High-Resolution Monitoring of Glacier Mass Balance and Dynamics with Unmanned Aerial Vehicles on the Ningchan No. 1 Glacier in the Qilian Mountains, China
Abstract
:1. Introduction
2. Study Area
3. Data and Methods
3.1. Unmanned Aerial Vehicle Surveys
3.2. Orthophotos and Digital Surface Models Generated from UAVs
3.3. Glacier Extent, Mass Balance and Surface Velocity Derived from UAVs
3.4. Mass Balance and Surface Velocity from the Glaciological Method
4. Results
4.1. Glacier Terminus Retreat from 2014 to 2020
4.2. Glacier Surface Elevation Change and Velocity
5. Discussion
5.1. Comparison of the Results of the UAV and Glaciological Method
5.2. Factors Influencing Glacier Changes
5.3. Comparison with Previous Results
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- IPCC. Climate Change 2013, The Physical Science Basis, Working Group I Contribution to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change; WMO/UNEP, Cambridge University Press: Geneva, Switzerland, 2013. [Google Scholar]
- Immerzeel, W.W.; van Beek, L.P.H.; Bierkens, M.F.P. Climate Change Will Affect the Asian Water Towers. Science 2010, 328, 1382–1385. [Google Scholar] [CrossRef] [PubMed]
- Immerzeel, W.W.; Pellicciotti, F.; Bierkens, M.F.P. Rising river flows throughout the twenty-first century in two Himalayan glacierized watersheds. Nat. Geosci. 2013, 6, 742–745. [Google Scholar] [CrossRef]
- Pritchard, H.D. Asia’s shrinking glaciers protect large populations from drought stress. Nature 2019, 569, 649–654. [Google Scholar] [CrossRef]
- Bolch, T.; Kulkarni, A.; Kääb, A.; Huggel, C.; Paul, F.; Cogley, J.G.; Frey, H.; Kargel, J.S.; Fujita, K.; Scheel, M.; et al. The State and Fate of Himalayan Glaciers. Science 2012, 336, 310–314. [Google Scholar] [CrossRef] [Green Version]
- Gardelle, J.; Berthier, E.; Arnaud, Y. Slight mass gain of Karakoram glaciers in the early twenty-first century. Nat. Geosci. 2012, 5, 322–325. [Google Scholar] [CrossRef]
- Kääb, A.; Berthier, E.; Nuth, C.; Gardelle, J.; Arnaud, Y. Contrasting patterns of early twenty-first-century glacier mass change in the Himalayas. Nature 2012, 488, 495–498. [Google Scholar] [CrossRef]
- Brun, F.; Berthier, E.; Wagnon, P.; Kääb, A.; Treichler, D. A spatially resolved estimate of High Mountain Asia glacier mass balances from 2000 to 2016. Nat. Geosci. 2017, 10, 668. [Google Scholar] [CrossRef]
- Shea, J.M.; Immerzeel, W.W.; Wagnon, P.; Vincent, C.; Bajracharya, S. Modelling glacier change in the Everest region, Nepal Himalaya. Cryosphere 2015, 9, 1105–1128. [Google Scholar] [CrossRef] [Green Version]
- Hock, R.; Bliss, A.; Marzeion, B.E.N.; Giesen, R.H.; Hirabayashi, Y.; Huss, M.; RadiĆ, V.; Slangen, A.B.A. GlacierMIP–A model intercomparison of global-scale glacier mass-balance models and projections. J. Glaciol. 2019, 65, 453–467. [Google Scholar] [CrossRef] [Green Version]
- Paul, F.; Bolch, T.; Kääb, A.; Nagler, T.; Nuth, C.; Scharrer, K.; Shepherd, A.; Strozzi, T.; Ticconi, F.; Bhambri, R.; et al. The glaciers climate change initiative: Methods for creating glacier area, elevation change and velocity products. Remote Sens. Environ. 2015, 162, 408–426. [Google Scholar] [CrossRef] [Green Version]
- Bahr, D.B.; Radić, V. Significant contribution to total mass from very small glaciers. Cryosphere 2012, 6, 763–770. [Google Scholar] [CrossRef] [Green Version]
- Hoinkes, H. Methoden und Möglichkeiten von Massenhaushaltsstudien auf Gletschern. Z. Für Gletsch. Und Glazialgeol. 1970, 6, 37–90. [Google Scholar]
- Ye, Q.; Bolch, T.; Naruse, R.; Wang, Y.; Zong, J.; Wang, Z.; Zhao, R.; Yang, D.; Kang, S. Glacier mass changes in Rongbuk catchment on Mt. Qomolangma from 1974 to 2006 based on topographic maps and ALOS PRISM data. J. Hydrol. 2015, 530, 273–280. [Google Scholar] [CrossRef]
- Gao, J.; Liu, Y. Applications of remote sensing, GIS and GPS in glaciology: A review. Prog. Phys. Geogr. Earth Environ. 2001, 25, 520–540. [Google Scholar] [CrossRef]
- Leprince, S.; Barbot, S.; Ayoub, F.; Avouac, J.-P. Automatic and Precise Orthorectification, Coregistration, and Subpixel Correlation of Satellite Images, Application to Ground Deformation Measurements. IEEE Trans. Geosci. Remote Sens. 2007, 45, 1529–1558. [Google Scholar] [CrossRef] [Green Version]
- Bash, E.; Moorman, B.; Gunther, A. Detecting Short-Term Surface Melt on an Arctic Glacier Using UAV Surveys. Remote Sens. 2018, 10, 1547. [Google Scholar] [CrossRef] [Green Version]
- Pętlicki, M.; Sziło, J.; MacDonell, S.; Vivero, S.; Bialik, R.J. Recent Deceleration of the Ice Elevation Change of Ecology Glacier (King George Island, Antarctica). Remote Sens. 2017, 9, 520. [Google Scholar] [CrossRef] [Green Version]
- Xu, C.; Li, Z.; Wang, F.; Mu, J. Spatio-Temporal Changes of Mass Balance in the Ablation Area of the Muz Taw Glacier, Sawir Mountains, from Multi-Temporal Terrestrial Geodetic Surveys. Remote Sens. 2021, 13, 1465. [Google Scholar] [CrossRef]
- Petlicki, M. Subglacial Topography of an Icefall Inferred From Repeated Terrestrial Laser Scanning. IEEE Geosci. Remote Sens. Lett. 2018, 15, 1461–1465. [Google Scholar] [CrossRef]
- Podgórski, J.; Pętlicki, M. Detailed Lacustrine Calving Iceberg Inventory from Very High Resolution Optical Imagery and Object-Based Image Analysis. Remote Sens. 2020, 12, 1807. [Google Scholar] [CrossRef]
- Pellicciotti, F.; Brock, B.; Strasser, U.; Burlando, P.; Funk, M.; Corripio, J. An enhanced temperature-index glacier melt model including the shortwave radiation balance: Development and testing for Haut Glacier d’Arolla, Switzerland. J. Glaciol. 2005, 51, 573–587. [Google Scholar] [CrossRef]
- Śledź, S.; Ewertowski, M.W.; Piekarczyk, J. Applications of unmanned aerial vehicle (UAV) surveys and Structure from Motion photogrammetry in glacial and periglacial geomorphology. Geomorphology 2021, 378, 107620. [Google Scholar] [CrossRef]
- Scherler, D.; Leprince, S.; Strecker, M.R. Glacier-surface velocities in alpine terrain from optical satellite imagery—Accuracy improvement and quality assessment. Remote Sens. Environ. 2008, 112, 3806–3819. [Google Scholar] [CrossRef]
- Joughin, I.; Smith, B.E.; Shean, D.E.; Floricioiu, D. Brief Communication: Further summer speedup of Jakobshavn Isbræ. Cryosphere 2014, 8, 209–214. [Google Scholar] [CrossRef] [Green Version]
- Colomina, I.; Molina, P. Unmanned aerial systems for photogrammetry and remote sensing: A review. ISPRS J. Photogramm. Remote Sens. 2014, 92, 79–97. [Google Scholar] [CrossRef] [Green Version]
- Chandler, B.M.P.; Lovell, H.; Boston, C.M.; Lukas, S.; Barr, I.D.; Benediktsson, Í.Ö.; Benn, D.I.; Clark, C.D.; Darvill, C.M.; Evans, D.J.A.; et al. Glacial geomorphological mapping: A review of approaches and frameworks for best practice. Earth-Sci. Rev. 2018, 185, 806–846. [Google Scholar] [CrossRef] [Green Version]
- Bhardwaj, A.; Sam, L.; Akanksha; Martín-Torres, F.J.; Kumar, R. UAVs as remote sensing platform in glaciology: Present applications and future prospects. Remote Sens. Environ. 2016, 175, 196–204. [Google Scholar] [CrossRef]
- Immerzeel, W.W.; Kraaijenbrink, P.D.A.; Shea, J.M.; Shrestha, A.B.; Pellicciotti, F.; Bierkens, M.F.P.; de Jong, S.M. High-resolution monitoring of Himalayan glacier dynamics using unmanned aerial vehicles. Remote Sens. Environ. 2014, 150, 93–103. [Google Scholar] [CrossRef]
- Kraaijenbrink, P.D.A.; Shea, J.M.; Pellicciotti, F.; Jong, S.M.d.; Immerzeel, W.W. Object-based analysis of unmanned aerial vehicle imagery to map and characterise surface features on a debris-covered glacier. Remote Sens. Environ. 2016, 186, 581–595. [Google Scholar] [CrossRef]
- Ryan, J.C.; Hubbard, A.L.; Box, J.E.; Todd, J.; Christoffersen, P.; Carr, J.R.; Holt, T.O.; Snooke, N. UAV photogrammetry and structure from motion to assess calving dynamics at Store Glacier, a large outlet draining the Greenland ice sheet. Cryosphere 2015, 9, 1–11. [Google Scholar] [CrossRef] [Green Version]
- Westoby, M.J.; Brasington, J.; Glasser, N.F.; Hambrey, M.J.; Reynolds, J.M. ‘Structure-from-Motion’ photogrammetry: A low-cost, effective tool for geoscience applications. Geomorphology 2012, 179, 300–314. [Google Scholar] [CrossRef] [Green Version]
- Wigmore, O.; Mark, B. Monitoring tropical debris-covered glacier dynamics from high-resolution unmanned aerial vehicle photogrammetry, Cordillera Blanca, Peru. Cryosphere 2017, 11, 2463–2480. [Google Scholar] [CrossRef] [Green Version]
- Rossini, M.; Di Mauro, B.; Garzonio, R.; Baccolo, G.; Cavallini, G.; Mattavelli, M.; De Amicis, M.; Colombo, R. Rapid melting dynamics of an alpine glacier with repeated UAV photogrammetry. Geomorphology 2018, 304, 159–172. [Google Scholar] [CrossRef]
- Fugazza, D.; Scaioni, M.; Corti, M.; D’Agata, C.; Azzoni, R.S.; Cernuschi, M.; Smiraglia, C.; Diolaiuti, G.A. Combination of UAV and terrestrial photogrammetry to assess rapid glacier evolution and map glacier hazards. Nat. Hazards Earth Syst. Sci. 2018, 18, 1055–1071. [Google Scholar] [CrossRef] [Green Version]
- Dall’Asta, E.; Forlani, G.; Roncella, R.; Santise, M.; Diotri, F.; Morra di Cella, U. Unmanned Aerial Systems and DSM matching for rock glacier monitoring. ISPRS J. Photogramm. Remote Sens. 2017, 127, 102–114. [Google Scholar] [CrossRef]
- Xue, Y.; Jing, Z.; Kang, S.; He, X.; Li, C. Combining UAV and Landsat data to assess glacier changes on the central Tibetan Plateau. J. Glaciol. 2021, 1–13. [Google Scholar] [CrossRef]
- Chandler, B.M.P.; Evans, D.J.A.; Chandler, S.J.P.; Ewertowski, M.W.; Lovell, H.; Roberts, D.H.; Schaefer, M.; Tomczyk, A.M. The glacial landsystem of Fjallsjökull, Iceland: Spatial and temporal evolution of process-form regimes at an active temperate glacier. Geomorphology 2020, 361, 107192. [Google Scholar] [CrossRef]
- Shangguan, D.; Liu, S.; Ding, Y.; Zhang, Y.; Li, J.; Li, X.; Wu, Z. Changes in the elevation and extent of two glaciers along the Yanglonghe river, Qilian Shan, China. J. Glaciol. 2010, 56, 309–317. [Google Scholar] [CrossRef] [Green Version]
- Pan, B.; Cao, B.; Wang, J.; Zhang, G.; Zhang, C.; Hu, Z.; Huang, B. Glacier variations in response to climate change from 1972 to 2007 in the western Lenglongling mountains, northeastern Tibetan Plateau. J. Glaciol. 2012, 58, 879–888. [Google Scholar] [CrossRef] [Green Version]
- Cao, B.; Pan, B.; Guan, W.; Wang, J.; Wen, Z. Changes in ice volume of the Ningchan No.1 Glacier, China, from 1972 to 2014, as derived from in situ measurements. J. Glaciol. 2017, 63, 1025–1033. [Google Scholar] [CrossRef] [Green Version]
- Cao, B.; Pan, B.; Cai, M.; Wang, J. An investigation on changes in glacier mass balance and hypsometry for a small mountainous glacier in the northeastern Tibetan Plateau. J. Mt. Sci. 2017, 14, 1624–1632. [Google Scholar] [CrossRef]
- Cao, B.; Pan, B.; Wen, Z.; Guan, W.; Li, K. Changes in glacier mass in the Lenglongling Mountains from 1972 to 2016 based on remote sensing data and modeling. J. Hydrol. 2019, 578, 124010. [Google Scholar] [CrossRef]
- Tian, H.; Yang, T.; Liu, Q. Climate change and glacier area shrinkage in the Qilian mountains, China, from 1956 to 2010. Ann. Glaciol. 2014, 55, 187–197. [Google Scholar] [CrossRef] [Green Version]
- Wang, Z.; Liu, C.; You, G.; Pu, J.; Yang, H.; Tian, P. Glacier Inventory of China I Qilian Mountains; Science Press Academia Sinica, Lanzhou Institute of Glaciology and Cryopedology: Beijing, China, 1981. (In Chinese) [Google Scholar]
- Cao, B.; Pan, B.; Wang, J.; Shangguan, D.; Wen, Z.; Qi, W.; Cui, H.; Lu, Y. Changes in the glacier extent and surface elevation along the Ningchan and Shuiguan river source, eastern Qilian Mountains, China. Quat. Res. 2014, 81, 531–537. [Google Scholar] [CrossRef]
- Agisoft PhotoScan User Manual: Professional Edition, Version 1.2; Agisoft LLC.: St. Petersburg, Russia, 2016.
- Verhoeven, G. Taking computer vision aloft–archaeological three-dimensional reconstructions from aerial photographs with photoscan. Archaeol. Prospect. 2011, 18, 67–73. [Google Scholar] [CrossRef]
- Kraaijenbrink, P.; Meijer, S.W.; Shea, J.M.; Pellicciotti, F.; Jong, S.M.D.; Immerzeel, W.W. Seasonal surface velocities of a Himalayan glacier derived by automated correlation of unmanned aerial vehicle imagery. Ann. Glaciol. 2016, 57, 103–113. [Google Scholar] [CrossRef] [Green Version]
- Pieczonka, T.; Bolch, T.; Wei, J.; Liu, S. Heterogeneous mass loss of glaciers in the Aksu-Tarim Catchment (Central Tien Shan) revealed by 1976 KH-9 Hexagon and 2009 SPOT-5 stereo imagery. Remote Sens. Environ. 2013, 130, 233–244. [Google Scholar] [CrossRef] [Green Version]
- Nuth, C.; Kääb, A. Co-registration and bias corrections of satellite elevation data sets for quantifying glacier thickness change. Cryosphere 2011, 5, 271–290. [Google Scholar] [CrossRef] [Green Version]
- Berthier, E.; Arnaud, Y.; Kumar, R.; Ahmad, S.; Wagnon, P.; Chevallier, P. Remote sensing estimates of glacier mass balances in the Himachal Pradesh (Western Himalaya, India). Remote Sens. Environ. 2007, 108, 327–338. [Google Scholar] [CrossRef] [Green Version]
- Shangguan, D.H.; Bolch, T.; Ding, Y.J.; Kröhnert, M.; Pieczonka, T.; Wetzel, H.U.; Liu, S.Y. Mass changes of Southern and Northern Inylchek Glacier, Central Tian Shan, Kyrgyzstan, during~1975 and 2007 derived from remote sensing data. Cryosphere 2015, 9, 703–717. [Google Scholar] [CrossRef] [Green Version]
- Gardelle, J.; Berthier, E.; Arnaud, Y.; Kääb, A. Region-wide glacier mass balances over the Pamir-Karakoram-Himalaya during 1999–2011. Cryosphere 2013, 7, 1263–1286. [Google Scholar] [CrossRef] [Green Version]
- Paul, F.; Barrand, N.E.; Baumann, S.; Berthier, E.; Bolch, T.; Casey, K.; Frey, H.; Joshi, S.P.; Konovalov, V.; Le Bris, R.; et al. On the accuracy of glacier outlines derived from remote-sensing data. Ann. Glaciol. 2013, 54, 171–182. [Google Scholar] [CrossRef] [Green Version]
- Østrem, G.; Brugman, M. Glacier Mass-Balance Measurements: A Manual for Field and Office Work. In NHRI Science Report 4; Environment Canada National Hydrology Research Institute: Saskatoon, SK, Canada, 1991. [Google Scholar]
- Wagnon, P.; Vincent, C.; Arnaud, Y.; Berthier, E.; Vuillermoz, E.; Gruber, S.; Ménégoz, M.; Gilbert, A.; Dumont, M.; Shea, J.M.; et al. Seasonal and annual mass balances of Mera and Pokalde glaciers (Nepal Himalaya) since 2007. Cryosphere 2013, 7, 1769–1786. [Google Scholar] [CrossRef] [Green Version]
- Cuffey, K.M.; Paterson, W.S.B. The Physics of Glaciers, 4th ed.; Academic Press: New York, NY, USA, 2010; pp. 1–704. [Google Scholar]
- Benn, D.I.; Evans, D. Glaciers and Glaciation, 2nd ed.; Hodder-Arnold: London, UK, 2010; 802p. [Google Scholar]
- Zemp, M.; Thibert, E.; Huss, M.; Stumm, D.; Rolstad Denby, C.; Nuth, C.; Nussbaumer, S.U.; Moholdt, G.; Mercer, A.; Mayer, C.; et al. Reanalysing glacier mass balance measurement series. Cryosphere 2013, 7, 1227–1245. [Google Scholar] [CrossRef] [Green Version]
- Banerjee, A. Brief communication: Thinning of debris-covered and debris-free glaciers in a warming climate. Cryosphere 2017, 11, 133–138. [Google Scholar] [CrossRef] [Green Version]
- Dehecq, A.; Gourmelen, N.; Gardner, A.S.; Brun, F.; Goldberg, D.; Nienow, P.W.; Berthier, E.; Vincent, C.; Wagnon, P.; Trouvé, E. Twenty-first century glacier slowdown driven by mass loss in High Mountain Asia. Nat. Geosci. 2019, 12, 22–27. [Google Scholar] [CrossRef]
- Brun, F.; Wagnon, P.; Berthier, E.; Shea, J.M.; Immerzeel, W.W.; Kraaijenbrink, P.D.A.; Vincent, C.; Reverchon, C.; Shrestha, D.; Arnaud, Y. Ice cliff contribution to the tongue-wide ablation of Changri Nup Glacier, Nepal, central Himalaya. Cryosphere 2018, 12, 3439–3457. [Google Scholar] [CrossRef] [Green Version]
- Sakai, A.; Fujita, K.; Duan, K.; Pu, J.; Nakawo, M.; Yao, T. Five decades of shrinkage of July 1st glacier, Qilian Shan, China. J. Glaciol. 2006, 52, 11–16. [Google Scholar] [CrossRef] [Green Version]
- Cao, B.; Wang, J.; Pan, B.; Zhang, X.; Cui, H. Surface flow velocities of the Ningchanhe No. 1 and Shuiguanhe No. 4 glacier in the East Qilian Mountains. J. Glaciol. Geocryol. 2013, 35, 1428–1435. (In Chinese) [Google Scholar]
- Yao, T.; Thompson, L.; Yang, W.; Yu, W.; Gao, Y.; Guo, X.; Yang, X.; Duan, K.; Zhao, H.; Xu, B.; et al. Different glacier status with atmospheric circulations in Tibetan Plateau and surroundings. Nat. Clim. Chang. 2012, 2, 663–667. [Google Scholar] [CrossRef]
- Li, J.; Li, Z.-w.; Zhu, J.-j.; Li, X.; Xu, B.; Wang, Q.-j.; Huang, C.-l.; Hu, J. Early 21st century glacier thickness changes in the Central Tien Shan. Remote Sens. Environ. 2017, 192, 12–29. [Google Scholar] [CrossRef] [Green Version]
- Azam, M.F.; Wagnon, P.; Berthier, E.; Vincent, C.; Fujita, K.; Kargel, J.S. Review of the status and mass changes of Himalayan-Karakoram glaciers. J. Glaciol. 2018, 64, 61–74. [Google Scholar] [CrossRef] [Green Version]
- Wu, K.; Liu, S.; Jiang, Z.; Xu, J.; Wei, J. Glacier mass balance over the central Nyainqentanglha Range during recent decades derived from remote-sensing data. J. Glaciol. 2019, 65, 422–439. [Google Scholar] [CrossRef] [Green Version]
Time Interval | Days | UAV | Stakes | ||
---|---|---|---|---|---|
Terminal Retreat (m) | Surface Elevation Change (m) | Mean Annual Mass Balance (m w.e. a−1) | Mean Annual Mass Balance (m w.e. a−1) | ||
18 August 2017–26 August 2018 | 373 | 7.7 ± 0.1 | −1.82 ± 0.12 | −1.55 ± 0.10 | −1.57 |
18 July 2018–26 August 2018 | 39 | 2.9 ± 0.1 | −0.87 ± 0.12 | ||
26 August 2018–18 August 2019 | 357 | 8.4 ± 0.1 | −1.53 ± 0.12 | −1.30 ± 0.10 | −1.27 |
18 August 2019–13 August 2020 | 361 | 6.0 ± 0.1 | −0.95 ± 0.12 | −0.81 ± 0.10 | −0.68 |
18 August 2017–13 August 2020 | 3 years | 22.1 ± 0.1 | −4.30 ± 0.12 | −1.22 ± 0.10 | −1.17 |
Glacier Characteristics | Time Interval | Rate | Reference |
---|---|---|---|
Terminal retreat rate | 1972–1995 | 4.0 m a−1 | [46] |
1995–2010 | 5.3 m a−1 | [46] | |
2017–2020 | 7.4 m a−1 | This research | |
Mass balance | 1972–2010 | −0.7 m w.e. a−1 | [46] |
2010–2015 | −0.9 m w.e. a−1 | [41] | |
2017–2020 | −1.22 ± 0.10 m w.e. a−1 | This research | |
Maximum velocity | 2010–2012 | 4.0 m a−1 | [46] |
2010–2015 | 3.6 ± 0.05 m a−1 | [41] | |
2017–2018 | 3.2 ± 0.47 m a−1 | This research |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2021 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Cao, B.; Guan, W.; Li, K.; Pan, B.; Sun, X. High-Resolution Monitoring of Glacier Mass Balance and Dynamics with Unmanned Aerial Vehicles on the Ningchan No. 1 Glacier in the Qilian Mountains, China. Remote Sens. 2021, 13, 2735. https://doi.org/10.3390/rs13142735
Cao B, Guan W, Li K, Pan B, Sun X. High-Resolution Monitoring of Glacier Mass Balance and Dynamics with Unmanned Aerial Vehicles on the Ningchan No. 1 Glacier in the Qilian Mountains, China. Remote Sensing. 2021; 13(14):2735. https://doi.org/10.3390/rs13142735
Chicago/Turabian StyleCao, Bo, Weijin Guan, Kaiji Li, Baotian Pan, and Xiaodong Sun. 2021. "High-Resolution Monitoring of Glacier Mass Balance and Dynamics with Unmanned Aerial Vehicles on the Ningchan No. 1 Glacier in the Qilian Mountains, China" Remote Sensing 13, no. 14: 2735. https://doi.org/10.3390/rs13142735
APA StyleCao, B., Guan, W., Li, K., Pan, B., & Sun, X. (2021). High-Resolution Monitoring of Glacier Mass Balance and Dynamics with Unmanned Aerial Vehicles on the Ningchan No. 1 Glacier in the Qilian Mountains, China. Remote Sensing, 13(14), 2735. https://doi.org/10.3390/rs13142735