Advancing Deep Learning for Automatic Autonomous Vision-based Power Line Inspection
Permanent lenke
https://hdl.handle.net/10037/16815Åpne
Dato
2019-12-03Type
Doctoral thesisDoktorgradsavhandling
Forfatter
Nguyen, Van NhanSammendrag
Har del(er)
Paper I: Nguyen, V.N., Jenssen, R. & Roverso, D. (2018). Automatic autonomous vision-based power line inspection: A review of current status and the potential role of deep learning. International Journal fo Electrical Power & Energy Systems, 99, 107-120. Also available at https://doi.org/10.1016/j.ijepes.2017.12.016. Accepted manuscript available at https://hdl.handle.net/10037/14790.
Paper II: Nguyen, V.N., Jenssen, R. & Roverso, D. (2019). Intelligent Monitoring and Inspection of Power Line Components Powered by UAVs and Deep Learning. IEEE Power and Energy Technology Systems Journal, 6(1), 11-21. Available in the file “thesis_entire.pdf”. Also available at https://doi.org/10.1109/JPETS.2018.2881429.
Paper III: Nguyen, V.N., Jenssen, R. & Roverso, D. LS-Net: Fast Single-Shot Line-Segment Detector. (Manuscript). Paper IV: Nguyen, N.V., Løkse, S., Wickstrøm, K., Kampffmeyer, M., Roverso, D. & Jenssen, R. SEN: A Novel Dissimilarity Measure for Prototypical Few-Shot Learning Networks. (Manuscript).
Paper IV: Nguyen, N.V., Løkse, S., Wickstrøm, K., Kampffmeyer, M., Roverso, D. & Jenssen, R. SEN: A Novel Dissimilarity Measure for Prototypical Few-Shot Learning Networks. (Manuscript).
Tilknyttede forskningsdata
Yetgin, Ö.E. & Gerek, Ö.N. (2019). Ground Truth of Powerline Dataset (Infrared-IR and Visible Light-VL) [Mendely Data]. http://dx.doi.org/10.17632/twxp8xccsw.9.Forlag
UiT Norges arktiske universitetUiT The Arctic University of Norway
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