Outstanding Challenges in the Transferability of Ecological Models

dc.contributor.authorYates, Katherine L.
dc.contributor.authorBouchet, Phil J.
dc.contributor.authorCaley, M. Julian
dc.contributor.authorMengersen, Kerrie
dc.contributor.authorRandin, Christophe F.
dc.contributor.authorParnell, Stephen
dc.contributor.authorFielding, Alan H.
dc.contributor.authorBamford, Andrew J.
dc.contributor.authorBan, Stephen
dc.contributor.authorBarbosa, A. Márcia
dc.contributor.authorDormann, Carsten F.
dc.contributor.authorElith, Jane
dc.contributor.authorEmbling, Clare B.
dc.contributor.authorErvin, Gary N.
dc.contributor.authorFisher, Rebecca
dc.contributor.authorGould, Susan
dc.contributor.authorGraf, Roland F.
dc.contributor.authorGregr, Edward J.
dc.contributor.authorHalpin, Patrick N.
dc.contributor.authorHeikkinen, Risto K.
dc.contributor.authorHeinänen, Stefan
dc.contributor.authorJones, Alice R.
dc.contributor.authorKrishnakumar, Periyadan K.
dc.contributor.authorLauria, Valentina
dc.contributor.authorLozano-Montes, Hector
dc.contributor.authorMannocci, Laura
dc.contributor.authorMellin, Camille
dc.contributor.authorMesgaran, Mohsen B.
dc.contributor.authorMoreno-Amat, Elena
dc.contributor.authorMormede, Sophie
dc.contributor.authorNovaczek, Emilie
dc.contributor.authorOppel, Steffen
dc.contributor.authorOrtuño Crespo, Guillermo
dc.contributor.authorPeterson, A. Townsend
dc.contributor.authorRapacciuolo, Giovanni
dc.contributor.authorRoberts, Jason J.
dc.contributor.authorRoss, Rebecca E.
dc.contributor.authorScales, Kylie L.
dc.contributor.authorSchoeman, David
dc.contributor.authorSnelgrove, Paul
dc.contributor.authoret al.
dc.date.accessioned2018-10-04T11:39:20Z
dc.date.available2018-10-04T11:39:20Z
dc.date.issued2018
dc.date.updated2018-10-02T07:52:14Z
dc.description.abstractPredictive models are central to many scientific disciplines and vital for informing management in a rapidly changing world. However, limited understanding of the accuracy and precision of models transferred to novel conditions (their ‘trans- ferability’) undermines confidence in their predictions. Here, 50 experts identified priority knowledge gaps which, if filled, will most improve model transfers. These are summarized into six technical and six fundamental challenges, which underlie the combined need to intensify research on the determinants of ecological predictability, including species traits and data quality, and develop best prac- tices for transferring models. Of high importance is the identification of a widely applicable set of transferability metrics, with appropriate tools to quantify the sources and impacts of prediction uncertainty under novel conditions.por
dc.identifier01695347en_US
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dc.identifier.citationYates, Katherine L.; Bouchet, Phil J.; Caley, M. Julian; Mengersen, Kerrie; Randin, Christophe F.; Parnell, Stephen; Fielding, Alan H.; Bamford, Andrew J.; Ban, Stephen; Barbosa, A. Márcia; Dormann, Carsten F.; Elith, Jane; Embling, Clare B.; Ervin, Gary N.; Fisher, Rebecca; Gould, Susan; Graf, Roland F.; Gregr, Edward J.; Halpin, Patrick N.; Heikkinen, Risto K.; Heinänen, Stefan; Jones, Alice R.; Krishnakumar, Periyadan K.; Lauria, Valentina; Lozano-Montes, Hector; Mannocci, Laura; Mellin, Camille; Mesgaran, Mohsen B.; Moreno-Amat, Elena; Mormede, Sophie; Novaczek, Emilie; Oppel, Steffen; Ortuño Crespo, Guillermo; Peterson, A. Townsend; Rapacciuolo, Giovanni; Roberts, Jason J.; Ross, Rebecca E.; Scales, Kylie L.; Schoeman, David; Snelgrove, Paul; et al.Outstanding Challenges in the Transferability of Ecological Models, Trends in Ecology & Evolution, 33, 10, 790-802, 2018.por
dc.identifier.urihttp://hdl.handle.net/10174/23525
dc.language.isoporpor
dc.rightsopenAccesspor
dc.titleOutstanding Challenges in the Transferability of Ecological Modelspor
dc.typearticlepor

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