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dc.contributor.author
Giménez García, Angel
dc.contributor.author
Allen Perkins, Alfonso
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Bartomeus, Ignasi
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Balbi, Stefano
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Knapp, Jessica L.
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Hevia, Martin
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Woodcock, Ben Alex
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Smagghe, Guy
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Miñarro, Marcos
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Eeraerts, Maxime
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Colville, Jonathan F.
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Hipólito, Juliana
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Cavigliasso, Pablo
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Nates Parra, Guiomar
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Herrera, Jose
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Cusser, Sarah
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Nabaes Jodar, Diego Nicolás
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Garibaldi, Lucas Alejandro
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Sutter, Louis
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Dupont, Yoko L.
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Dalsfgaard, Bo
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da Encarnação Coutinho, Jeferson Gabriel
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Lázaro, Amparo
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Andersson, Georg K.S.
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Raine, Nigel E.
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Krishnan,Smitha
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Dainese, Matteo
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van der Werf, Wopke
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Smith, Henrik G.
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Magrach, Ainhoa
dc.date.available
2024-04-24T11:21:13Z
dc.date.issued
2023-10-04
dc.identifier.citation
Giménez García, Angel; Allen Perkins, Alfonso; Bartomeus, Ignasi; Balbi, Stefano; Knapp, Jessica L.; et al.; Pollination supply models from a local to global scale; Copernicus Publications; Web Ecology; 23; 2; 4-10-2023; 99-129
dc.identifier.uri
http://hdl.handle.net/11336/233945
dc.description.abstract
Ecological intensification has been embraced with great interest by the academic sector but is still rarely taken up by farmers because monitoring the state of different ecological functions is not straightforward. Modelling tools can represent a more accessible alternative of measuring ecological functions which could help promote their use amongst farmers and otherdecision-makers. In the case of crop pollination, modelling has traditionally followed either a mechanistic or a data-driven approach. Mechanistic models simulate the habitat preferences and foraging behaviour of pollinators, while data-driven models associate georeferenced variables with real observations. Here, we test these two approaches to predict pollination supply, andvalidate these predictions using data from a newly released global dataset on pollinator visitation rates to different crops. We use one of the most extensively used models for the mechanistic approach, while for the data-driven approach, we select among a comprehensive set of state-of-the-art machine-learning models. Moreover, we explore a mixed approach, where data-derived inputs, rather than expert assessment, inform the mechanistic model. We find that, at a global scale, machine-learning models work best, offering a rank-correlation coefficient between predictions and observations of pollinator visitation rates of 0.56. In turn, the mechanistic model works moderately well at a global scale for wild bees other than bumblebees. Biomes characterised by temperate or Mediterranean forests show a better agreement between mechanistic model predictions and observations, probably due to more comprehensive ecological knowledge and therefore better parameterization of input variables for these biomes. This study highlights the challenges of transferring input variables across multiple biomes, as expected given the different composition of species in different biomes. Our results provide clear guidance on which pollination supply models perform best at different spatial scales – the first step toward bridging the stakeholder-academia gap in modelling ecosystem service delivery under ecological intensification.
dc.format
application/pdf
dc.language.iso
eng
dc.publisher
Copernicus Publications
dc.rights
info:eu-repo/semantics/openAccess
dc.rights.uri
https://creativecommons.org/licenses/by/2.5/ar/
dc.subject
CROP POLLINATION
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MODELLING TOOLS
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ECOLOGICAL FUNCTIONS
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PREDICTION
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Ecología
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Ciencias Biológicas
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CIENCIAS NATURALES Y EXACTAS
dc.title
Pollination supply models from a local to global scale
dc.type
info:eu-repo/semantics/article
dc.type
info:ar-repo/semantics/artículo
dc.type
info:eu-repo/semantics/publishedVersion
dc.date.updated
2023-11-13T15:59:13Z
dc.identifier.eissn
1399-1183
dc.journal.volume
23
dc.journal.number
2
dc.journal.pagination
99-129
dc.journal.pais
Alemania
dc.journal.ciudad
Göttingen
dc.description.fil
Fil: Giménez García, Angel. Universidad del País Vasco; España
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Fil: Allen Perkins, Alfonso. Consejo Superior de Investigaciones Científicas. Estación Biológica de Doñana; España. Universidad Politécnica de Madrid; España
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Fil: Bartomeus, Ignasi. Consejo Superior de Investigaciones Científicas. Estación Biológica de Doñana; España
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Fil: Balbi, Stefano. Universidad del País Vasco; España
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Fil: Knapp, Jessica L.. Lund University; Suecia. Trinity College; Reino Unido
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Fil: Hevia, Martin. Universidad Autónoma de Madrid; España
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Fil: Woodcock, Ben Alex. Centre For Ecology And Hydrology; Reino Unido
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Fil: Smagghe, Guy. University of Ghent; Bélgica
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Fil: Miñarro, Marcos. Servicio Regional de Investigación y Desarrollo Agroalimentario; España
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Fil: Eeraerts, Maxime. Michigan State University; Estados Unidos
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Fil: Colville, Jonathan F.. University of Cape Town; Sudáfrica
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Fil: Hipólito, Juliana. Universidade Federal da Bahia; Brasil. National Institute for Amazonian Research; Brasil
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Fil: Cavigliasso, Pablo. Instituto Nacional de Tecnología Agropecuaria. Centro Regional Córdoba. Estación Experimental Agropecuaria Marcos Juárez; Argentina
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Fil: Nates Parra, Guiomar. Universidad Nacional de Colombia; Colombia
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Fil: Herrera, Jose. Universidad de Cádiz; España
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Fil: Cusser, Sarah. Santa Barbara Botanic Garden; Estados Unidos
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Fil: Nabaes Jodar, Diego Nicolás. Consejo Nacional de Investigaciones Científicas y Técnicas. Centro Científico Tecnológico Conicet - Patagonia Norte. Instituto de Investigaciones En Recursos Naturales, Agroecología y Desarrollo Rural. - Universidad Nacional de Rio Negro. Instituto de Investigaciones En Recursos Naturales, Agroecología y Desarrollo Rural; Argentina
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Fil: Garibaldi, Lucas Alejandro. Consejo Nacional de Investigaciones Científicas y Técnicas. Centro Científico Tecnológico Conicet - Patagonia Norte. Instituto de Investigaciones En Recursos Naturales, Agroecología y Desarrollo Rural. - Universidad Nacional de Rio Negro. Instituto de Investigaciones En Recursos Naturales, Agroecología y Desarrollo Rural; Argentina
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Fil: Sutter, Louis. Agroscope.; Suiza
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Fil: Dupont, Yoko L.. University Aarhus; Dinamarca
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Fil: Dalsfgaard, Bo. Universidad de Copenhagen; Dinamarca
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Fil: da Encarnação Coutinho, Jeferson Gabriel. Universidade Federal da Bahia; Brasil
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Fil: Lázaro, Amparo. Consejo Superior de Investigaciones Científicas. Instituto Mediterráneo de Estudios Avanzados; España. Universidad de las Islas Baleares; España
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Fil: Andersson, Georg K.S.. Lund University; Suecia
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Fil: Raine, Nigel E.. University of Guelph; Canadá
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Fil: Krishnan,Smitha. Eidgenossische Technische Hochschule zurich (eth Zurich);
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Fil: Dainese, Matteo. Universita di Verona; Italia
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Fil: van der Werf, Wopke. University of Agriculture Wageningen; Países Bajos
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Fil: Smith, Henrik G.. Lund University; Suecia
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Fil: Magrach, Ainhoa. Universidad del País Vasco; España
dc.journal.title
Web Ecology
dc.relation.alternativeid
info:eu-repo/semantics/altIdentifier/url/https://we.copernicus.org/articles/23/99/2023/
dc.relation.alternativeid
info:eu-repo/semantics/altIdentifier/doi/https://doi.org/10.5194/we-23-99-2023
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