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Optimization of Multi-LED Setups for Underwater Robotic Vision Systems.

, , , , , and . ICPR Workshops (2), volume 12662 of Lecture Notes in Computer Science, page 390-397. Springer, (2020)

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Towards Cross Domain Transfer Learning for Underwater Correspondence Search., , , and . ICIAP (3), volume 13233 of Lecture Notes in Computer Science, page 461-472. Springer, (2022)MaCal - Macro Lens Calibration and the Focus Stack Camera Model., , , and . 3DV, page 136-144. IEEE, (2021)Optimization of Multi-LED Setups for Underwater Robotic Vision Systems., , , , , and . ICPR Workshops (2), volume 12662 of Lecture Notes in Computer Science, page 390-397. Springer, (2020)Virtual Reality for Simulating Autonomous Deep-Space Navigation and Mining., , , , , , , , , and 6 other author(s). ICAT-EGVE (Posters and Demos), Eurographics Association, (2014)Refractive COLMAP: Refractive Structure-from-Motion Revisited., , , and . CoRR, (2024)Deep Sea Robotic Imaging Simulator., , , , and . ICPR Workshops (2), volume 12662 of Lecture Notes in Computer Science, page 375-389. Springer, (2020)In-Situ Joint Light and Medium Estimation for Underwater Color Restoration., , , and . ICCVW, page 3724-3733. IEEE, (2021)Multi-Sensor Fusion and Active Perception for Autonomous Deep Space Navigation., , and . FUSION, page 2596-2605. IEEE, (2018)Active Perception for Autonomous Systems : In a Deep Space Navigation Scenario (Aktive Wahrnehmung für autonome Systeme : In einem Weltraumsnavigationsszenario). Bremen University, Germany, (2019)base-search.net (ftsubbremen:oai:media.suub.uni-bremen.de:Publications/elib/1686).Visual Tomography: Physically Faithful Volumetric Models of Partially Translucent Objects., , , and . 3DV, page 1605-1615. IEEE, (2024)