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Articles

  1. Aguilar, R., Noel, M.F., Briceño, C., Arce, D., Castañeda, B. & Ramos, L.F. 2015, Geomatics’ procedures and dynamic identification for the structural survey of the church of ‘San Juan Bautista de Huaro’ in Perú

  2. Floreano, D. and Wood, R.J., 2015, Science, technology and the future of small autonomous drones. Nature, 521(7553), p.460.

  3. Gorman, S., Dreazen, Y.J. and Cole, A., 2009, Insurgents hack US drones, Wall Street Journal, 17.          

  4. Italian Space Agency (ASI). 2019, Earth Observation, Remote Sensing, and Geoscientific Ground Investigations for Archaeological and Heritage Research.

  5. Karachaliou, E., Georgiou, E., Psaltis, D. & Stylianidis, E. 2019, UAV FOR MAPPING HISTORIC BUILDINGS: FROM 3D MODELLING TO BIM

  6. Kugeri, A., Randolph-Quinneyi, P. & Elliott, M. 2016, Multimodal spatial mapping and visualisation of Dinaledi Chamber and Rising Star Cave

  7. Kunze, O. 2016, Replicators, Ground Drones and Crowd Logistics A Vision of Urban Logistics in the Year 2030. ​​

  8. Oczipka, M., Bemmann, J., Piezonka, H., Munkabayar, J., Ahrens, B., Achtelik, M. & Lehmann, F., 2009, October. Small drones for geo-archaeology in the steppe: locating and documenting the archaeological heritage of the Orkhon Valley in Mongolia. In Remote Sensing for Environmental Monitoring, GIS Applications, and Geology IX (Vol. 7478, p. 747806). International Society for Optics and Photonics.

  9. Partsinevelos, P., Skoutelis, N., Tripolitsiotis, A., Tsatsarounos, S., Tsitonaki, A. & Zervos, P., 2015, Mapping of traditional settlements by unmanned airborne vehicles towards architectural restoration.

  10. Everaerts J., 2008, The use of unmanned aerial vehicles (UAVs) for remote sensing and mapping, The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, 37.

  11. Quang, H.K., Binh, N.T.T., Phong, N.M. & Vu, D.N., 2017, Terrestrial 3D Laser Scanning to Rebuild Son Doong Cave

  12. Kunertova, D. (2020) Military drones in Europe: The European Defense Market and the spread of military UAV technology, University of Southern Denmark.

  13. Watlet A., Triantafyllou A,. Kaufmann O. & Le Mouelic S., 2016, Exploring structures of the Rochefort Cave (Belgium) with 3D models from LIDAR scans and UAV photoscans, Harvardedu.

  14. Singh, R. and Kumar, S. (2025) A comprehensive insights into drones: History, classification, architecture, navigation, applications, challenges, and future trends, arXiv.org.

  15. Zhang, G., Shang, B., Chen, Y. & Moyes, H., 2017, SmartCaveDrone: 3D cave mapping using UAVs as robotic co-archaeologists.

  16. Xu, H. et al. (2023) Design and experiment of Ecological Plant Protection UAV based on ozonated water spraying, MDPI.

  17. Nex, F. & Remondino, F., 2013, UAV for 3D mapping applications: a review, Applied Geomatics, 6(1), pp.1-15.

  18. Yaacoub, J., Noura, H., Salman, O. & Chehab, A., 2020, Security analysis of drones systems: Attacks, limitations, and recommendations, Internet of Things, 11, p.100218.  ​

  19. Berteška, T. & Ruzgienė, B., 2013, PHOTOGRAMMETRIC MAPPING BASED ON UAV IMAGERY, Geodesy and Cartography, 39(4), pp.158-163.

  20. Baber, C., Morin, C., Parekh, M., Cahillane, M. & Houghton, R., 2011, Multimodal control of sensors on multiple simulated unmanned vehicles. Ergonomics, 54(9), pp.792-805.​

  21. Yamamoto, N. & Uchida, N., 2018, Improvement of Image Processing for a Collaborative Security Flight Control System with Multiple Drones. 2018 32nd International Conference on Advanced Information Networking and Applications Workshops (WAINA). ​

  22. Saska, M., 2018. Eagle.one-autonomous drone hunter using onboard AI for safe elimination of unauthorized aerial systems. Prague.

  23. Bondi, E., Fang, F., Hamilton, M., Kar, D., Dmello, D., Choi, J., Hannaford, R., Iyer, A., Joppa, L., Tambe, M. and Nevatia, R., 2018. SPOT Poachers in Action: Augmenting Conservation Drones with Automatic Detection in Real Time.​

  24. Silvagni M., Tonoli A., Zenerino E., Chiaberge M., 2015. Multipurpose UAV for search and rescue operations in mountain avalanche events. pp.18-33​

  25. Saleem M., Gopi E., Ramesh Kumar R., 2017. Fabrication of solar energy UAV. pp.74-79​

  26. Jablonowski M., 2020. Beyond drone vision: the embodied telepresence of first-person-view drone flight. pp. 344-358.​

  27. Gahrn-Andersen R., 2020. Making the hidden visible: handy unhandiness and the sensorium of leakage-detecting drones. pp. 272-285​

  28. Burridge B., 2009. Post-Modern Warfighting with Unmanned Vehicle Systems: Esoteric Chimera or Essential Capability?.pp.20-23.

  29. Oosedo A., Konno A., Matsumoto T., 2012. Design and Attitude Control of a Quad-Rotor Tail-Sitter Vertical Takeoff and Landing Unmanned Aerial Vehicle. pp.307-326.

  30. Ozawa R., Chaumette F., Dynamic visual servoing with image moments for an unmanned aerial vehicle using a virtual spring approach. pp.683-696.

  31. Casbeer D., Kingston D., Beard R., McLain T., 2004. Cooperative forest fire surveillance using a team of small unmanned air vehicles. pp.351-360.

  32. Cao Z., Zhang Y., 2014. Analysis and Design of Electromagnetic Compatibility Techniques for Unmanned Aerial Vehicle Power in Aeromagnetic Survey. pp.1409-1418.​​​

  33. Su X., Dong S., Liu S., Cracknell A., Zhang W., Liu G., 2017. Using an unmanned aerial vehicle (UAV) to study wild yak in the highest desert in the world. pp.5490-5503.

  34. Massarellia C., Matarresea R., Uricchioa V., Muolob M., Laterzaband M., Ernesto L., 2016. Detection of asbestos-containing materials inagro-ecosystem by the use of airborne hyperspectralCASI-1500 sensor including the limited use of two UAVsequipped with RGB cameras  Vol. 38, nos. 8–10, pp.2135–2149.​

  35. Sanza D., Valenteb J., del Cerroa J., Coloradocand J., Barrientos A., 2015. Safe operation of mini UAVs: a review of regulation and best practices, Advanced Robotics, Vol. 29, No. 19, pp.1221–1233.​

  36. Alizadehsalehia S., Yitmena I., Celikaand T., Arditi D., 2018. The effectiveness of an integrated BIM/UAV model in managing safety on construction sites, International Journal of Occupational Safety and Ergonomics , Vol. 26, No. 4, pp.829–844.​

  37. Wanga F., Zoua Y., del Rey Castillob E., Dinga Y., Xua Z., Zhaoa H., 2022. Automated UAV path-planning for high-quality photogrammetric 3D bridgereconstruction ,Structure and infrastructure engineering, pp.1-20.​

  38. Sharjeela A., Abbas Zilqurnain Naqvia S., Ahsan M., 2021. Real time drone detection by moving camera using COROLA and CNN algorithm ,Journal of the chinese institute of engineers, Vol. 44, No. 2, pp.128–137.​

  39. Rančić, K. et al. (2023) Animal detection and counting from UAV images using convolutional neural networks, Drones, 7(3), p. 179.​

  40. AL-Dosari, K., Hunaiti, Z. and Balachandran, W. (2023) Systematic review on civilian drones in safety and security applications, Drones, 7(3), p. 210. ​

  41. Nordin, M. et al. (2022) Collaborative unmanned vehicles for inspection, maintenance, and repairs of offshore wind turbines, Drones, 6(6), p. 137. ​

  42. Mishra, R. (2022) A comprehensive review on involvement of drones in covid-19 pandemics, ECS Transactions, 107(1), pp. 341–351. ​

  43. Clasing, R. et al. (2023) Remote Sensing with uavs for modeling floods: An exploratory approach based on three Chilean rivers, Water, 15(8), p. 1502. ​

  44. Rezaldi, M.Y. et al. (2023) UAV-assisted heavy metal tracking in oil palm plantations: Present applications and future prospects, Remote Sensing Letters, 15(1), pp. 55–65.​

  45. Kokate, P. et al. (2023) Review on Drone-Assisted Air-Quality Monitoring Systems .​

  46. Hambling, D. (2024) What does Ukraine’s million-drone army mean for the future of war?, New Scientist, 261(3475), p. 12. ​

  47. Latte, N. et al. (2020) Upscaling UAS Paradigm to ultralight aircrafts: A low-cost multi-sensors system for large scale aerial photogrammetry, MDPI. ​

  48. VO, T.M. et al. (2023) Internet of things (IOT): Wireless Communications for Unmanned Aircraft System, The Eurasia Proceedings of Science Technology Engineering and Mathematics, 23, pp. 388–399. ​

  49. Gomez, C. and Purdie, H. (2016) UAV- based photogrammetry and geocomputing for hazards and Disaster Risk Monitoring – A Review, Geoenvironmental Disasters, 3(1). 

  50. Pajares, G. (2015) Overview and current status of remote sensing applications based on Unmanned Aerial Vehicles (uavs), Latest TOC RSS.​

  51. Khawaja, W. et al. (2018) UWB air-to-ground propagation channel measurements and modeling using uavs, arXiv.org.​

  52. Javaid, S. et al. (2023) Communication and control in collaborative uavs: Recent advances and future trends, arXiv.org.

  53. Mohsan, S.A. et al. (2022) Towards the Unmanned Aerial Vehicles (uavs): A comprehensive review, Drones, 6(6), p. 147.

  54. Becerra, V., 2019, Autonomous Control of Unmanned Aerial Vehicles, Electronics.

  55. Stumph, B. et al. (2019) Detecting invasive insects with unmanned aerial vehicles, 2019 International Conference on Robotics and Automation (ICRA), pp. 648–654.

  56. Walter, V. et al. (2018) Mutual localization of uavs based on blinking ultraviolet markers and 3D time-position Hough Transform, 2018 IEEE 14th International Conference on Automation Science and Engineering (CASE), pp. 298–303. ​

  57. Rane, N.L. and Choudhary, S.P. (2023) Remote Sensing (RS), UAV/drones, and machine learning (ML) as powerful techniques for precision agriculture: Effective applications in agriculture, International Research Journal of Modernization in Engineering Technology and Science, 05(04), pp. 1–18.

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