Challenging the geographic bias in recognising large-scale patterns of diversity change

被引:0
作者
Zhang, Wenyuan [1 ,4 ,5 ]
Grenyer, Richard [2 ]
Gaston, Kevin J. [3 ]
Sheldon, Ben C. [1 ]
机构
[1] Univ Oxford, Edward Grey Inst, Dept Biol, Oxford, England
[2] Univ Oxford, Sch Geog & Environm, Oxford, England
[3] Univ Exeter, Environm & Sustainabil Inst, Cornwall, England
[4] McGill Univ, Quebec Ctr Biodivers Sci, Dept Biol, Montreal, PQ H3A 1B1, Canada
[5] McGill Univ, Quebec Ctr Biodivers Sci, Dept Biol, Montreal, PQ, Canada
关键词
biodiversity change; functional diversity; nongeographic patterns; pattern recognition; phylogenetic diversity; spatial distribution; taxonomic diversity; temporal trends; SELF-ORGANIZING MAP; CLIMATE-CHANGE; PHYLOGENETIC DIVERSITY; FUNCTIONAL DIVERSITY; BIODIVERSITY CHANGE; SPECIES-DIVERSITY; CONSERVATION; IMPUTATION; COMMUNITIES; POPULATION;
D O I
10.1111/ddi.13775
中图分类号
X176 [生物多样性保护];
学科分类号
090705 ;
摘要
AimGeographic structure is a fundamental organising principle in ecological and Earth sciences, and our planet is conceptually divided into distinct geographic clusters (e.g. ecoregions and biomes) demarcating unique diversity patterns. Given recent advances in technology and data availability, however, we ask whether geographically clustering diversity time-series should be the default framework to identify meaningful patterns of diversity change.LocationNorth America.TaxonAves.MethodsWe first propose a framework that recognises patterns of diversity change based on similarities in the behaviour of diversity time-series, independent of their specific or relative spatial locations. Specifically, we applied an artificial neural network approach, the self-organising map (SOM), to group time-series of over 0.9 million observations from the North American Breeding Birds Survey (BBS) data from 1973 to 2016. We then test whether time-series identified as having similar behaviour are geographically structured.ResultsWe find little evidence of strong geographic structure in patterns of diversity change for North American breeding birds. The majority of the recognised diversity time-series patterns tend to be indistinguishable from being independently distributed in space.Main ConclusionsOur results suggest that geographic proximity may not correspond to shared temporal trends in diversity; assuming that geographic clustering is the basis for analysis may bias diversity trend estimation. We suggest that approaches that consider variability independently of geographic structure can serve as a useful addition to existing organising rules of biodiversity time-series.
引用
收藏
页码:13 / 25
页数:13
相关论文
共 78 条
  • [61] Cerrado ecoregions: A spatial framework to assess and prioritize Brazilian savanna environmental diversity for conservation
    Sano, Edson E.
    Rodrigues, Ariane A.
    Martins, Eder S.
    Bettiol, Giovana M.
    Bustamante, Mercedes M. C.
    Bezerra, Amanda S.
    Couto Jr, Antonio F.
    Vasconcelos, Vinicius
    Schuler, Jessica
    Bolf, Edson L.
    [J]. JOURNAL OF ENVIRONMENTAL MANAGEMENT, 2019, 232 : 818 - 828
  • [62] Species diversity: from global decreases to local increases
    Sax, DF
    Gaines, SD
    [J]. TRENDS IN ECOLOGY & EVOLUTION, 2003, 18 (11) : 561 - 566
  • [63] Priority list of biodiversity metrics to observe from space
    Skidmore, Andrew K.
    Coops, Nicholas C.
    Neinavaz, Elnaz
    Ali, Abebe
    Schaepman, Michael E.
    Paganini, Marc
    Kissling, W. Daniel
    Vihervaara, Petteri
    Darvishzadeh, Roshanak
    Feilhauer, Hannes
    Fernandez, Miguel
    Fernandez, Nestor
    Gorelick, Noel
    Geizendorffer, Ilse
    Heiden, Uta
    Heurich, Marco
    Hobern, Donald
    Holzwarth, Stefanie
    Muller-Karger, Frank E.
    Van De Kerchove, Ruben
    Lausch, Angela
    Leitau, Pedro J.
    Lock, Marcelle C.
    Mucher, Caspar A.
    O'Connor, Brian
    Rocchini, Duccio
    Turner, Woody
    Vis, Jan Kees
    Wang, Tiejun
    Wegmann, Martin
    Wingate, Vladimir
    [J]. NATURE ECOLOGY & EVOLUTION, 2021, 5 (07) : 896 - 906
  • [64] A global test of ecoregions
    Smith, Jeffrey R.
    Letten, Andrew D.
    Ke, Po-Ju
    Anderson, Christopher B.
    Hendershot, J. Nicholas
    Dhami, Manpreet K.
    Dlott, Glade A.
    Grainger, Tess N.
    Howard, Meghan E.
    Morrison, Beth M. L.
    Routh, Devin
    San Juan, Priscilla A.
    Mooney, Harold A.
    Mordecai, Erin A.
    Crowther, Thomas W.
    Daily, Gretchen C.
    [J]. NATURE ECOLOGY & EVOLUTION, 2018, 2 (12): : 1889 - 1896
  • [65] Climate change contributes to widespread declines among bumble bees across continents
    Soroye, Peter
    Newbold, Tim
    Kerr, Jeremy
    [J]. SCIENCE, 2020, 367 (6478) : 685 - +
  • [66] Tilman D., 1982, Monographs in Population Biology, pi
  • [67] Landscape moderation of biodiversity patterns and processes - eight hypotheses
    Tscharntke, Teja
    Tylianakis, Jason M.
    Rand, Tatyana A.
    Didham, Raphael K.
    Fahrig, Lenore
    Peter Batary
    Bengtsson, Janne
    Clough, Yann
    Crist, Thomas O.
    Dormann, Carsten F.
    Ewers, Robert M.
    Fruend, Jochen
    Holt, Robert D.
    Holzschuh, Andrea
    Klein, Alexandra M.
    Kleijn, David
    Kremen, Claire
    Landis, Doug A.
    Laurance, William
    Lindenmayer, David
    Scherber, Christoph
    Sodhi, Navjot
    Steffan-Dewenter, Ingolf
    Thies, Carsten
    van der Putten, Wim H.
    Westphal, Catrin
    [J]. BIOLOGICAL REVIEWS, 2012, 87 (03) : 661 - 685
  • [68] On the relationship between phylogenetic diversity and trait diversity
    Tucker, Caroline M.
    Davies, T. Jonathan
    Cadotte, Marc W.
    Pearse, William D.
    [J]. ECOLOGY, 2018, 99 (06) : 1473 - 1479
  • [69] The undetectability of global biodiversity trends using local species richness
    Valdez, Jose W. W.
    Callaghan, Corey T. T.
    Junker, Jessica
    Purvis, Andy
    Hill, Samantha L. L.
    Pereira, Henrique M. M.
    [J]. ECOGRAPHY, 2023, 2023 (03)
  • [70] WHAT TO PROTECT - SYSTEMATICS AND THE AGONY OF CHOICE
    VANEWRIGHT, RI
    HUMPHRIES, CJ
    WILLIAMS, PH
    [J]. BIOLOGICAL CONSERVATION, 1991, 55 (03) : 235 - 254