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Robert Skulstad
Robert Skulstad
Postdoc, Dept. of Ocean operations and Civil Engineering, Norwegian University of Science and Technology
Verified email at ntnu.no
Title
Cited by
Cited by
Year
A hybrid approach to motion prediction for ship docking—Integration of a neural network model into the ship dynamic model
R Skulstad, G Li, TI Fossen, B Vik, H Zhang
IEEE Transactions on Instrumentation and Measurement 70, 1-11, 2020
642020
Data-driven uncertainty and sensitivity analysis for ship motion modeling in offshore operations
X Cheng, G Li, R Skulstad, P Major, S Chen, HP Hildre, H Zhang
Ocean Engineering 179, 261-272, 2019
482019
An efficient neural-network based approach to automatic ship docking
Y Shuai, G Li, X Cheng, R Skulstad, J Xu, H Liu, H Zhang
Ocean Engineering 191, 106514, 2019
462019
Dead reckoning of dynamically positioned ships: Using an efficient recurrent neural network
R Skulstad, G Li, TI Fossen, B Vik, H Zhang
IEEE Robotics & Automation Magazine 26 (3), 39-51, 2019
432019
Autonomous net recovery of fixed-wing UAV with single-frequency carrier-phase differential GNSS
R Skulstad, C Syversen, M Merz, N Sokolova, T Fossen, T Johansen
IEEE Aerospace and Electronic Systems Magazine 30 (5), 18-27, 2015
432015
Modeling and analysis of motion data from dynamically positioned vessels for sea state estimation
X Cheng, G Li, R Skulstad, S Chen, HP Hildre, H Zhang
2019 International Conference on Robotics and Automation (ICRA), 6644-6650, 2019
332019
Incorporating approximate dynamics into data-driven calibrator: A representative model for ship maneuvering prediction
T Wang, G Li, LI Hatledal, R Skulstad, V Æsøy, H Zhang
IEEE Transactions on Industrial Informatics 18 (3), 1781-1789, 2021
312021
A neural-network-based sensitivity analysis approach for data-driven modeling of ship motion
X Cheng, G Li, R Skulstad, S Chen, HP Hildre, H Zhang
IEEE Journal of Oceanic Engineering 45 (2), 451-461, 2019
292019
Net recovery of UAV with single-frequency RTK GPS
R Skulstad, CL Syversen, M Merz, N Sokolova, TI Fossen, TA Johansen
2015 IEEE Aerospace Conference, 1-10, 2015
282015
A neural network approach to control allocation of ships for dynamic positioning
R Skulstad, G Li, H Zhang, TI Fossen
IFAC-PapersOnLine 51 (29), 128-133, 2018
272018
A deep learning approach to detect and isolate thruster failures for dynamically positioned vessels using motion data
P Han, G Li, R Skulstad, S Skjong, H Zhang
IEEE Transactions on Instrumentation and Measurement 70, 1-11, 2020
262020
Co-simulation as a fundamental technology for twin ships
LI Hatledal, R Skulstad, G Li, A Styve, H Zhang
Institutt for teknisk kybernetikk, NTNU, 2020
232020
A digital twin of the research vessel gunnerus for lifecycle services: Outlining key technologies
H Zhang, G Li, LI Hatledal, Y Chu, A Ellefsen, P Han, P Major, R Skulstad, ...
IEEE Robotics & Automation Magazine 30 (3), 6-19, 2022
202022
Spectralseanet: Spectrogram and convolutional network-based sea state estimation
X Cheng, G Li, R Skulstad, H Zhang, S Chen
IECON 2020 The 46th Annual Conference of the IEEE Industrial Electronics …, 2020
162020
Data-driven modeling for transferable sea state estimation between marine systems
X Cheng, G Li, P Han, R Skulstad, S Chen, H Zhang
IEEE Transactions on Intelligent Transportation Systems 23 (3), 2561-2571, 2021
142021
Low-cost instrumentation system for recovery of fixed-wing UAV in a net
R Skulstad, CL Syversen
Master's thesis, Norwegian University of Science and Technology, 2014
92014
A multiple-output hybrid ship trajectory predictor with consideration for future command assumption
M Kanazawa, R Skulstad, G Li, LI Hatledal, H Zhang
IEEE sensors journal 21 (23), 27124-27135, 2021
82021
A co-operative hybrid model for ship motion prediction
R Skulstad, G Li, TI Fossen, T Wang, H Zhang
82021
Probability-based ship encounter classification using ais data
M Zhu, W Tian, R Skulstad, H Zhang, G Li
2023 3rd International Conference on Computer, Control and Robotics (ICCCR …, 2023
42023
Knowledge and data in cooperative modeling: Case studies on ship trajectory prediction
M Kanazawa, T Wang, R Skulstad, G Li, H Zhang
Ocean Engineering 266, 112998, 2022
42022
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