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dc.contributor.authorMao, Yongjing : Coco, Giovanni : Vitousek, Sean : Antolinez, Jose A. A.
dc.contributor.authorAzorakos, Georgios
dc.contributor.authorBanno, Masayuki
dc.contributor.authorBouvier, Clement and Bryan, Karin R.
dc.contributor.authorCagigal, Laura
dc.contributor.authorCalcraft, Kit
dc.contributor.authorCastelle, Bruno
dc.contributor.authorChen, Xinyu
dc.contributor.authorD'Anna, Maurizio
dc.contributor.authorde Freitas Pereira, Lucas and de Santiago, Inaki
dc.contributor.authorDeshmukh, Aditya N.
dc.contributor.authorDong, Bixuan and Elghandour, Ahmed
dc.contributor.authorGohari, Amirmahdi
dc.contributor.authorde la Pena, Eduardo and Harley, Mitchell D.
dc.contributor.authorIbrahim, Michael
dc.contributor.authorIdier, Deborah
dc.contributor.authorCardona, Camilo Jaramillo
dc.contributor.authorLim, Changbin
dc.contributor.authorMingo, Ivana
dc.contributor.authorO'Grady, Julian and Pais, Daniel
dc.contributor.authorRepina, Oxana
dc.contributor.authorRobinet, Arthur
dc.contributor.authorRoelvink, Dano
dc.contributor.authorSimmons, Joshua
dc.contributor.authorSogut, Erdinc
dc.contributor.authorWilson, Katie and Splinter, Kristen D.
dc.date.accessioned2025-11-13T12:27:37Z-
dc.date.available2025-11-13T12:27:37Z-
dc.date.issued2025
dc.identifierWOS:001534264400001
dc.identifier.urihttp://dspace.azti.es/handle/24689/2507-
dc.description.abstractRobust predictions of shoreline change are critical for sustainable coastal management. Despite advancements in shoreline models, objective benchmarking remains limited. Here we present results from ShoreShop2.0, an international collaborative benchmarking workshop, where 34 groups submitted shoreline change predictions in a blind competition. Subsets of shoreline observations at an undisclosed site (BeachX) over short (5-year) and medium (50-year) periods were withheld from modelers and used for model benchmarking. Using satellite-derived shoreline datasets for calibration and evaluation, the best performing models achieved prediction accuracies on the order of 10 m, comparable to the accuracy of the satellite shoreline data, indicating that certain beaches can be modelled nearly as well as they can be remotely observed. The outcomes from this collaborative benchmarking competition critically review the present state-of-the-art in shoreline change prediction as well as reveal model limitations, facilitate improvements, and offer insights for advancing shoreline-prediction capabilities.
dc.language.isoEnglish
dc.publisherSPRINGERNATURE
dc.subjectSEA-LEVEL RISE
dc.subjectCROSS-SHORE
dc.subjectBEACHES
dc.subjectCOASTAL
dc.subjectCOMPLEXITY
dc.subjectLONGSHORE
dc.subjectROTATION
dc.subjectTIME
dc.titleBenchmarking shoreline prediction models over multi-decadal timescales
dc.typeArticle
dc.identifier.journalCOMMUNICATIONS EARTH \& ENVIRONMENT
dc.format.volume6
dc.contributor.funderARC Future Fellowship [FT220100009]
dc.contributor.funderUS Geological Survey Research Co-op [G21AC10672]
dc.contributor.funderOur Changing Coast Project [MBIE-NZ RTVU2206]
dc.contributor.funderUSGS Coastal and Marine Hazards and Resources Program
dc.contributor.funderThinkInAzul program - MCIN/Ministerio de Ciencia e Innovacion
dc.contributor.funderEuropean Union NextGeneration EU [PRTR-C17.I1]
dc.contributor.funderComunidad de Cantabria
dc.contributor.funderMargarita Salas post-doctoral fellowship - European Union-NextGenerationEU, Ministry of Universities, and the Recovery and Resilience Facility, through University of Cantabria
dc.contributor.funderGovernment of Cantabria
dc.contributor.funderEuropean Union NextGenerationEU/PRTR [2023/TCN/003, CPP2022-010118]
dc.contributor.funderAgence Nationale de la Recherche [ANR-21-CE01-0015]
dc.contributor.funderEuropean Union [101107336]
dc.contributor.funderPortuguese Fundacao para a Ciencia e Tecnologia (FCT) [2022.13776.BDANA]
dc.contributor.funderKOSTARISK joint laboratory
dc.contributor.funderPrograma de Movilidad del Personal Investigador Doctor del Gobierno Vasco
dc.contributor.funderJSPS KAKENHI [24K00996]
dc.contributor.funderMinistry of Education, Culture, Sports, Science and Technology (MEXT), Japan [JPMXD0722678534]
dc.contributor.funderAgence Nationale de la Recherche (ANR) [ANR-21-CE01-0015] Funding Source: Agence Nationale de la Recherche (ANR)
dc.identifier.e-issn2662-4435
dc.identifier.doi10.1038/s43247-025-02550-4
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