Nicholls, R. J. Adapting to sea-level rise. in Resilience: The Science of Adaptation to Climate Change (eds Zommers, Z. & Alverson, K) Ch. 2 (Elsevier, 2018).

Oppenheimer, M. et al. in IPCC Special Report on the Ocean and Cryosphere in a Changing Climate (eds Pörtner, H.-O. et al.) 321–445 (Cambridge Univ. Press, 2019).

Cooley, S. et al. in Climate Change 2022: Impacts, Adaptation and Vulnerability (eds Pörtner, H.-O. et al.) 379–550 (Cambridge Univ. Press, 2022).

Vitousek, S. et al. Doubling of coastal flooding frequency within decades due to sea-level rise. Sci. Rep. 7, 1399 (2017).

Article 

Google Scholar
 

Kirezci, E. et al. Projections of global-scale extreme sea levels and resulting episodic coastal flooding over the 21st century. Sci. Rep. 10, 11629 (2020).

Article 
CAS 

Google Scholar
 

Fox-Kemper, B. et al. in Climate Change 2021: The Physical Science Basis (eds Masson-Delmotte, V. et al.) 1211–1362 (Cambridge Univ. Press, 2021).

Muis, S., Haigh, I. D., Guimarães Nobre, G., Aerts, J. C. & Ward, P. J. Influence of El Niño-Southern Oscillation on global coastal flooding. Earth’s Future 6, 1311–1322 (2018).

Article 

Google Scholar
 

Almar, R. et al. Influence of El Niño on the variability of global shoreline position. Nat. Commun. 14, 3133 (2023).

Article 
CAS 

Google Scholar
 

Strauss, B. H. et al. Economic damages from Hurricane Sandy attributable to sea level rise caused by anthropogenic climate change. Nat. Commun. 12, 2720 (2021).

Article 
CAS 

Google Scholar
 

Calafat, F. M., Wahl, T., Tadesse, M. G. & Sparrow, S. N. Trends in Europe storm surge extremes match the rate of sea-level rise. Nature 603, 841–845 (2022).

Article 
CAS 

Google Scholar
 

Menéndez, M. & Woodworth, P. L. Changes in extreme high water levels based on a quasi-global tide-gauge data set. J. Geophys. Res. 115, C10011 (2010).


Google Scholar
 

Marcos, M., Calafat, F. M., Berihuete, Á & Dangendorf, S. Long-term variations in global sea level extremes. J. Geophys. Res. Oceans 120, 8115–8134 (2015).

Article 

Google Scholar
 

Marcos, M. & Woodworth, P. L. Spatiotemporal changes in extreme sea levels along the coasts of the North Atlantic and the Gulf of Mexico. J. Geophys. Res. Oceans 122, 7031–7048 (2017).

Article 

Google Scholar
 

Morim, J. et al. Observations reveal changing coastal storm extremes around the United States. Nat. Clim. Change 15, 538–545 (2025).

Article 

Google Scholar
 

Haigh, I. D. et al. The tides they are a-changin’: a comprehensive review of past and future nonastronomical changes in tides, their driving mechanisms, and future implications. Rev. Geophys. 58, e2018RG000636 (2020).

Article 

Google Scholar
 

Marcos, M. & Amores, A. Quantifying anthropogenic and natural contributions to thermosteric sea level rise. Geophys. Res. Lett. 41, 2502–2507 (2014).

Article 

Google Scholar
 

Slangen, A. B., Church, J. A., Zhang, X. & Monselesan, D. Detection and attribution of global mean thermosteric sea level change. Geophys. Res. Lett. 41, 5951–5959 (2014).

Article 

Google Scholar
 

Marzeion, B., Cogley, J. G., Richter, K. & Parkes, D. Attribution of global glacier mass loss to anthropogenic and natural causes. Science 345, 919–921 (2014).

Article 
CAS 

Google Scholar
 

Slangen, A. B. et al. Anthropogenic forcing dominates global mean sea-level rise since 1970. Nat. Clim. Change 6, 701–705 (2016).

Article 

Google Scholar
 

Samanta, D. et al. The role of anthropogenic forcings on historical sea-level change in the Indo-Pacific warm pool region. Earth’s Future 12, e2023EF003684 (2024).

Article 

Google Scholar
 

Palmer, M. D., Domingues, C. M., Slangen, A. B. A. & Dias, F. B. An ensemble approach to quantify global mean sea-level rise over the 20th century from tide gauge reconstructions. Environ. Res. Lett. 16, 044043 (2021).

Article 

Google Scholar
 

Dangendorf, S. et al. Probabilistic reconstruction of sea-level changes and their causes since 1900. Earth Syst. Sci. Data 16, 3471–3494 (2024).

Article 

Google Scholar
 

Holgate, S. J. et al. New data systems and products at the permanent service for mean sea level. J. Coast. Res. 29, 493–504 (2013).


Google Scholar
 

Haigh, I. D. et al. GESLA version 3: a major update to the global higher-frequency sea-level dataset. Geosci. Data J. 10, 293–314 (2023).

Article 

Google Scholar
 

Taylor, K. E., Stouffer, R. J. & Meehl, G. A. An overview of CMIP5 and the experiment design. Bull. Am. Meteorol. Soc. 93, 485–498 (2012).

Article 

Google Scholar
 

Dangendorf, S. et al. Variable contributions of vertical land motion to sea-level change inferred at tide gauges. Nat. Geosci. https://doi.org/10.1038/s41561-026-02005-1 (2026).

Frederikse, T. et al. The causes of sea-level rise since 1900. Nature 584, 393–397 (2020).

Article 
CAS 

Google Scholar
 

Chao, B. F., Wu, Y. H. & Li, Y. S. Impact of artificial reservoir water impoundment on global sea level. Science 320, 212–214 (2008).

Article 
CAS 

Google Scholar
 

Wada, Y. et al. Fate of water pumped from underground and contributions to sea-level rise. Nat. Clim. Change 6, 777–780 (2016).

Article 

Google Scholar
 

Humphrey, V. & Gudmundsson, L. GRACE-REC: a reconstruction of climate-driven water storage changes over the last century. Earth Syst. Sci. Data 11, 1153–1170 (2019).

Article 

Google Scholar
 

Slangen, A. B. et al. Evaluating model simulations of twentieth-century sea level rise. Part I: Global mean sea level change. J. Clim. 30, 8539–8563 (2017).

Article 

Google Scholar
 

Church, J. A., Monselesan, D., Gregory, J. M. & Marzeion, B. Evaluating the ability of process based models to project sea-level change. Environ. Res. Lett. 8, 014051 (2013).

Article 

Google Scholar
 

Delworth, T. L. & Zeng, F. Multicentennial variability of the Atlantic meridional overturning circulation and its climatic influence in a 4000 year simulation of the GFDL CM2.1 climate model. Geophys. Res. Lett. 39, L13702 (2012).

Article 

Google Scholar
 

Stevens, B. Rethinking the lower bound on aerosol radiative forcing. J. Clim. 28, 4794–4819 (2015).

Article 

Google Scholar
 

Riva, R. E. M., Bamber, J. L., Lavallée, D. A. & Wouters, B. Sea-level fingerprint of continental water and ice mass change from GRACE. Geophys. Res. Lett. 37, L19605 (2010).

Article 

Google Scholar
 

Fiedler, J. W. & Conrad, C. P. Spatial variability of sea level rise due to water impoundment behind dams. Geophys. Res. Lett. 37, L12603 (2010).

Article 

Google Scholar
 

Hawley, W. B., Hay, C. C., Mitrovica, J. X. & Kopp, R. E. A spatially variable time series of sea level change due to artificial water impoundment. Earth’s Future 8, e2020EF001497 (2020).

Article 

Google Scholar
 

Larsen, C. F., Echelmeyer, K. A., Freymueller, J. T. & Motyka, R. J. Tide gauge records of uplift along the northern Pacific-North American plate boundary, 1937 to 2001. J. Geophys. Res. 108, 2216 (2003).


Google Scholar
 

Phien-wej, N., Giao, P. H. & Nutalaya, P. Land subsidence in Bangkok, Thailand. Eng. Geol. 82, 187–201 (2006).

Article 

Google Scholar
 

Arns, A., Wahl, T., Haigh, I. D., Jensen, J. & Pattiaratchi, C. Estimating extreme water level probabilities: a comparison of the direct methods and recommendations for best practise. Coast. Eng. 81, 51–66 (2013).

Article 

Google Scholar
 

Wahl, T. et al. Understanding extreme sea levels for broad-scale coastal impact and adaptation analysis. Nat. Commun. 8, 16075 (2017).

Article 
CAS 

Google Scholar
 

Jänicke, L. et al. Assessment of tidal range changes in the North Sea from 1958 to 2014. J. Geophys. Res. Oceans 126, e2020JC016456 (2021).

Article 

Google Scholar
 

Opel, L., Schindelegger, M. & Ray, R. D. A likely role for stratification in long-term changes of the global ocean tides. Commun. Earth Environ. 5, 261 (2024).

Article 

Google Scholar
 

Flick, R. E., Murray, J. F. & Ewing, L. C. Trends in United States tidal datum statistics and tide range. J. Waterw. Port Coast. Ocean Eng. 129, 155–164 (2003).

Article 

Google Scholar
 

Familkhalili, R. & Talke, S. A. The effect of channel deepening on tides and storm surge: a case study of Wilmington, NC. Geophys. Res. Lett. 43, 9138–9147 (2016).

Article 

Google Scholar
 

Zhang, Q. et al. Enhanced Atlantic Meridional Mode predictability in a high-resolution prediction system. Sci. Adv. 10, eado6298 (2024).

Article 

Google Scholar
 

Xu, G. et al. Improving simulations of daily mean dynamic sea level extremes in the Gulf of Mexico with high-resolution community earth system model. Environ. Res. Lett. 20, 104023 (2025).

Article 

Google Scholar
 

Dangendorf, S., Arns, A., Pinto, J. G., Ludwig, P. & Jensen, J. The exceptional influence of storm ‘Xaver’ on design water levels in the German Bight. Environ. Res. Lett. 11, 054001 (2016).

Article 

Google Scholar
 

Marcos, M., Agulles, M., Amores, A., Feng, X. & Robson, J.I. Constraining extreme sea levels along the European coasts from a large ensemble of climate models. J. Geophys. Res. Oceans 130, e2025JC022863 (2025).

Article 

Google Scholar
 

Haigh, I. D. et al. Estimating present day extreme water level exceedance probabilities around the coastline of Australia: tropical cyclone-induced storm surges. Clim. Dynam. 42, 139–157 (2014).

Article 

Google Scholar
 

Dullaart, J. C. et al. Accounting for tropical cyclones more than doubles the global population exposed to low-probability coastal flooding. Commun. Earth Environ. 2, 135 (2021).

Article 

Google Scholar
 

Collings, T. P. et al. Global application of a regional frequency analysis to extreme sea levels. Nat. Hazards Earth Syst. Sci. 24, 2403–2423 (2024).

Article 

Google Scholar
 

Marcos, M., Agulles, M., Amores, A., Feng, X. & Robson, J. Constraining extreme storm surges along the European coasts from a large ensemble of climate models. J. Geophys. Res. Oceans 130, e2025JC022863 (2025).

Article 

Google Scholar
 

Lang, A. & Mikolajewicz, U. The long-term variability of extreme sea levels in the German Bight. Ocean Sci. 15, 651–668 (2019).

Article 

Google Scholar
 

Stuart-Smith, R. F. et al. Filling the evidentiary gap in climate litigation. Nat. Clim. Change 11, 651–655 (2021).

Article 

Google Scholar
 

Setzer, J. & Higham, C. Global Trends In Climate Change Litigation: 2025 Snapshot (Grantham Research Institute on Climate Change and the Environment, 2025); https://doi.org/10.21953/LSE.LH46LE9Y8SGI

Pawlowicz, R. M_Map: A Mapping Package for MATLAB. Version X.X (EOAS, 2020); https://www.eoas.ubc.ca/~rich/map.html

Gupta, A. S., Jourdain, N. C., Brown, J. N. & Monselesan, D. Climate drift in the CMIP5 models. J. Clim. 26, 8597–8615 (2013).

Article 

Google Scholar
 

Masson-Delmotte, V. M. et al. in Climate Change 2013: The Physical Science Basis (eds Stocker, T. F. et al.) 383–464 (IPCC, Cambridge Univ. Press, 2013).

Parkes, D. & Marzeion, B. Twentieth-century contribution to sea-level rise from uncharted glaciers. Nature 563, 551–554 (2018).

Article 
CAS 

Google Scholar
 

Fettweis, X. et al. Estimating the Greenland ice sheet surface mass balance contribution to future sea level rise using the regional atmospheric climate model MAR. Cryosphere 7, 469–489 (2013).

Article 

Google Scholar
 

Rotstayn, L. D., Collier, M. A., Shindell, D. T. & Boucher, O. Why does aerosol forcing control historical global-mean surface temperature change in CMIP5 models?. J. Clim. 28, 6608–6625 (2015).

Article 

Google Scholar
 

Wunsch, C. & Stammer, D. Atmospheric loading and the oceanic ‘inverted barometer’ effect. Rev. Geophys. 35, 79–107 (1997).

Article 

Google Scholar
 

Piecuch, C. G., Thompson, P. R. & Donohue, K. A. Air pressure effects on sea level changes during the twentieth century. J. Geophys. Res. Oceans 121, 7917–7930 (2016).

Article 

Google Scholar
 

Moore, J. C., Grinsted, A. & Jevrejeva, S. New tools for analyzing time series relationships and trends. Eos Trans. Am. Geophys. Union 86, 226–232 (2005).

Article 

Google Scholar
 

Wöppelmann, G. & Marcos, M. Vertical land motion as a key to understanding sea level change and variability. Rev. Geophys. 54, 64–92 (2016).

Article 

Google Scholar
 

Shirzaei, M. et al. Measuring, modelling and projecting coastal land subsidence. Nat. Rev. Earth Environ. 2, 40–58 (2021).

Article 

Google Scholar
 

Gravelle, M. et al. The ULR-repro3 GPS data reanalysis and its estimates of vertical land motion at tide gauges for sea level science. Earth Syst. Sci. Data 15, 497–509 (2023).

Article 

Google Scholar
 

Hammond, W. C., Blewitt, G., Kreemer, C. & Nerem, R. S. GPS imaging of global vertical land motion for studies of sea level rise. J. Geophys. Res. Solid Earth 126, e2021JB022355 (2021).

Article 

Google Scholar
 

Santer, B. D. et al. Statistical significance of trends and trend differences in layer-average atmospheric temperature time series. J. Geophys. Res. Atmos. 105, 7337–7356 (2000).

Article 

Google Scholar
 

Dangendorf, S., et al. Human-driven sea-level rise has quadrupled the frequency of coastal sea-level extremes since 1900. Zenodo https://doi.org/10.5281/zenodo.19698144 (2026).