Large-scale application test and evaluation of an airborne lidar bathymetry system-A case study in China's coastal zone

被引:0
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作者
Jin D. [1 ,2 ,3 ]
Wu F. [3 ]
Yu K. [3 ]
Li Q. [3 ]
Zhang Z. [3 ]
Zhang Y. [3 ]
Zhang W. [3 ]
Li Y. [3 ]
Ji X. [3 ]
Gao Y. [4 ]
Li J. [1 ,2 ]
Gong J. [1 ,2 ]
机构
[1] Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing
[2] University of Chinese Academy of Sciences, Beijing
[3] China Aero Geophysical Survey & Remote Sensing Center for Natural Resources, Beijing
[4] Teledyne Optech, Inc., L4K5Z8, ON
关键词
Airborne lidar bathymetry; Coastal zone; CZMIL Nova Ⅱ; Depth measurement accuracy; Maximum depth penetration; South China Sea;
D O I
10.3788/IRLA20200317
中图分类号
学科分类号
摘要
Airborne lidar bathymetry (ALB) was an effective technology for simultaneous terrain and shallow water bathymetry mapping in coastal zones. Up to present, there had not been mature and practical ALB systems in China, and the experience in large-scale airborne lidar bathymetry production and application was also very little. It was urgent to carry out airborne lidar bathymetry system application test. Using the CZMIL Nova II system, we carried out the application test of the ALB in terms of maximum depth penetration, depth measurement accuracy, and measurement efficiency in Hainan, Guangdong, Guangxi which were located in the northern part of the South China Sea. The results show that the maximum depth penetration of the three typical areas of Wuzhizhou Island in Hainan, Weizhou Island in Guangxi, and Chixi Town in Taishan City in Guangdong reached 30, 16, and 3 m respectively, accorded with the system' s nominal maximum depth penetration capacity. The maximum depth penetration mainly depends on water clarity, bottom reflectivity, flight altitude and other environmental factors. The depth measurement accuracy in Wuzhizhou Island, Hainan is 0.369 m at the 30 m depth, accorded with the system' s nominal accuracy. Based on the Yun -12E aircraft and conventional flight parameters, the effective coverage area is about 100 km2 and the flight line length is about 500 km in a flight mission, the annual coverage area is about 8 000 -12 000 km2 and the annual flight line length is about 40 000~60 000 km. This was the large-scale application test of the airborne lidar bathymetry system in the coastal zone of China and it would have important reference significance and scientific value for the research and application of domestic airborne lidar bathymetry technology. © 2020, Editorial Board of Journal of Infrared and Laser Engineering. All right reserved.
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  • [11] Schwarz R, Mandlburger G, Pfennigbauer M, Et al., Design and evaluation of a full-wave surface and bottom-detection algorithm for LiDAR bathymetry of very shallow waters, ISPRS Journal of Photogrammetry and Remote Sensing, 150, pp. 1-10, (2019)
  • [12] Wright C W, Kranenburg C, Battista T A, Et al., Depth calibration and validation of the experimental advanced airborne research lidar, EAARL-B, Journal of Coastal Research, 76, SI, pp. 4-17, (2016)
  • [13] Kotilainen A T, Kaskela A M., Comparison of airborne LiDAR and shipboard acoustic data in complex shallow water environments: Filling in the white ribbon zone, Marine Geology, 385, pp. 250-259, (2017)
  • [14] He Yan, Hu Shanjiang, Chen Weibiao, Et al., Research progress of domestic airborne dual-frequency lidar detection technology, Laser & Optoelectronics Progress, 55, 8, (2018)
  • [15] Peng Lin, Liu Yanxiong, Deng Cailong, Et al., Experiment of Airborne Laser Bathymetry, Hydrographic Surveying and Charting, 34, 4, pp. 35-37, (2014)
  • [16] Wang Zongwei, Zhu Shicai, Lu Gang, Et al., CZMIL airborne laser sounding system and its testing evaluation in Luoma Lake, Journal of Marine Sciences, 35, 3, pp. 20-26, (2017)
  • [17] Xu Guangxiu, Zhai Guojun, Wu Taiqi, Et al., The key technical issues on airborne lidar bathymetry operation, Hydrographic Surveying and Charting, 39, 2, pp. 45-49, (2019)
  • [18] Hu Shanjiang, He Yan, Chen Weibiao, Et al., Design of airborne dual-frequency laser radar system, Infrared and Laser Engineering, 47, 9, (2018)
  • [19] Huang Tiancheng, Tao Bangyi, He Yan, Et al., Waveform processing methods in domestic airborne lidar bathymetry system, Laser & Optoelectronics Progress, 55, 8, (2018)
  • [20] Chen P, Pan D., Ocean optical profiling in south china sea using airborne LiDAR, Remote Sensing, 11, 15, (2019)