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Virtual Planning and Testing of AUV Paths for Underwater Photogrammetry.

, , , , , , , , , and . VISIGRAPP (1: GRAPP), page 93-101. SCITEPRESS, (2020)

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Making the Invisible Visible: Underwater Malta - A Virtual Museum for Submerged Cultural Heritage., , , and . Remote. Sens., 13 (8): 1558 (2021)Machine Learning Techniques for AUV Side-Scan Sonar Data Feature Extraction as Applied to Intelligent Search for Underwater Archaeological Sites., , , , and . FSR, volume 16 of Springer Proceedings in Advanced Robotics, page 219-233. Springer, (2019)Underwater Photogrammetry Reconstruction: GPU Texture Generation from Videos Captured via AUV., , , and . ISVC (1), volume 11844 of Lecture Notes in Computer Science, page 127-138. Springer, (2019)Archaeology via underwater robots: Mapping and localization within maltese cistern systems., , , and . ICARCV, page 662-667. IEEE, (2008)Mapping and visualizing ancient water storage systems with an ROV - An approach based on fusing stationary scans within a particle filter., , , , , and . ROBIO, page 538-544. IEEE, (2012)AUV motion-planning for photogrammetric reconstruction of marine archaeological sites., , , , , , and . ICRA, page 5096-5103. IEEE, (2017)Surface Reconstruction of Maltese Cisterns Using ROV Sonar Data for Archeological Study., , , , , , , , , and 2 other author(s). ISVC (1), volume 6938 of Lecture Notes in Computer Science, page 461-471. Springer, (2011)The Malta cistern mapping project: Underwater robot mapping and localization within ancient tunnel systems., , , , , and . J. Field Robotics, 27 (4): 399-411 (2010)Uncertainty Visualization and Hole Filling for Geometric Models of Ancient Water Systems., , , , and . GRAPP/IVAPP, page 593-600. SciTePress, (2013)Virtual Planning and Testing of AUV Paths for Underwater Photogrammetry., , , , , , , , , and . VISIGRAPP (1: GRAPP), page 93-101. SCITEPRESS, (2020)