] Marco Scaioni,et al. INTEGRATION OF INFRARED THERMOGRAPHY AND PHOTOGRAMMETRIC SURVEYING OF BUILT LANDSCAPE , 2017 .
[130] F. Chiabrando,et al. Multitemporal 3D modelling for cultural heritage emergency during seismic events: Damage assesment of S. Agostino church in Amatrice (RI) , 2017 .
[131] Miguel Louis Cereceda,et al. LIDAR AND GIS TECHNIQUES IN THE SURVEY AND MONITORING OF BUILT HERITAGE: APPLICATION TO THE MAIN FRONTAGE OF THE CHURCH OF BIAR , 2017 .
[132] Paolo Clini,et al. Fast, low cost and safe methodology for the assessment of the state of conservation of historical buildings from 3D laser scanning: The case study of Santa Maria in Portonovo (Italy) , 2017 .
[133] A. A. Sidiropoulos,et al. LOCALIZATION OF PATHOLOGY ON COMPLEX ARCHITECTURE BUILDING SURFACES , 2017 .
[134] Fabio Remondino,et al. A REVIEW OFPOINT CLOUDS SEGMENTATION AND CLASSIFICATION ALGORITHMS , 2017 .
[135] Silvana Fais,et al. Integrated ultrasonic, laser scanning and petrographical characterisation of carbonate building materials on an architectural structure of a historic building , 2017, Bulletin of Engineering Geology and the Environment.
[136] Massimiliano Lo Turco,et al. From Integrated Survey to the Parametric Modeling of Degradations. A Feasible Workflow , 2016, EuroMed.
[137] Alessio Cardaci,et al. Diagnostic Activities for the Planned and Preventive Conservation of Mosaic Pavements: The Case Study of the Triclinium of the Villa Romana del Casale (Sicily) , 2016, EuroMed.
[138] Tolga Bakirman,et al. DEFORMATION MEASUREMENT USING TERRESTRIAL LASER SCANNER FOR CULTURAL HERITAGE , 2016 .
[139] J. Busse,et al. A brief overview of systematic reviews and meta-analyses , 2016, Indian journal of anaesthesia.
[140] Wioleta Blaszczak-Bak,et al. New Optimum Dataset method in LiDAR processing , 2016 .
[141] Diego González-Aguilera,et al. Development of an All-Purpose Free Photogrammetric Tool , 2016 .
[142] R. Nespeca,et al. ANALYSIS, THEMATIC MAPS AND DATA MINING FROM POINT CLOUD TO ONTOLOGY FOR SOFTWARE DEVELOPMENT , 2016 .
[143] Giuseppina Vacca,et al. TERRESTRIAL LASER SCANNER FOR MONITORING THE DEFORMATIONS AND THE DAMAGES OF BUILDINGS , 2016 .
[144] Umut Almac,et al. Numerical Analysis of Historic Structural Elements Using 3D Point Cloud Data , 2016 .
[145] Giorgia Giardina,et al. Distributed sensing of a masonry vault during nearby piling , 2016 .
[146] Juan Chiachio,et al. Logical inference for inverse problems , 2016 .
[147] Marco Callieri,et al. Experiencing Ancient Buildings from a 3D GIS Perspective: a Case Drawn from the Swedish Pompeii Project , 2015, Journal of Archaeological Method and Theory.
[148] Eduardo Zalama Casanova,et al. Moisture detection in heritage buildings by 3D laser scanning , 2016 .
[149] G. D. Georgopoulos,et al. The contribution of laser scanning technology in the estimation of ancient Greek monuments' deformations , 2016 .
[150] Giordano Teza,et al. Morphological Analysis for Architectural Applications: Comparison between Laser Scanning and Structure-from-Motion Photogrammetry , 2016 .
[151] Pablo Rodríguez-Gonzálvez,et al. Multispectral Radiometric Analysis of Façades to Detect Pathologies from Active and Passive Remote Sensing , 2016, Remote. Sens..
[152] Neal R Haddaway,et al. Making literature reviews more reliable through application of lessons from systematic reviews , 2015, Conservation biology : the journal of the Society for Conservation Biology.
[153] Linh Truong-Hong,et al. Documentation of bridges by terrestrial laser scanner , 2015 .
[154] Falko Kuester,et al. UAV-based post disaster assessment of cultural heritage sites following the 2014 South Napa Earthquake , 2015, 2015 Digital Heritage.
[155] Vid Petrovic,et al. Fusion of multimodal three-dimensional data for comprehensive digital documentation of cultural heritage sites , 2015, 2015 Digital Heritage.
[156] M. C. Lee,et al. Finding the displacement of wood structure in heritage building by 3D laser scanner , 2015 .
[157] Alessandro Capra,et al. Recent approaches in geodesy and geomatics for structures monitoring , 2015, Rendiconti Lincei.
[158] Sebastiano Trevisani,et al. Multisensor surveys of tall historical buildings in high seismic hazard areas before and during a seismic sequence , 2015 .
[159] Jakub Sandak,et al. Characterization and Monitoring of Surface Weathering on Exposed Timber Structures With a Multi-Sensor Approach , 2015 .
[160] P. Rodríguez-Gonzálvez,et al. MULTI-SENSOR RADIOMETRIC STUDY TO DETECT PATHOLOGIES IN HISTORICAL BUILDINGS , 2015 .
[161] J. E. Meroño,et al. Recognition of materials and damage on historical buildings using digital image classification , 2015 .
[162] Antonio Costanzo,et al. Combined Use of Terrestrial Laser Scanning and IR Thermography Applied to a Historical Building , 2014, Sensors.
[163] Diego González-Aguilera,et al. The combination of geomatic approaches and operational modal analysis to improve calibration of finite element models: A case of study in Saint Torcato Church (Guimarães, Portugal) , 2014 .
[164] Ali Hosseininaveh Ahmadabadian,et al. Photogrammetric analysis of a heritage ceiling , 2014 .
[165] Li Qi,et al. Fine Deformation Monitoring of Ancient Building Based on Terrestrial Laser Scanning Technologies , 2014 .
[166] Bing Zhang,et al. A Review of Remote Sensing Image Classification Techniques: the Role of Spatio-contextual Information , 2014 .
[167] Henrique Lorenzo,et al. Non‐destructive testing for the analysis of moisture in the masonry arch bridge of Lubians (Spain) , 2013 .
[168] Enea Mustafaraj,et al. Effects of soil settlement and deformed geometry on a historical structure , 2013 .
[169] F. Guzzetti,et al. Conservation and valorization of the historical heritage through laser scanner tecnology , 2013 .
[170] Mathieu Koehl,et al. A Historical Timber Frame Model for Diagnosis and Documentation before Building Restoration , 2013, Int. J. 3 D Inf. Model..
[171] Klaus-G. Hinzen,et al. A high resolution laser scanning model of the Roman theater in Pinara, Turkey – comparison to previous measurements and search for the causes of damage , 2013 .
[172] Filiberto Chiabrando,et al. Terrestrial Laser Scanning and Settled Techniques: A Support to Detect Pathologies and Safety Conditions of Timber Structures , 2013 .
[173] Giordano Teza,et al. Geometric characterization of a cylinder-shaped structure from laser scanner data: Development of an analysis tool and its use on a leaning bell tower , 2013 .
[174] Luigi Fregonese,et al. Surveying and Monitoring for Vulnerability Assessment of an Ancient Building , 2013, Sensors.
[175] Paolo Clini,et al. ALL-IN-ONE LASER SCANNING METHODS FOR SURVEYING, REPRESENTING AND SHARING INFORMATION ON ARCHAEOLOGY. VIA FLAMINIA AND THE FURLO TUNNEL COMPLEX , 2013 .
[176] Michael M. Kazhdan,et al. Screened poisson surface reconstruction , 2013, TOGS.
[177] J. De Matías,et al. LASER SCANNING FOR THE GEOMETRIC STUDY OF THE ALCÁNTARA BRIDGE AND CORIA CATHEDRAL , 2013 .
[178] D. Lague,et al. Accurate 3D comparison of complex topography with terrestrial laser scanner: Application to the Rangitikei canyon (N-Z) , 2013, 1302.1183.
[179] Margherita Zimbardo,et al. Measure of a Limestone Weathering Degree Using Laser Scanner , 2013 .
[180] Dimitri Lague,et al. 3D Terrestrial LiDAR data classification of complex natural scenes using a multi-scale dimensionality criterion: applications in geomorphology , 2011, ArXiv.
[181] Fabio Remondino,et al. Heritage Recording and 3D Modeling with Photogrammetry and 3D Scanning , 2011, Remote. Sens..
[182] Miguel Cervera,et al. Structural Analysis of Masonry Historical Constructions. Classical and Advanced Approaches , 2010 .
[183] Gerald Gartlehner,et al. Semi-automating the manual literature search for systematic reviews increases efficiency. , 2010, Health information and libraries journal.
[184] D. Moher,et al. Preferred Reporting Items for Systematic Reviews and Meta-Analyses: The PRISMA Statement , 2009, BMJ : British Medical Journal.
[185] Maria J Grant,et al. A typology of reviews: an analysis of 14 review types and associated methodologies. , 2009, Health information and libraries journal.
[186] Reinhard Klein,et al. Efficient RANSAC for Point‐Cloud Shape Detection , 2007, Comput. Graph. Forum.
[187] Hans-Peter Kriegel,et al. OPTICS: ordering points to identify the clustering structure , 1999, SIGMOD '99.
[188] Paul J. Besl,et al. A Method for Registration of 3-D Shapes , 1992, IEEE Trans. Pattern Anal. Mach. Intell..
[189] J. Gower. Generalized procrustes analysis , 1975 .
[190] Robert M. Haralick,et al. Textural Features for Image Classification , 1973, IEEE Trans. Syst. Man Cybern..
[191] Z. Walczak,et al. Multi-criteria diagnostics of historic buildings with the use of 3D laser scanning (a case study) , 2023, Bulletin of the Polish Academy of Sciences Technical Sciences.
[192] G. De Lucia,et al. Geometric and Structural Information for the Analysis of Historical Domes: The Case of the SS. Trinità Church in Torino , 2021, 12th International Conference on Structural Analysis of Historical Constructions.
[193] J. Fang,et al. TLS-FEM INTEGRATED STRUCTURAL DEFORMATION ANALYSIS ON THE BEAMLESS HALL AT NANJING, CHINA , 2021, The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences.
[194] F. Fatiguso,et al. AUTOMATIC POINT CLOUD SEGMENTATION FOR THE DETECTION OF ALTERATIONS ON HISTORICAL BUILDINGS THROUGH AN UNSUPERVISED AND CLUSTERING-BASED MACHINE LEARNING APPROACH , 2021, ISPRS Annals of the Photogrammetry, Remote Sensing and Spatial Information Sciences.
[195] L. Ardissono,et al. INTEGRATING MULTIBAND PHOTOGRAMMETRY, SCANNING, AND GPR FOR BUILT HERITAGE SURVEYS: THE FAÇADES OF CASTELLO DEL VALENTINO , 2021, ISPRS Annals of the Photogrammetry, Remote Sensing and Spatial Information Sciences.
[196] Juan Francisco Reinoso Gordo,et al. Digital Graphic Documentation and Architectural Heritage: Deformations in a 16th-Century Ceiling of the Pinelo Palace in Seville (Spain) , 2021, ISPRS Int. J. Geo Inf..
[197] Michal Kedzierski,et al. Validation of terrestrial laser scanning and artificial intelligence for measuring deformations of cultural heritage structures , 2021 .
[198] J. Ginovart,et al. Methodologic Evolution Assessment of Large Deformations on Romanesque Masonry in Val d‘Aran (XII-XIII centuries), Spain , 2021, 12th International Conference on Structural Analysis of Historical Constructions.
[199] S. Takhirov,et al. Structural Health Monitoring of the Juma Mosque in Itchan Kala in Khiva (Uzbekistan): Laser Scanning Combined with Numerical Modelling , 2021, 12th International Conference on Structural Analysis of Historical Constructions.
[200] G. Fabbrocino,et al. DIGITAL MODELS FOR E-CONSERVATION: THE HBRIM OF A BRIDGE ALONG THE ATERNO RIVER , 2021 .
[201] S. Grassi,et al. On the accuracy of UAV photogrammetric survey for the evaluation of historic masonry structural damages , 2020 .
[202] M. Previtali,et al. Wrap-Up Synthesis Model from High-Quality HBIM Complex Models, and Specifications, to Assess Built Cultural Heritage in Fragile Territories (Arquata Del Tronto, Earthquake 2016, the Church of St. Francesco, IT) , 2020, EuroMed.
[203] Haluk Ozener,et al. A Case Study of Deformation Measurements of Istanbul Land Walls via Terrestrial Laser Scanning , 2020, IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing.
[204] Maria Grazia Guerra,et al. Standard quantification and measurement of damages through features characterization of surface imperfections on 3D models: an application on Architectural Heritages , 2020 .
[205] B. Quigley,et al. Structural Health Monitoring and Assessment of Seismic Vulnerability of Historic Monuments on the Great Silk Road Based on Laser Scanning , 2019, RILEM Bookseries.
[206] Giordano Teza,et al. Evaluation of the temperature pattern of a complex body from thermal imaging and 3D information: A method and its MATLAB implementation , 2019, Infrared Physics & Technology.
[207] Enrique Valero,et al. Historic Digital Survey: Reality Capture and Automatic Data Processing for the Interpretation and Analysis of Historic Architectural Rubble Masonry , 2019, RILEM Bookseries.
[208] Paulo B. Lourenço,et al. Parameterization of Structural Faults in Large Historical Constructions for Further Structural Modelling Thanks to Laser Scanning Technology and Computer Vision Algorithms , 2019, RILEM Bookseries.
[209] M. DeJong,et al. Damage Assessment of a Railway Bridge Using Fibre Optic Sensing and Lidar Data , 2019, International Conference on Smart Infrastructure and Construction 2019 (ICSIC).
[210] Belén Riveiro Rodríguez,et al. Laser scanning and its applications to damage detection and monitoring in masonry structures , 2019 .
[211] M. Cozzolino,et al. “ COMBINED USE OF 3D METRIC SURVEYS AND NON-INVASIVE GEOPHYSICAL SURVEYS AT THE STYLITE TOWER (UMM AR-RASAS, JORDAN) „ , 2019 .
[212] Andrea Dall'Asta,et al. Integrated approach for seismic vulnerability analysis of historic massive defensive structures , 2019, Journal of Cultural Heritage.
[213] Yehia H. Miky,et al. Developing a combined Light Detecting And Ranging (LiDAR) and Building Information Modeling (BIM) approach for documentation and deformation assessment of Historical Buildings , 2018 .
[214] Luís F. Ramos,et al. Heritage site preservation with combined radiometric and geometric analysis of TLS data , 2018 .
[215] J. García-Talegóna,et al. ASSESSING PATHOLOGIES ON VILLAMAYOR STONE ( SALAMANCA , SPAIN ) BY TERRESTRIAL LASER SCANNER INTENSITY DATA , 2015 .
[216] Khalid M. Mosalam,et al. LASER SCANNING, MODELING, AND ANALYSIS FOR DAMAGE ASSESSMENT AND RESTORATION OF HISTORICAL STRUCTURES , 2015 .
[217] Paolo Russo,et al. Integrated Measurement Techniques for the Monitoring of the Ancient Walls of Ferrara , 2015 .
[218] Livio De Luca,et al. Laying the Foundations for an Information System Dedicated to Heritage Building Degradation Monitoring Based on the 2D/3D Semantic Annotation of Photographs , 2014, GCH.
[219] Yahya Alshawabkeh,et al. DETECTION AND QUANTIFICATION OF MATERIAL DISPLACEMENTS AT HISTORICAL STRUCTURES USING PHOTOGRAMMETRY AND LASER SCANNING TECHNIQUES , 2013 .
[220] N. Casagli,et al. Integrating radar and laser-based remote sensing techniques for monitoring structural deformation of archaeological monuments , 2013 .
[221] C. Mallet,et al. AIRBORNE LIDAR FEATURE SELECTION FOR URBAN CLASSIFICATION USING RANDOM FORESTS , 2009 .
[222] P. Krsek. Algorithms for Computing Curvatures from Range Data , 2001 .
[223] H. M. Wabgaonkar,et al. Introduction to Non-linear Control Using Artificial Neural Networks , 1992 .