Topics

No keywords indexed for this article. Browse by subject →

References
68
[1]
The value of the world's ecosystem services and natural capital

Robert Costanza, Ralph d'Arge, Rudolf de Groot et al.

Nature 10.1038/387253a0
[2]
Blue carbon as a natural climate solution

Peter I. Macreadie, Micheli Duarte de Paula Costa, Trisha B. Atwood et al.

Nature Reviews Earth & Environment 10.1038/s43017-021-00224-1
[9]
Qing W. J. Syst. Evol. (2006) 10.1360/aps06044
[15]
POSITIVE AND NEGATIVE EFFECTS OF ORGANISMS AS PHYSICAL ECOSYSTEM ENGINEERS

Clive G. Jones, John H. Lawton, Moshe Shachak

Ecology 10.1890/0012-9658(1997)078[1946:paneoo]2.0.co;2
[17]
Potential impacts of invasive Spartina alterniflora on spring bird communities at Chongming Dongtan, a Chinese wetland of international importance

Xiaojing Gan, Yinting Cai, Chiyeung Choi et al.

Estuarine, Coastal and Shelf Science 10.1016/j.ecss.2009.03.026
[21]
Bao-hua X. Ying Yong Sheng Tai Xue Bao (2018)
[22]
Quanqin S. Adv. Earth Sci. (2017)
[23]
Ping Z. Acta Oceanolog. Sin. (2009)
[24]
Yang J. Chin. J. Ecol. (2013)
[25]
Sentinel-2: ESA's Optical High-Resolution Mission for GMES Operational Services

M. Drusch, U. Del Bello, S. Carlier et al.

Remote Sensing of Environment 10.1016/j.rse.2011.11.026
[27]
Characterization of Landsat-7 to Landsat-8 reflective wavelength and normalized difference vegetation index continuity

D.P. Roy, V. Kovalskyy, H.K. Zhang et al.

Remote Sensing of Environment 10.1016/j.rse.2015.12.024
[29]
Google Earth Engine: Planetary-scale geospatial analysis for everyone

Noel Gorelick, Matt Hancher, Mike Dixon et al.

Remote Sensing of Environment 10.1016/j.rse.2017.06.031
[31]
Davis M. H. (2018) 10.1201/9780203748039
[33]
Global forest fragmentation change from 2000 to 2020

Jun Ma, Jiawei Li, Wanben Wu et al.

Nature Communications 10.1038/s41467-023-39221-x
[34]
IPCC. Special Report on the Ocean and Cryosphere in a Changing Climate. IPCC Geneva, Switzerland, 2019.
[35]
Stanford University, U. o. M., Chinese Academy of Sciences, The Nature Conservancy, World Wildlife Fund, Stockholm Resilience Centre and the Royal Swedish Academy of Sciences. Natural Capital Project InVEST 3.14.1. 2024. https://naturalcapitalproject.stanford.edu/software/invest, accessed 2023–03–11.
[36]
Ge Y. Ying Yong Sheng Tai Xue Bao (2014)
[38]
Liu J. Resources and Environment in the Yangtze Basin (2015)
[39]
Zou Y.-a. Chin. J. Ecol. (2014)
[41]
McGarigal K. (1995) 10.2737/pnw-gtr-351
[42]
R Team (2010)
[43]
The ecosystem impacts of dominant species exclusion in a prairie restoration

Daniel L. Hernández, Alice Antia, Mark J. McKone

Ecological Applications 10.1002/eap.2592
[46]
Cordgrass Spartina alterniflora acts as a key carbon source to support macrozoobenthos in the salt marsh and nearby mudflat communities

Sixuan He, Jinlan Lin, Xinming Liu et al.

Ecological Indicators 10.1016/j.ecolind.2023.110052
[48]
Pickering, D. Covering the Spartina threat: An alternative control method for non-native Spartina patens in a west coast salt marsh. In Conference on Invasive Spartina, 2004.

Showing 50 of 68 references

Metrics
22
Citations
68
References
Details
Published
Oct 01, 2024
Vol/Issue
58(48)
Pages
21229-21241
License
View
Authors
Funding
National Natural Science Foundation of China Award: U2106209
National Key Research and Development Program of China Award: 2022YFC2601100
National Forestry and Grassland Administration Award: 202302
Science and Technology Commission of Shanghai Municipality Award: 21ZR1405600
Hui-Chun Chin and Tsung-Dao Lee Chinese Undergraduate Research Endowment Award: 22939
Cite This Article
Guanpu Qi, Lanxuan Li, Haiyang Li, et al. (2024). Ecological Effects of the Huge Invasive Species Removal Project in Coastal China. Environmental Science & Technology, 58(48), 21229-21241. https://doi.org/10.1021/acs.est.4c05253