[1] |
XU L G, GUO T, WU Sh H, et al. Fast extraction and reconstruction of power line based on point cloud data features[J]. Laser Technology, 2020, 44(2): 244-249(in Chinese). |
[2] |
MA W F, WANG Ch, WANG J L, et al. Inversion of ice thickness for high voltage transmission line based on a LiDAR point cloud[J]. Power System Protection and Control, 2021, 49(4): 89-95(in Chinese). |
[3] |
ZHOU X F. Automatic extraction of power line and tower based on LiDAR data [D]. Mianyang: Southwest University of Science and Technology, 2019: 28-35(in Chinese). |
[4] |
LIN X G, DUAN M Y, ZHANG J X, et al. A method of reconstructing 3D powerlines from airborne LiDAR point clouds[J]. Surveying and Mapping Science, 2016, 41(1): 109-114(in Chinese). |
[5] |
MA W F, WANG J L, WANG Ch, et al. Transmission line sag simulation from airborne LiDAR point cloud data[J]. Journal of Geomatics Science and Technology, 2019, 36(4): 394-399(in Chinese). |
[6] |
SHI H Y, GUO T, WANG D, et al. Power line suspension point location method based on laser point cloud[J]. Laser Technology, 2020, 44(3): 364-370(in Chinese). |
[7] |
ZHU C J. Research on automatic analysis of hidden danger of unmanned aerial vehicle transmission line inspection tree barrier[D]. Zibo: Shandong University of Technology, 2020: 16-27(in Chinese). |
[8] |
WU J J, LI L, FANG P K, et al. Effective organization and visualization of helicopter-based laser scanning data in power line inspection[J]. Laser Technology, 2019, 43(3): 318-323(in Chinese). |
[9] |
CHEN L M, ZHANG W, YU H, et al. Application of UAV-based LiDAR system for power line surveys [J]. Surveying and Mapping Bulletin, 2017(s1): 176-178(in Chinese). |
[10] |
PU Sh, WU X Q, YAN Zh L, et al. Automatic recognition of defects on transmission lines from UAV-borne laser scanning data[J]. Remote Sensing Information, 2017, 32(4): 52-57 (in Chinese). |
[11] |
SHI L, GUO T, PENG Ch, et al. Segmentation of laser point cloud and safety detection of power lines[J]. Laser Technology, 2019, 43(3): 341-346(in Chinese). |
[12] |
POULIOT N, RICHARD P, MONTAMBAULT S. LineScout power line robot: Characterization of a UTM-30LX LiDAR system for obstacle detection[C]//IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS). New York, USA: IEEE, 2012: 25-46. |
[13] |
WANG S B, LI M X, LI H R, et al. Research on obstacle detection of transmission line corridor based on 3-D laser lidar technology[J]. Electronic Technology, 2019, 32(4): 81-84 (in Chinese). |
[14] |
CHEN L. Information extraction of transmission line tower based on high density airborne laser point cloud[D]. Fuxin: Liaoning Technical University, 2016: 30-39(in Chinese). |
[15] |
SHEN X J, DU Y, WANG R D, et al. Inclination measurement of transmission line tower based on terrestrial 3-D lidar [J]. Journal of Electronic Measurement and Instrumentation, 2017, 31(4): 516-521(in Chinese). |
[16] |
GUO Q Sh, FENG D P, LIU Y G, et al. An algorithm for computing the smallest-area enclosing rectangle of spatial geometric object(s) [J]. Geomatics and Information Science of Wuhan University, 2014, 39(2): 177-180(in Chinese). |
[17] |
YANG Y X. Adaptively robust least squares estimation[J]. Acta Geodaetica et Cartographica Sinica, 1996, 25(3): 206-211(in Chinese). |
[18] |
YANG L, SHEN Y Zh, LOU L Zh. Equivalent weight robust estimation method based on median parameter estimates[J]. Acta Geodaetica et Cartographica Sinica, 2011, 40(1): 28-32(in Chinese). |
[19] |
LIU Ch, LIU Ch J, WANG S, et al. Two new improvements of IGGⅢ scheme[J]. Bulletin of Surveying and Mapping, 2016(10): 54-57(in Chinese). |
[20] |
YANG Y B, TIAN L Y, ZHANG K Y, et al. Estimation of plane point cloud robustness based on IGGⅢ weight function[J]. Geospatial Information, 2019, 17(10): 118-121(in Chinese). |