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Advances in the aquatic sciences
RESEARCH ARTICLE

China’s coastal-wetland change analysis based on high-resolution remote sensing

Yin Gao A B , Lijuan Cui A C , Jianjun Liu B , Wei Li A and Yinru Lei A
+ Author Affiliations
- Author Affiliations

A Institute of Wetland Research, Chinese Academy of Forestry, Xiangshan Road, Dongxiaofu 1, Beijing, 100091, PR China.

B National Geomatics Center of China, 28 Lianhuachi West Road, Haidian District, Beijing, 100830, PR China.

C Corresponding author. Email: lkyclj@126.com

Marine and Freshwater Research 71(9) 1161-1181 https://doi.org/10.1071/MF19062
Submitted: 17 February 2019  Accepted: 23 November 2019   Published: 4 February 2020

Abstract

Coastal wetlands not only have abundant biodiversity and high productivity, but they also play an irreplaceable and important role in regional ecosystems. Because of the complex structure and dynamic characteristics of coastal wetlands, it is difficult to observe the spatial changes of coastal wetlands on a large scale and improve data reliability. In this study, a spatially constrained manual-interpretation method based on nationwide high-resolution images in 2017 was adopted to extract China’s coastal wetland distribution, and, then, the second national wetland-survey data from 2011 were used as a baseline for change analysis. The results showed that under the influence of natural conditions and human activities, China’s coastal wetlands have decreased in distribution in the past 6 years. The situation of coastal wetland reclamation is critical, and the hotspot regions are mainly distributed in Bohai Bay, middle of Jiangsu province and Hangzhou Bay. Farming reclamation is another factor that occupies coastal wetlands in China, and main occupied wetlands are mudflats, shallow sea, tidal flats, intertidal salt marshes and estuarine waters. Tide is the main factor affecting extraction of wetlands, the spatially constrained method had a positive effect on wetland detection, and has potential to improve automatic algorithms of complex coastal wetlands.

Additional keywords: change detection, human influence, national scale.


References

Asner, G. P., Martin, R. E., and Mascaro, J. (2017). Coral reef atoll assessment in the South China Sea using Planet Dove satellites. Remote Sensing in Ecology and Conservation 3, 57–65.
Coral reef atoll assessment in the South China Sea using Planet Dove satellites.Crossref | GoogleScholarGoogle Scholar |

Barbier, E. (2013). Valuing ecosystem services for coastal wetland protection and restoration: progress and challenges. Resources 2, 213–230.
Valuing ecosystem services for coastal wetland protection and restoration: progress and challenges.Crossref | GoogleScholarGoogle Scholar |

Cai, F., van Vliet, J., Verburg, P. H., and Pu, L. (2017). Land use change and farmer behavior in reclaimed land in the middle Jiangsu coast, China. Ocean and Coastal Management 137, 107–117.
Land use change and farmer behavior in reclaimed land in the middle Jiangsu coast, China.Crossref | GoogleScholarGoogle Scholar |

Chen, S., Chen, L., Liu, Q., Li, X., and Tan, Q. (2005). Remote sensing and GIS-based integrated analysis of coastal changes and their environmental impacts in Lingding Bay, Pearl River Estuary, South China. Ocean and Coastal Management 48, 65–83.
Remote sensing and GIS-based integrated analysis of coastal changes and their environmental impacts in Lingding Bay, Pearl River Estuary, South China.Crossref | GoogleScholarGoogle Scholar |

Chen, Y., Dong, J., Xiao, X., Zhang, M., Tian, B., Zhou, Y., Li, B., and Ma, Z. (2016). Land claim and loss of tidal flats in the Yangtze Estuary. Scientific Reports 6, 24018.
Land claim and loss of tidal flats in the Yangtze Estuary.Crossref | GoogleScholarGoogle Scholar | 27035525PubMed |

Chen, W., Wang, D., Huang, Y., Chen, L., Zhang, L., Wei, X., Sang, M., Wang, F., Liu, J., and Hu, B. (2017). Monitoring and analysis of coastal reclamation from 1995–2015 in Tianjin Binhai New Area, China. Scientific Reports 7, 3850.
Monitoring and analysis of coastal reclamation from 1995–2015 in Tianjin Binhai New Area, China.Crossref | GoogleScholarGoogle Scholar | 28634414PubMed |

Choi, C. Y., Jackson, M. V., Gallo‐Cajiao, E., Murray, N. J., Clemens, R. S., Gan, X., and Fuller, R. A. (2018). Biodiversity and China’s new Great Wall. Diversity & Distributions 24, 137–143.
Biodiversity and China’s new Great Wall.Crossref | GoogleScholarGoogle Scholar |

Cong, W. (2017). Impacts of expansion of Spartina alterniflora on Yancheng tidal flat wetland in Jiangsu Province of China. Journal of Landscape Research 9, 65–70.

Costanza, R., Groot, R. D., Sutton, P., Ploeg, S. V. D., Anderson, S. J., Kubiszewski, I., Farber, S., and Turner, R. K. (2014). Changes in the global value of ecosystem services. Global Environmental Change 26, 152–158.
Changes in the global value of ecosystem services.Crossref | GoogleScholarGoogle Scholar |

Cui, B., He, Q., Gu, B., Bai, J., and Liu, X. (2016). China’s coastal wetlands: understanding environmental changes and human impacts for management and conservation. Wetlands 36, 1–9.
China’s coastal wetlands: understanding environmental changes and human impacts for management and conservation.Crossref | GoogleScholarGoogle Scholar |

Davidson, N. C. (2014). How much wetland has the world lost? Long-term and recent trends in global wetland area. Marine and Freshwater Research 65, 934–941.
How much wetland has the world lost? Long-term and recent trends in global wetland area.Crossref | GoogleScholarGoogle Scholar |

Davidson, N. C., and Finlayson, C. M. (2018). Extent, regional distribution and changes in area of different classes of wetland. Marine and Freshwater Research 69, 1525–1533.
Extent, regional distribution and changes in area of different classes of wetland.Crossref | GoogleScholarGoogle Scholar |

de Araujo Barbosa, C. C., Atkinson, P. M., and Dearing, J. A. (2015). Remote sensing of ecosystem services: a systematic review. Ecological Indicators 52, 430–443.
Remote sensing of ecosystem services: a systematic review.Crossref | GoogleScholarGoogle Scholar |

Duan, Y., Liu, Y., Li, M., Zhou, M., and Yang, Y. (2016). Survey of reefs based on Landsat 8 operational land imager (OLI) images in the Nansha Islands, South China Sea. Acta Oceanologica Sinica 35, 11–19.
Survey of reefs based on Landsat 8 operational land imager (OLI) images in the Nansha Islands, South China Sea.Crossref | GoogleScholarGoogle Scholar |

Fan, Y., Chen, S., Zhao, B., Yu, S., Ji, H., and Jiang, C. (2018). Monitoring tidal flat dynamics affected by human activities along an eroded coast in the Yellow River Delta, China. Environmental Monitoring and Assessment 190, 396.
Monitoring tidal flat dynamics affected by human activities along an eroded coast in the Yellow River Delta, China.Crossref | GoogleScholarGoogle Scholar | 29896719PubMed |

Fuller, R., Smith, G., and Devereux, B. (2003). The characterisation and measurement of land cover change through remote sensing: problems in operational applications? International Journal of Applied Earth Observation and Geoinformation 4, 243–253.
The characterisation and measurement of land cover change through remote sensing: problems in operational applications?Crossref | GoogleScholarGoogle Scholar |

Gallant, A. L. (2015). The challenges of remote monitoring of wetlands. Remote Sensing 7, 10938–10950.
The challenges of remote monitoring of wetlands.Crossref | GoogleScholarGoogle Scholar |

Gao, Z., Liu, X., Zhang, Y., Liu, C., and Sun, Z. (2016). The study method of estimation tidal flat with remote sensing waterlines. SPIE Proceedings 9975, 99750J.
The study method of estimation tidal flat with remote sensing waterlines.Crossref | GoogleScholarGoogle Scholar |

Gibbes, C., Southworth, J., and Keys, E. (2009). Wetland conservation: change and fragmentation in Trinidad’s protected areas. Geoforum 40, 91–104.
Wetland conservation: change and fragmentation in Trinidad’s protected areas.Crossref | GoogleScholarGoogle Scholar |

Gong, P., Niu, Z., Cheng, X., Zhao, K., Zhou, D., Guo, J., Liang, L., Wang, X., Li, D., and Huang, H. (2010). China’s wetland change (1990–2000) determined by remote sensing. Science China. Earth Sciences 53, 1036–1042.
China’s wetland change (1990–2000) determined by remote sensing.Crossref | GoogleScholarGoogle Scholar |

Hardisky, M., Gross, M., and Klemas, V. (1986). Remote sensing of coastal wetlands. Bioscience 36, 453–460.
Remote sensing of coastal wetlands.Crossref | GoogleScholarGoogle Scholar |

Hu, L., Li, W., and Xu, B. (2018). Monitoring mangrove forest change in China from 1990 to 2015 using Landsat-derived spectral-temporal variability metrics. International Journal of Applied Earth Observation and Geoinformation 73, 88–98.
Monitoring mangrove forest change in China from 1990 to 2015 using Landsat-derived spectral-temporal variability metrics.Crossref | GoogleScholarGoogle Scholar |

Hu, M., Ge, Z., Li, Y., Li, S., Tan, L., Xie, L., Hu, Z., Zhang, T., and Li, X. (2019). Do short-term increases in river and sediment discharge determine the dynamics of coastal mudflat and vegetation in the Yangtze Estuary? Estuarine, Coastal and Shelf Science 220, 176–184.
Do short-term increases in river and sediment discharge determine the dynamics of coastal mudflat and vegetation in the Yangtze Estuary?Crossref | GoogleScholarGoogle Scholar |

Klemas, V. (2010). Remote sensing techniques for studying coastal ecosystems: an overview. Journal of Coastal Research 27, 2–17.
Remote sensing techniques for studying coastal ecosystems: an overview.Crossref | GoogleScholarGoogle Scholar |

Klemas, V. (2013). Remote sensing of coastal wetland biomass: an overview. Journal of Coastal Research 290, 1016–1028.
Remote sensing of coastal wetland biomass: an overview.Crossref | GoogleScholarGoogle Scholar |

Kusler, J. A., and Kentula, M. E. (2012). ‘Wetland Creation and Restoration: the Status of the Science.’ (Island Press: Washington, DC, USA.)

Li, S., Chen, X., Ma, F., and Cheng, T. (2010). ‘China Ecological Status Report 2009 – Ecological Succession in China (1949–2009).’ (Scientific Press: Beijing, PR China.)

Liu, P., Guan, L., Lu, C., Zhang, M.-X., and Lei, G.-C. (2011). Technical characteristics and application prospects of achievements of the second national wetland investigation. Wetland Science 3, 14–21.

Liu, G., Zhang, L., Zhang, Q., Musyimi, Z., and Jiang, Q. (2014). Spatio-temporal dynamics of wetland landscape patterns based on remote sensing in Yellow River Delta, China. Wetlands 34, 787–801.
Spatio-temporal dynamics of wetland landscape patterns based on remote sensing in Yellow River Delta, China.Crossref | GoogleScholarGoogle Scholar |

Liu, M., Li, H., Li, L., Man, W., Jia, M., Wang, Z., and Lu, C. (2017). Monitoring the invasion of Spartina alterniflora using multi-source high-resolution imagery in the Zhangjiang Estuary, China. Remote Sensing 9, 539.
Monitoring the invasion of Spartina alterniflora using multi-source high-resolution imagery in the Zhangjiang Estuary, China.Crossref | GoogleScholarGoogle Scholar |

Lu, C., Liu, J., Jia, M., Liu, M., Man, W., Fu, W., Zhong, L., Lin, X., Su, Y., and Gao, Y. (2018). Dynamic analysis of mangrove forests based on an optimal segmentation scale model and multi-seasonal images in Quanzhou Bay, China. Remote Sensing 10, 2020.
Dynamic analysis of mangrove forests based on an optimal segmentation scale model and multi-seasonal images in Quanzhou Bay, China.Crossref | GoogleScholarGoogle Scholar |

Lu, W., Sun, J., Liu, Y., Liu, Y., and Zhao, B. (2019). Seasonal and intra-annual patterns of sedimentary evolution in tidal flats impacted by laver cultivation along the central Jiangsu Coast, China. Applied Sciences 9, 522.
Seasonal and intra-annual patterns of sedimentary evolution in tidal flats impacted by laver cultivation along the central Jiangsu Coast, China.Crossref | GoogleScholarGoogle Scholar |

Matthews, G. V. T. (1993). ‘The Ramsar Convention on Wetlands: its History and Development.’ (Ramsar Convention Bureau: Gland, Switzerland.)

Meng, W., Hu, B., He, M., Liu, B., Mo, X., Li, H., Wang, Z., and Zhang, Y. (2017). Temporal–spatial variations and driving factors analysis of coastal reclamation in China. Estuarine, Coastal and Shelf Science 191, 39–49.
Temporal–spatial variations and driving factors analysis of coastal reclamation in China.Crossref | GoogleScholarGoogle Scholar |

Mitsch, W. J., Bernal, B., and Hernandez, M. E. (2015). Ecosystem services of wetlands. The International Journal of Biodiversity Science, Ecosystem Services & Management 11, 1–4.
Ecosystem services of wetlands.Crossref | GoogleScholarGoogle Scholar |

Murray, N., Phinn, S., Clemens, R., Roelfsema, C., and Fuller, R. (2012). Continental scale mapping of tidal flats across east Asia using the Landsat archive. Remote Sensing 4, 3417–3426.
Continental scale mapping of tidal flats across east Asia using the Landsat archive.Crossref | GoogleScholarGoogle Scholar |

Murray, N. J., Clemens, R. S., Phinn, S. R., Possingham, H. P., and Fuller, R. A. (2014). Tracking the rapid loss of tidal wetlands in the Yellow Sea. Frontiers in Ecology and the Environment 12, 267–272.
Tracking the rapid loss of tidal wetlands in the Yellow Sea.Crossref | GoogleScholarGoogle Scholar |

Murray, N. J., Phinn, S. R., DeWitt, M., Ferrari, R., Johnston, R., Lyons, M. B., Clinton, N., Thau, D., and Fuller, R. A. (2019). The global distribution and trajectory of tidal flats. Nature 565, 222.
The global distribution and trajectory of tidal flats.Crossref | GoogleScholarGoogle Scholar | 30568300PubMed |

Niu, Z., Zhang, H., and Gong, P. (2011). More protection for China’s wetlands. Nature 471, 305.
More protection for China’s wetlands.Crossref | GoogleScholarGoogle Scholar | 21412322PubMed |

Perillo, G., Wolanski, E., Cahoon, D. R., and Hopkinson, C. S. (2018). ‘Coastal Wetlands: an Integrated Ecosystem Approach.’ (Elsevier: Amsterdam, Netherlands.)

Petrolia, D. R., Interis, M. G., and Hwang, J. (2014). America’s wetland? A national survey of willingness to pay for restoration of Louisiana’s coastal wetlands. Marine Resource Economics 29, 17–37.
America’s wetland? A national survey of willingness to pay for restoration of Louisiana’s coastal wetlands.Crossref | GoogleScholarGoogle Scholar |

Prigent, C., Matthews, E., Aires, F., and Rossow, W. B. (2001). Remote sensing of global wetland dynamics with multiple satellite data sets. Geophysical Research Letters 28, 4631–4634.
Remote sensing of global wetland dynamics with multiple satellite data sets.Crossref | GoogleScholarGoogle Scholar |

Ramsey, E. W. (2005). Remote sensing of coastal environments. In ‘Encyclopedia of Coastal Science’. (Ed. P. D. Nunn.) pp. 797–804. (Springer: Berlin, Germany.)

Saintilan, N., Rogers, K., Kelleway, J., Ens, E., and Sloane, D. (2018). Climate change impacts on the coastal wetlands of Australia. Wetlands 32, 1–10.
Climate change impacts on the coastal wetlands of Australia.Crossref | GoogleScholarGoogle Scholar |

Schuerch, M., Spencer, T., Temmerman, S., Kirwan, M. L., Wolff, C., Lincke, D., McOwen, C. J., Pickering, M. D., Reef, R., and Vafeidis, A. T. (2018). Future response of global coastal wetlands to sea-level rise. Nature 561, 231.
Future response of global coastal wetlands to sea-level rise.Crossref | GoogleScholarGoogle Scholar | 30209368PubMed |

Scott, D., and Jones, T. (1995). Classification and inventory of wetlands: a global overview. Vegetatio 118, 3–16.
Classification and inventory of wetlands: a global overview.Crossref | GoogleScholarGoogle Scholar |

Shi, T., Zou, Z., Shi, Z., Chu, J., Zhao, J., Gao, N., Zhang, N., and Zhu, X. (2018). Mudflat aquaculture labeling for infrared remote sensing images via a scanning convolutional network. Infrared Physics & Technology 94, 16–22.
Mudflat aquaculture labeling for infrared remote sensing images via a scanning convolutional network.Crossref | GoogleScholarGoogle Scholar |

State Council of China (2018). Notice of the State Council on strengthening the protection of coastal wetlands and strict control of reclamation. Index number 000014349/2018-00111. (Beijing, PR China.) Available at http://www.gov.cn/zhengce/content/2018-07/25/content_5309058.htm [In Chinese, verified 21 December 2019].

Su, D., Yang, F., Ma, Y., Zhang, K., Huang, J., and Wang, M. (2018). Classification of coral reefs in the South China Sea by combining airborne LiDAR bathymetry bottom waveforms and bathymetric features. IEEE Transactions on Geoscience and Remote Sensing 13, 1–14.

Sun, Z., Sun, W., Tong, C., Zeng, C., Yu, X., and Mou, X. (2015). China’s coastal wetlands: conservation history, implementation efforts, existing issues and strategies for future improvement. Environment International 79, 25–41.
China’s coastal wetlands: conservation history, implementation efforts, existing issues and strategies for future improvement.Crossref | GoogleScholarGoogle Scholar | 25771079PubMed |

Tian, B., Zhou, Y.-X., Thom, R. M., Diefenderfer, H. L., and Yuan, Q. (2015). Detecting wetland changes in Shanghai, China using FORMOSAT and Landsat TM imagery. Journal of Hydrology 529, 1–10.
Detecting wetland changes in Shanghai, China using FORMOSAT and Landsat TM imagery.Crossref | GoogleScholarGoogle Scholar |

Tong, X., Zhao, W., Xing, J., and Fu, W. (2016). Status and development of China High-Resolution Earth Observation System and application. In ‘2016 IEEE International Geoscience and Remote Sensing Symposium (IGARSS)’, 10–15 July 2016, Beijing, PR China. INSPEC accession number 16444800. (IEEE.)10.1109/IGARSS.2016.7729969

Wang, X., Xiao, X., Zou, Z., Chen, B., Ma, J., Dong, J., Doughty, R. B., Zhong, Q., Qin, Y., and Dai, S. (2018). Tracking annual changes of coastal tidal flats in China during 1986–2016 through analyses of Landsat images with Google Earth Engine. Remote Sensing of Environment , 110987.
Tracking annual changes of coastal tidal flats in China during 1986–2016 through analyses of Landsat images with Google Earth Engine.Crossref | GoogleScholarGoogle Scholar |

Wu, D., Du, Y., Su, F., Huang, W., and Zhang, L. (2018). An improved dem construction method for mudflats based on bj-1 small satellite images: a case study on Bohai Bay. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences XLII-3, 1871–1878.
An improved dem construction method for mudflats based on bj-1 small satellite images: a case study on Bohai Bay.Crossref | GoogleScholarGoogle Scholar |

Xu, J., Zhao, J., Li, F., Wang, L., Song, D., Wen, S., Wang, F., and Gao, N. (2016). Object-based image analysis for mapping geomorphic zones of coral reefs in the Xisha Islands, China. Acta Oceanologica Sinica 35, 19–27.
Object-based image analysis for mapping geomorphic zones of coral reefs in the Xisha Islands, China.Crossref | GoogleScholarGoogle Scholar |

Yan, X., Hu, Y., Chang, Y., Zhang, D., Liu, M., Guo, J., and Ren, B. (2017). Monitoring wetland changes both outside and inside reclamation areas for coastal management of the northern Liaodong Bay, China. Wetlands 37, 885–897.
Monitoring wetland changes both outside and inside reclamation areas for coastal management of the northern Liaodong Bay, China.Crossref | GoogleScholarGoogle Scholar |

Yim, J., Kwon, B.-O., Nam, J., Hwang, J. H., Choi, K., and Khim, J. S. (2018). Analysis of forty years long changes in coastal land use and land cover of the Yellow Sea: the gains or losses in ecosystem services. Environmental Pollution 241, 74–84.
Analysis of forty years long changes in coastal land use and land cover of the Yellow Sea: the gains or losses in ecosystem services.Crossref | GoogleScholarGoogle Scholar | 29803027PubMed |

Zedler, J. B., and Kercher, S. (2005). Wetland resources: status, trends, ecosystem services, and restorability. Annual Review of Environment and Resources 30, 39–74.
Wetland resources: status, trends, ecosystem services, and restorability.Crossref | GoogleScholarGoogle Scholar |

Zhai M. (2014). China Net: results of the second national survey of wetland resources. (China Network, Forestry.) Available athttp://www.shidi.org/sf_B7B9059F3C6B48C28E27D18EDC9A4DC6_151_18811374604.html [Verified 29 January 2020].

Zhang, X., Zhang, Y., Zhu, L., Chi, W., Yang, Z., Wang, B., Lv, K., Wang, H., and Lu, Z. (2018). Spatial-temporal evolution of the eastern Nanhui mudflat in the Changjiang (Yangtze River) Estuary under intensified human activities. Geomorphology 309, 38–50.
Spatial-temporal evolution of the eastern Nanhui mudflat in the Changjiang (Yangtze River) Estuary under intensified human activities.Crossref | GoogleScholarGoogle Scholar |

Zhang, K., Dong, X., Liu, Z., Gao, W., Hu, Z., and Wu, G. (2019). Mapping tidal flats with Landsat 8 images and google earth engine: a case study of the China’s eastern coastal zone circa 2015. Remote Sensing 11, 924.
Mapping tidal flats with Landsat 8 images and google earth engine: a case study of the China’s eastern coastal zone circa 2015.Crossref | GoogleScholarGoogle Scholar |