Remote sensing for shallow bathymetry: A systematic review

被引:11
作者
He, Jinchen [1 ]
Zhang, Shuhang [1 ]
Cui, Xiaodong [1 ]
Feng, Wei [1 ]
机构
[1] Sun Yat Sen Univ, Sch Geospatial Engn & Sci, Zhuhai 519082, Peoples R China
关键词
Shallow-water bathymetry; Bathymetric mapping; Remote sensing; Satellite-derived bathymetry; Unmanned aerial vehicle; Through-water photogrammetry; Airborne LiDAR bathymetry; Machine learning; SATELLITE-DERIVED BATHYMETRY; SPATIAL-RESOLUTION IMAGERY; GREENLAND ICE-SHEET; WATER BATHYMETRY; NEARSHORE BATHYMETRY; HYPERSPECTRAL IMAGERY; NEURAL-NETWORK; RADIOMETRIC CALIBRATION; MULTISPECTRAL IMAGERY; STREAM BATHYMETRY;
D O I
10.1016/j.earscirev.2024.104957
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Shallow bathymetric mapping is important for navigation safety and geomorphologic, hydrologic and oceanographic research. However, field measurements and shipborne sonar are inefficient and dangerous to operate in shallow-water areas. In recent years, owing to its high efficiency, non-contact, and repeated observation benefits, remotely sensed bathymetry has grown quickly and is now being explored in depth. Spectral, photo, laser, and wave-derived bathymetry are among the common methods, which use platforms such as satellites, aircraft, and drones, and sensors such as optical cameras, lasers, and radars. These techniques provide bathymetry for shallow seas, rivers, lakes, and reservoirs. However, existing reviews are either outdated or cover just one aspect of bathymetry; a systematic review is needed. In this study, a bibliometric analysis of peer-reviewed research papers retrieved from the Scopus database was conducted. Based on this analysis, we further summarize the current methods, platforms, sensors, and applications in remote sensing bathymetry, and present our perspectives. Our results indicate that satellite-derived bathymetry is the current focus of this subject, while emerging drones generate higher-resolution bathymetric data. In addition, spectrally derived bathymetry is widely implemented in shallow waters, and laser bathymetry is highly accurate, while wave-derived bathymetry is an effective supplement for existing optical methods in coastal waters. Meanwhile, water penetrating radar, tethered sonar, and satellite altimetry are widely used for inland water bathymetry. However, single bathymetric approaches have their own limitations and typical physical/empirical models are often unable to accurately retrieve water depths in complicated situations. Therefore, remote sensing-based shallow-water bathymetry is moving towards data-driven modeling and multi-source coupling.
引用
收藏
页数:18
相关论文
共 191 条
[1]   Correcting Image Refraction: Towards Accurate Aerial Image-Based Bathymetry Mapping in Shallow Waters [J].
Agrafiotis, Panagiotis ;
Karantzalos, Konstantinos ;
Georgopoulos, Andreas ;
Skarlatos, Dimitrios .
REMOTE SENSING, 2020, 12 (02)
[2]   DepthLearn: Learning to Correct the Refraction on Point Clouds Derived from Aerial Imagery for Accurate Dense Shallow Water Bathymetry Based on SVMs-Fusion with LiDAR Point Clouds [J].
Agrafiotis, Panagiotis ;
Skarlatos, Dimitrios ;
Georgopoulos, Andreas ;
Karantzalos, Konstantinos .
REMOTE SENSING, 2019, 11 (19)
[3]   Convolutional Neural Network to Retrieve Water Depth in Marine Shallow Water Area From Remote Sensing Images [J].
Ai, Bo ;
Wen, Zhen ;
Wang, Zhenhua ;
Wang, Ruifu ;
Su, Dianpeng ;
Li, Chengming ;
Yang, Fanlin .
IEEE JOURNAL OF SELECTED TOPICS IN APPLIED EARTH OBSERVATIONS AND REMOTE SENSING, 2020, 13 (13) :2888-2898
[4]   Coastal Bathymetry Estimation from Sentinel-2 Satellite Imagery: Comparing Deep Learning and Physics-Based Approaches [J].
Al Najar, Mahmoud ;
Benshila, Rachid ;
El Bennioui, Youssra ;
Thoumyre, Gregoire ;
Almar, Rafael ;
Bergsma, Erwin W. J. ;
Delvit, Jean-Marc ;
Wilson, Dennis G. .
REMOTE SENSING, 2022, 14 (05)
[5]   Nearshore Bathymetry From Fusion of Sentinel-2 and ICESat-2 Observations [J].
Albright, Andrea ;
Glennie, Craig .
IEEE GEOSCIENCE AND REMOTE SENSING LETTERS, 2021, 18 (05) :900-904
[6]   Monitoring Short-Term Morphobathymetric Change of Nearshore Seafloor Using Drone-Based Multispectral Imagery [J].
Alevizos, Evangelos ;
Alexakis, Dimitrios D. .
REMOTE SENSING, 2022, 14 (23)
[7]   Fusion of Drone-Based RGB and Multi-Spectral Imagery for Shallow Water Bathymetry Inversion [J].
Alevizos, Evangelos ;
Oikonomou, Dimitrios ;
Argyriou, Athanasios, V ;
Alexakis, Dimitrios D. .
REMOTE SENSING, 2022, 14 (05)
[8]   Assessment of PRISMA Level-2 Hyperspectral Imagery for Large Scale Satellite-Derived Bathymetry Retrieval [J].
Alevizos, Evangelos ;
Le Bas, Tim ;
Alexakis, Dimitrios D. .
MARINE GEODESY, 2022, 45 (03) :251-273
[9]   Evaluation of radiometric calibration of drone-based imagery for improving shallow bathymetry retrieval [J].
Alevizos, Evangelos ;
Alexakis, Dimitrios D. .
REMOTE SENSING LETTERS, 2022, 13 (03) :311-321
[10]   Wave-derived coastal bathymetry from satellite video imagery: A showcase with Pleiades persistent mode [J].
Almar, Rafael ;
Bergsma, Erwin W. J. ;
Maisongrande, Philippe ;
Melo de Almeida, Luis Pedro .
REMOTE SENSING OF ENVIRONMENT, 2019, 231