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Biodiversity Data Journal 5: e11764
https://doi.org/10.3897/BDJ.5.e11764 (21 Mar 2017)
https://doi.org/10.3897/BDJ.5.e11764 (21 Mar 2017)
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A global coastal permeability dataset (CoPerm 1.0). Scientific Data 11: .
Global hotspots of salt marsh change and carbon emissions. Nature 612: 701.
Sediment Dynamics of Natural and Restored Bolboschoenus maritimus Saltmarsh. Frontiers in Ecology and Evolution 7: .
Long-term simulation of saltmarsh landscape based on hydro-sediment and vegetation Dynamics: Assessing future stability. Estuarine, Coastal and Shelf Science 323: 109400.
Monitoring mangrove degradation caused by oil spills using spaceborne multispectral and SAR imagery. Marine Pollution Bulletin 219: 118281.
Large grazers suppress a foundational plant and reduce soil carbon concentration in eastern US saltmarshes. Journal of Ecology 112: 2624.
Monitoring Saltmarsh Restoration in the Upper Bay of Fundy Using Multi-Temporal Sentinel-2 Imagery and Random Forests Classifier. Remote Sensing 16: 4667.
Spatial cost–benefit analysis of blue restoration and factors driving net benefits globally. Conservation Biology 35: 1850.
The Use of Non-Plastic Materials for Oyster Reef and Shoreline Restoration: Understanding What Is Needed and Where the Field Is Headed. Sustainability 14: 8055.
Progress of blue carbon research: 12 years of global trends based on content analysis of peer-reviewed and ‘gray literature’ documents. Ocean & Coastal Management 236: 106495.
Coastal vegetation and estuaries are collectively a greenhouse gas sink. Nature Climate Change 13: 579.
Marsh Processes and Their Response to Climate Change and Sea-Level Rise. Annual Review of Earth and Planetary Sciences 47: 481.
Ecosystem‐Scale Measurements of Methyl Halide Fluxes From a Brackish Tidal Marsh Invaded With Perennial Pepperweed (Lepidium latifolium). Journal of Geophysical Research: Biogeosciences 123: 2104.
Identifying Ecosystem Surface Areas Available for Nature-Based Flood Risk Mitigation in Coastal Cities Around the World. Estuaries and Coasts 43: 1335.
A framework for fine classification of urban wetlands based on random forest and knowledge rules: taking the wetland cities of Haikou and Yinchuan as examples. GIScience & Remote Sensing 59: 2144.
A global trophic analysis of estuary-associated fishes. Reviews in Fish Biology and Fisheries 35: 505.
A synthesis of methane emissions from shallow vegetated coastal ecosystems. Global Change Biology 26: 2988.
Assessing Coastal Vulnerability and Evaluating the Effectiveness of Natural Habitats in Enhancing Coastal Resilience: A Case Study in Shanghai, China. Sustainability 16: 609.
Oyster reef restoration facilitates the recovery of macroinvertebrate abundance, diversity, and composition in estuarine communities. Scientific Reports 12: .
Hydrodynamic Feedbacks of Salt‐Marsh Loss in the Shallow Microtidal Back‐Barrier Lagoon of Venice (Italy). Water Resources Research 59: .
Saltmarsh seeds in motion: the relative importance of dispersal units and abiotic conditions. Marine Ecology Progress Series 678: 63.
Grazing reduces bee abundance and diversity in saltmarshes by suppressing flowering of key plant species. Agriculture, Ecosystems & Environment 291: 106760.
Quantification of organic carbon concentrations and stocks of tidal marsh sediments via mid-infrared spectroscopy. Geoderma 337: 555.
The blue carbon wealth of nations. Nature Climate Change 11: 704.
Importance of Blue Carbon in Mitigating Climate Change and Plastic/Microplastic Pollution and Promoting Circular Economy. Sustainability 15: 2682.
Synchronized high-resolution bed-level change and biophysical data from 10 marsh–mudflat sites in northwestern Europe. Earth System Science Data 13: 405.
Long-Term Wetland Monitoring Using the Landsat Archive: A Review. Remote Sensing 15: 820.
Eddy covariance evaluation of ecosystem fluxes at a temperate saltmarsh in Victoria, Australia, shows large CO2 uptake. Biogeosciences 22: 1149.
Blue carbon dynamics across a salt marsh-seagrass ecotone in a cool-temperate estuary. Plant and Soil 510: 727.
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Brazilian Mangroves and Salt Marshes. Chapter 18: 365.
Salt Marshes. 10: 257.
Salt Marshes. Part II: 155.
Salt Marshes. 18: 476.
Blue Carbon Dynamics of the Indian Ocean. Chapter 6: 171.
World Seas: An Environmental Evaluation. : 79.
Microorganisms in Saline Environments: Strategies and Functions. Chapter 2: 19.
Advances in Remote Sensing for Natural Resource Monitoring. : 247.
Coastal Wetlands. : 1.
Wetland Carbon and Environmental Management. : 1.
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International Horseshoe Crab Conservation and Research Efforts: 2007- 2020. Chapter 10: 135.
Handbook of Halophytes. Chapter 20: 623.
Salt Marshes. Part III: 335.
IUCN Global Ecosystem Typology 2.0: descriptive profiles for biomes and ecosystem functional groups. : .
Processes in GeoMedia—Volume VII. Chapter 28: 271.
Life Below Water. Chapter 136: 933.
Physical and Mathematical Modeling of Earth and Environment Processes—2022. Chapter 28: 277.
Research Directions, Challenges and Achievements of Modern Geography. Chapter 11: 207.
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Coastal Wetlands. : 965.
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Landscapes of the Anthropocene with Google Earth. Chapter 6: 129.
Blue Carbon Mangrove Ecosystems. Chapter 4: 33.
Environmental Oceanography and Coastal Dynamics. Chapter 2: 27.
Life Below Water. Chapter 136-1: 1.
Treatise on Estuarine and Coastal Science (Second Edition). : 132.
The Blue Economy. Chapter 10: 159.
Life Below Water. Chapter 79: 907.
The Blue Compendium. Chapter 7: 213.
Handbook of Halophytes. Chapter 20-1: 1.
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Fish Diversity of Japan. Chapter 22: 379.
Blue Economy. Chapter 3: 55.
The Blue Compendium. Chapter 17: 619.
Marine Pollution – Monitoring, Management and Mitigation. Chapter 15: 317.
The Blue Compendium. Chapter 10: 333.
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Blue Carbon Dynamics of the Indian Ocean. Chapter 1: 1.
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Halophytes vis-à-vis Saline Agriculture. Chapter 5: 125.
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