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Experimental study on fine motion control of underwater robots.

, , , and . Adv. Robotics, 18 (10): 963-978 (2004)

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Localization of AUVs using visual information of underwater structures and artificial landmarks., , , and . Intell. Serv. Robotics, 10 (1): 67-76 (2017)Experimental tests of vision-based artificial landmark detection using random forests and particle filter., , , and . URAI, page 631-634. IEEE, (2014)Minimum energy based fine motion control of underwater robots in the presence of thruster nonlinearity., , , and . IROS, page 559-564. IEEE, (2003)A New Approach of Detection and Recognition for Artificial Landmarks from Noisy Acoustic Images., , and . RiTA, volume 274 of Advances in Intelligent Systems and Computing, page 851-858. Springer, (2013)Estimation of Vehicle Pose Using Artificial Landmarks for Navigation of an Underwater Vehicle., , and . RiTA, volume 274 of Advances in Intelligent Systems and Computing, page 841-850. Springer, (2013)Motion Planning to Reduce the Thrust of Underwater Robot Using Null-Space Compliance., , , , and . RiTA, volume 1015 of Communications in Computer and Information Science, page 229-235. Springer, (2018)Navigation of Unmanned Surface Vehicles Using Underwater Geophysical Sensing., , , and . IEEE Access, (2020)Development of Vehicle Detection Method on Water Surface Using LiDAR Data for Situation Awareness., , , , and . UR, page 188-193. IEEE, (2022)Relative pose estimation of underwater robot by fusing inertial sensors and optical image., , , , and . URAI, page 204-208. IEEE, (2014)Underwater vehicle localization using angular measurements of underwater acoustic sources., and . URAI, page 235-238. IEEE, (2015)