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Toward ice-relative navigation of underwater robotic vehicles under moving sea ice: Experimental evaluation in the Arctic sea.

, , , , and . ICRA, page 1527-1534. IEEE, (2015)

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Autonomous Underwater Vehicle localization in a spatiotemporally varying water current field., , and . ICRA, page 565-572. IEEE, (2015)Towards In-Situ Calibration of Gyro and Doppler Navigation Sensors for Precision Underwater Vehicle Navigation., and . ICRA, page 4016-4023. IEEE, (2002)Mid-water current aided localization for autonomous underwater vehicles., , , , and . Auton. Robots, 40 (7): 1207-1227 (2016)Front delineation and tracking with multiple underwater vehicles., , , , , , , , , and 2 other author(s). J. Field Robotics, 36 (3): 568-586 (2019)Toward ice-relative navigation of underwater robotic vehicles under moving sea ice: Experimental evaluation in the Arctic sea., , , , and . ICRA, page 1527-1534. IEEE, (2015)Field performance evaluation of new methods for in-situ calibration of attitude and doppler sensors for underwater vehicle navigation., , , and . ICRA, page 5334-5339. IEEE, (2012)Rotation Identification in Geometric Algebra: Theory and Application to the Navigation of Underwater Robots in the Field., and . J. Field Robotics, 32 (5): 632-654 (2015)Adaptive Identification on the Group of Rigid Body Rotations., and . ICRA, page 3256-3261. IEEE, (2005)Demonstration of Autonomous Nested Search for Local Maxima Using an Unmanned Underwater Vehicle., , , , , , , , , and . ICRA, page 1888-1895. IEEE, (2020)Closed-loop one-way-travel-time navigation using low-grade odometry for autonomous underwater vehicles., , , and . J. Field Robotics, 35 (4): 421-434 (2018)