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Zbiory źródłowe TRY

Kto naprawdę zmierzył rośliny, których cechy pokazuje aplikacja.

TRY Plant Trait Database (wydanie 6.0) nie jest bazą, która sama mierzy rośliny — to zbiornica pracy setek zespołów badawczych. Część cech w naszym katalogu (zimozieloność, pokrój, cykl życiowy) pochodzi z pomiarów udostępnionych tą drogą, a licencja CC BY 4.0 wymaga wskazania każdego zbioru z osobna, nie samej bazy. Poniżej stoi 206 zbiorów, z których pochodzi choć jedna wartość widoczna w aplikacji.

Referencja bazy: Kattge, J., Bönisch, G., Díaz, S. i in. (2020). TRY plant trait database — enhanced coverage and open access. Global Change Biology 26: 119–188. https://doi.org/10.1111/gcb.14904

  1. Abisko & Sheffield Database — Cornelissen Johannes

    Cornelissen, J. H. C., H. M. Quested, D. Gwynn-Jones, R. S. P. Van Logtestijn, M. A. H. De Beus, A. Kondratchuk, T. V. Callaghan, and R. Aerts. 2004. Leaf digestibility and litter decomposability are related in a wide range of subarctic plant species and types. Functional Ecology 18:779-786.

  2. BiolFlor Database — Kühn Ingolf

    Kühn, I., W. Durka, and S. Klotz. 2004. BiolFlor - a new plant-trait database as a tool for plant invasion ecology. Diversity and Distribution 10 363-365.

  3. Cedar Creek Plant Physiology Database — Bunker Daniel

  4. GLOPNET - Global Plant Trait Network Database — Wright Ian

    Wright, I. J., P. B. Reich, M. Westoby, D. D. Ackerly, Z. Baruch, F. Bongers, J. Cavender-Bares, T. Chapin, J. H. C. Cornelissen, M. Diemer, J. Flexas, E. Garnier, P. K. Groom, J. Gulias, K. Hikosaka, B. B. Lamont, T. Lee, W. Lee, C. Lusk, J. J. Midgley, M. L. Navas, U. Niinemets, J. Oleksyn, N. Osada, H. Poorter, P. Poot, L. Prior, V. I. Pyankov, C. Roumet, S. C. Thomas, M. G. Tjoelker, E. J. Veneklaas, and R. Villar. 2004. The worldwide leaf economics spectrum. Nature 428:821-827.

  5. The LEDA Traitbase — Kleyer Michael

    Kleyer, M., R. M. Bekker, I. C. Knevel, J. P. Bakker, K. Thompson, M. Sonnenschein, P. Poschlod, J. M. van Groenendael, L. Klimes, J. Klimesova, S. Klotz, G. M. Rusch, Hermy, M. , D. Adriaens, G. Boedeltje, B. Bossuyt, A. Dannemann, P. Endels, L. Götzenberger, J. G. Hodgson, A.-K. Jackel, I. Kühn, D. Kunzmann, W. A. Ozinga, C. Römermann, M. Stadler, J. Schlegelmilch, H. J. Steendam, O. Tackenberg, B. Wilmann, J. H. C. Cornelissen, O. Eriksson, E. Garnier, and B. Peco. 2008. The LEDA Traitbase: a database of life-history traits of the Northwest European flora. Journal of Ecology 96:1266-1274.

  6. Global Seed Mass, Plant Height Database — Moles Angela

    Moles, A. T., D. S. Falster, M. R. Leishman, and M. Westoby. 2004. Small-seeded species produce more seeds per square metre of canopy per year, but not per individual per lifetime. Journal of Ecology 92:384-396.

  7. Reich-Oleksyn Global Leaf N, P Database — Reich Peter

    Reich, P. B., J. Oleksyn, and I. J. Wright. 2009. Leaf phosphorus influences the photosynthesis-nitrogen relation: a cross-biome analysis of 314 species. Oecologia 160:207-212.

  8. Sheffield Database — Cornelissen Johannes

    Cornelissen, J. H. C. 1996. An experimental comparison of leaf decomposition rates in a wide range of temperate plant species and types. Journal of Ecology 84:573-582.

  9. The VISTA Plant Trait Database — Garnier Eric

    Garnier, E., S. Lavorel, P. Ansquer, H. Castro, P. Cruz, J. Dolezal, O. Eriksson, C. Fortunel, H. Freitas, C. Golodets, K. Grigulis, C. Jouany, E. Kazakou, J. Kigel, M. Kleyer, V. Lehsten, J. Leps, T. Meier, R. Pakeman, M. Papadimitriou, V. P. Papanastasis, H. Quested, F. Quetier, M. Robson, C. Roumet, G. Rusch, C. Skarpe, M. Sternberg, J.-P. Theau, A. Thebault, D. Vile, and M. P. Zarovali. 2007. Assessing the effects of land-use change on plant traits, communities and ecosystem functioning in grasslands: A standardized methodology and lessons from an application to 11 European sites. Annals of Botany 99:967-985.

  10. Dispersal Traits Database — Higgins Steve

  11. Leaf and Whole Plant Traits Database — Shipley Bill

    Shipley, B. 1989. The Use of above-Ground Maximum Relative Growth-Rate as an Accurate Predictor of Whole-Plant Maximum Relative Growth-Rate. Functional Ecology 3:771-775.

  12. Chinese Leaf Traits Database — Fang Jingyun

    Han, W. X., J. Y. Fang, D. L. Guo, and Y. Zhang. 2005. Leaf nitrogen and phosphorus stoichiometry across 753 terrestrial plant species in China. New Phytologist 168:377-385.

  13. Categorical Plant Traits Database — Wright Ian

  14. KEW African Plant Traits Database — Kirkup Don

    Kirkup, D., P. Malcolm, G. Christian, and A. Paton. 2005. Towards a digital African Flora. Taxon 54:457-466.

  15. Fonseca/Wright New South Wales Database — Wright Ian

    Fonseca, C. R., J. M. Overton, B. Collins, and M. Westoby. 2000. Shifts in trait-combinations along rainfall and phosphorus gradients. Journal of Ecology 88:964-977.

  16. Overton/Wright New Zealand Database — Wright Ian

  17. Midwestern and Southern US Herbaceous Species Trait Database — Weiher Evan

  18. Leaf Physiology Database — Kattge Jens

    Kattge, J., W. Knorr, T. Raddatz, and C. Wirth. 2009. Quantifying photosynthetic capacity and its relationship to leaf nitrogen content for global-scale terrestrial biosphere models. Global Change Biology 15:976-991.

  19. The Functional Ecology of Trees (FET) Database - Jena — Wirth Christian

    Wirth, C. and J. W. Lichstein. 2009. The Imprint of Species Turnover on Old-Growth Forest Carbon Balances - Insights From a Trait-Based Model of Forest Dynamics. Pages 81-113 in C. Wirth, G. Gleixner, and M. Heimann, editors. Old-Growth Forests: Function, Fate and Value. Springer, New York, Berlin, Heidelberg.

  20. BIOPOP: Functional Traits for Nature Conservation — Poschlod Peter

    Poschlod, P., M. Kleyer, A. K. Jackel, A. Dannemann, and O. Tackenberg. 2003. BIOPOP - a database of plant traits and Internet application for nature conservation. Folia Geobotanica 38:263-271.

  21. ECOQUA South American Plant Traits Database — Pillar Valerio

    Muller, S. C., G. E. Overbeck, J. Pfadenhauer, and V. D. Pillar. 2007. Plant functional types of woody species related to fire disturbance in forest-grassland ecotones. Plant Ecology 189:1-14.

  22. European Mountain Meadows Plant Traits Database — Bahn Michael

    Bahn, M., G. Wohlfahrt, E. Haubner, I. Horak, W. Michaeler, K. Rottmar, U. Tappeiner, and A. Cernusca. 1999. Leaf photosynthesis, nitrogen contents and specific leaf area of 30 grassland species in differently managed mountain ecosystems in the Eastern Alps. Pages 247-255 in A. Cernusca, U. Tappeiner, and N. Bayfield, editors. Land-use changes in European mountain ecosystems. ECOMONT- Concept and Results. Blackwell Wissenschaft, Berlin.

  23. BIOME-BGC Parameterization Database — White Michael

    White, M. A., P. E. Thornton, S. W. Running, and R. R. Nemani. 2000. Parameterization and sensitivity analysis of the BIOME-BGC terrestrial ecosystem model: Net primary production controls. Earth Interactions 4:1-85.

  24. French Massif Central Grassland Trait Database — Louault Frédérique

    Louault, F., V. D. Pillar, J. Aufrere, E. Garnier, and J. F. Soussana. 2005. Plant traits and functional types in response to reduced disturbance in a semi-natural grassland. Journal of Vegetation Science 16:151-160.

  25. Sheffield-Iran-Spain Database — Díaz Sandra

    Díaz, S., J. G. Hodgson, K. Thompson, M. Cabido, J. H. C. Cornelissen, A. Jalili, G. Montserrat-Martí, J. P. Grime, F. Zarrinkamar, Y. Asri, S. R. Band, S. Basconcelo, P. Castro-Díez, G. Funes, B. Hamzehee, M. Khoshnevi, N. Pérez-Harguindeguy, M. C. Pérez-Rontomé, F. A. Shirvany, F. Vendramini, S. Yazdani, R. Abbas-Azimi, A. Bogaard, S. Boustani, M. Charles, M. Dehghan, L. de Torres-Espuny, V. Falczuk, J. Guerrero-Campo, A. Hynd, G. Jones, E. Kowsary, F. Kazemi-Saeed, M. Maestro-Martínez, A. Romo-Díez, S. Shaw, B. Siavash, P. Villar-Salvador, and M. R. Zak. 2004. The plant traits that drive ecosystems: Evidence from three continents. Journal of Vegetation Science 15:295-304.

  26. Global Leaf Robustness and Physiology Database — Niinemets Ülo

    Niinemets, U. 2001. Global-scale climatic controls of leaf dry mass per area, density, and thickness in trees and shrubs. Ecology 82:453-469.

  27. The Netherlands Plant Traits Database — Ordonez Jenny

    Ordonez, J. C., P. M. van Bodegom, J. P. M. Witte, R. P. Bartholomeus, J. R. van Hal, and R. Aerts. 2010. Plant Strategies in Relation to Resource Supply in Mesic to Wet Environments: Does Theory Mirror Nature? American Naturalist 175:225-239.

  28. Ukraine Wetlands Plant Traits Database — van Bodegom Peter

    Douma, J.C., Bardin, V., Bartholomeus, R.P. and van Bodegom, P.M. (2012), Quantifying the functional responses of vegetation to drought and oxygen stress in temperate ecosystems. Funct Ecol, 26: 1355-1365. doi:10.1111/j.1365-2435.2012.02054.x

  29. PLANTSdata USDA — Green Walton

    Green, W. 2009. USDA PLANTS Compilation, version 1, 09-02-02. (http://bricol.net/downloads/data/PLANTSdatabase/) NRCS: The PLANTS Database (http://plants.usda.gov, 1 Feb 2009). National Plant Data Center: Baton Rouge, LA 70874-74490 USA.

  30. New South Wales Plant Traits Database — Leishman Michelle

  31. Tropical Traits from West Java Database — Shiodera Satomi

    Shiodera, S., J. S. Rahajoe, and T. Kohyama. 2008. Variation in longevity and traits of leaves among co-occurring understorey plants in a tropical montane forest. Journal of Tropical Ecology 24:121-133.

  32. Plant Traits in Pollution Gradients Database — Anand Madhur

  33. Categorical Plant Traits Database — Flores Olivier

  34. Traits from Subarctic Plant Species Database — Freschet Gregoire

    Freschet, G. T., J. H. C. Cornelissen, R. S. P. van Logtestijn, and R. Aerts. 2010. Evidence of the ‘plant economics spectrum’ in a subarctic flora. Journal of Ecology 98:362-373.

  35. Climbing Plants Trait Database — Gallagher Rachael

    Gallagher, R., M. R. Leishman, and A. T. Moles. 2011. Traits and ecological strategies of Australian tropical and temperate climbing plants. Journal of Biogeography. DOI: 10.1111/j.1365-2699.2010.02455.x.

  36. Categorical Plant Traits Database — Poorter Hendrik

  37. Herbaceous Traits from the Öland Island Database — Hickler Thomas

    Hickler, T. 1999. Plant functional types and community characteristics along environmental gradients on Öland's Great Alvar (Sweden) Masters Thesis, University of Lund, Sweden.

  38. The Netherlands Plant Height Database — Ozinga Wim

  39. Categorical Plant Traits Database — van Bodegom Peter

  40. Plant Habit Database — Violle Cyrille

  41. Leaf Biomechanics Database — Onoda Yusuke

    Onoda, Y., M. Westoby, P. B. Adler, A. M. F. Choong, F. J. Clissold, J. H. C. Cornelissen, S. Diaz, N. J. Dominy, A. Elgart, L. Enrico, P. V. A. Fine, J. J. Howard, A. Jalili, K. Kitajima, H. Kurokawa, C. McArthur, P. W. Lucas, L. Markesteijn, N. Perez-Harguindeguy, L. Poorter, L. Richards, L. S. Santiago, Jr. E. Sosinski, S. Van Bael, D. I. Warton, I. J. Wright, S. J. Wright, and N. Yamashita. 2011 . Global patterns of leaf mechanical properties. Ecology Letters 14:301-312.

  42. New York Old Field Plant Traits Database — Siefert Andrew

    Siefert, A. 2012. Spatial patterns of functional divergence in old-field plant communities. Oikos 121: 907-914

  43. Plant Traits from Circeo National Park, Italy — Burrascano Sabina

    Burrascano S, Copiz R, Del Vico E, Fagiani S, Giarrizzo E, Mei M, Mortelliti A, Sabatini FM, Blasi C (2015) Wild boar rooting intensity determines shifts in understorey composition and functional traits. COMMUNITY ECOLOGY 16(2) 244-253 DOI: 10.1556/168.2015.16.2.12

  44. Leaf Traits in Central Apennines Beech Forests — Campetella Giandiego

    Campetella, G; Botta-Dukát, Z; Wellstein, C; Canullo, R; Gatto, S; Chelli, S; Mucina, L; Bartha, S (2011): Patterns of plant trait-environment relationships along a forest succession chronosequence. Agriculture, Ecosystems & Environment, 145(1), 38-48. doi:10.1016/j.agee.2011.06.025

  45. Plant Traits for Grassland Species (Konza Prairie, Kansas, USA) — Craine Joseph

    Craine JM, Nippert JB, Towne EG, Tucker S, Kembel SW, Skibbe A, McLauchlan KK (2011) Functional consequences of climate-change induced plant species loss in a tallgrass prairie. Oecologia 165: 1109-1117

  46. Italian Alps Plant Traits Database — Dainese Matteo

    Bragazza L (2009) Conservation priority of Italian alpine habitats: a floristic approach based on potential distribution of vascular plant species. Biodiversity and Conservation 18: 2823–2835.

  47. Ecological Flora of the British Isles — Ford Henry

    Fitter, A. H. and H. J. Peat 1994. The Ecological Flora Database. Journal of Ecology 82:415-425.

  48. BASECO: a floristic and ecological database of Mediterranean French flora — Gachet Sophie

    Gachet S, Errol Véla, Thierry Tatoni, 2005, BASECO: a floristic and ecological database of Mediterranean French flora. Biodiversity and Conservation 14(4):1023-1034

  49. Climbing plants trait dataset — Gallagher Rachael

    Gallagher RV, MR Leishman (2012) A global analysis of trait variation and evolution in climbing plants. Journal of Biogeography 39, 1757-1771. DOI: 10.1111/j.1365-2699.2012.02773.x

  50. PLANTATT - Attributes of British and Irish Plants — Biological Records Centre (BRC)

    HILL, M.O., PRESTON, C.D. & ROY, D.B. (2004) PLANTATT - attributes of British and Irish Plants: status, size, life history, geography and habitats. Huntingdon: Centre for Ecology and Hydrology.

  51. Leaf Ash Content in China's Terrestrial Plants — Han Wenxuan

    Wenxuan Han, Yahan Chen, Fang-Jie Zhao, Luying Tang, Rongfeng Jiang and Fusuo Zhang, 2012, Floral, climatic and soil pH controls on leaf ash content in China’s terrestrial plants. Global Ecology and Biogeography, DOI: 10.1111/j.1466-8238.2011.00677.x

  52. Leaf Nitrogen and Phosphorus for China's Terrestrial Plants — Han Wenxuan

    Yahan Chen , Wenxuan Han , Luying Tang , Zhiyao Tang and Jingyun Fang 2011 Leaf nitrogen and phosphorus concentrations of woody plants differ in responses to climate, soil and plant growth form. Ecography 34, doi: 10.1111/j.1600-0587.2011.06833.x

  53. Cold Tolerance, Seed Size and Height of North American Forest Tree Species — Hawkins Bradford

  54. Xylem Functional Traits (XFT) Database: Nature Subset — Jansen Steven

    Brendan Choat, Steven Jansen et al. (2012) Global convergence in the vulnerability of forests to drought. Nature 491, 752–755 doi:10.1038/nature11688

  55. Meadow Plant Traits: Biomass Allocation, Rooting depth — Lanta Vojtech

  56. Plant Traits for Pinus and Juniperus Forests in Arizona — Laughlin Daniel

    Laughlin, D.C., P.Z. Fulé, D.W. Huffman, J. Crouse, and E. Laliberte. 2011. Climatic constraints on trait-based forest assembly. Journal of Ecology 99:1489-1499.

  57. Plant Hydraulic Traits — Manzoni Stefano

    Manzoni S, Giulia Vico, Amilcare Porporato, Gabriel Katul (2013) Biological constraints on water transport in the soil–plant–atmosphere system. Advances in Water Resources 51:292–304

  58. Altitudinal Vicariants Spain — Milla Ruben

    Milla & Reich 2011 Annals of Botany 107: 455–465, 2011.

  59. Plant Traits from Romania — Öllerer Kinga

    Ciocarlan V. (2009). The illustrated Flora of Romania. Pteridophyta et Spermatopyta. Editura Ceres, 1141 p (in Romanian).

  60. Impatiens Glandulifera Dataset — Pahl Anna

    Pahl, A.T., Kollmann, J., Mayer, A. & Haider, S. (2013): No evidence for local adaptation in an invasive alien plant: field and greenhouse experiments tracing a colonization sequence. Annals of Botany 112 (9): 1921-1930. DOI: 10.1093/aob/mct246

  61. Maximum Height of Chinese Tree Species (From Silva Sinica) — Swenson Nathan

    Zheng, W. 1983. Silva Sinica: Volume 1-4. China Forestry Publishing House, Beijing.

  62. Traits for Common Grasses and Herbs in Spain — Valladares Fernando

  63. Plant Traits, Virginia, USA — von Holle Betsy

    Von Holle, B. and D. Simberloff. 2004. Testing Fox's assembly rule: Does plant invasion depend on recipient community structure? Oikos 105:551-563.

  64. San Lorenzo Epiphyte Leaf Traits Database — Zotz Gerhard

    Petter G, Wagner K, Zotz G, Cabral JS, Wanek W, Sanchez Delgado EJ, Kreft H. 2016. Distribution of functional leaf traits of vascular epiphytes: vertical trends, intra- and interspecific trait variability, and phylogenetic signals. Functional Ecology, 30: 188–198.

  65. Leaf Structure, Venation and Economic Spectrum — Blonder Benjamin

    Blonder, B., Buzzard, B., Sloat, L., Simova, I., Lipson, R., Boyle, B., Enquist, B. (2012) The shrinkage effect biases estimates of paleoclimate. American Journal of Botany. 99.11 1756-1763

  66. Leaf Structure and Economics Spectrum — Cerabolini Bruno E. L.

    Pierce S., Ceriani R.M., De Andreis R., Luzzaro A. & Cerabolini B. 2007. The leaf economics spectrum of Poaceae reflects variation in survival strategies. Plant Biosystems 141(3): 337-343.

  67. Flora d’Italia Functional Traits Hoard (FIFTH) — Cerabolini Bruno E. L.

    Cerabolini B.E.L., Brusa G., Ceriani R.M., De Andreis R., Luzzaro A. & Pierce S. 2010. Can CSR classification be generally applied outside Britain? Plant Ecology 210: 253-261

  68. Hydrophytes Traits Database — Cerabolini Bruno E. L.

    Pierce S., Brusa G., Sartori M. & Cerabolini B.E.L. 2012. Combined use of leaf size and economics traits allows direct comparison of hydrophyte and terrestrial herbaceous adaptive strategies. Annals of Botany 109(5): 1047-1053

  69. Leaf Traits Mount Hutt, New Zealand — Freschet Gregoire

    Kichenin et al. 2013. Contrasting effects of plant inter- and intraspecific variation on community-level trait measures along an environmental gradient. Functional Ecology, in press.

  70. Chinese Traits — Harrison Sandy

    Prentice, I.C., Meng, T., Wang, H., Harrison, S.P., Ni, J., Wang, G., 2011. Evidence for a universal scaling relationship of leaf CO2 drawdown along a moisture gradient. New Phytologist 190: 169–180

  71. Nutrient Resorption Efficiency Database — Jackson Robert

    Vergutz, L., S. Manzoni, A. Porporato, R.F. Novais, and R.B. Jackson. 2012. A Global Database of Carbon and Nutrient Concentrations of Green and Senesced Leaves. Data set. Available on-line [http://daac.ornl.gov] from Oak Ridge National Laboratory Distributed Active Archive Center, Oak Ridge, Tennessee, U.S.A. http://dx.doi.org/10.3334/ORNLDAAC/1106

  72. Traits of Halohytic Species in North-West-Germany — Minden Vanessa

    Minden Vanessa, Michael Kleyer (2011): Testing the effect–response framework: key response and effect traits determining above-ground biomass of salt marshes. Journal of Vegetation Science 22: 387-401

  73. California Coastal Grassland Database — Sandel Brody

    Sandel, B., J. D. Corbin, and M. Krupa. 2011. Using plant functional traits to guide restoration: a case study in California coastal grassland. Ecosphere 2(2):art23. doi:10.1890/ES10-00175.1

  74. The Xylem/Phloem Database — Schweingruber Fritz

    Schweingruber, F.H., Landolt, W.: The Xylem Database. Swiss Federal Research Institute WSL Updated (2005)

  75. Niwot Alpine Plant Traits — Spasojevic Marko

    Spasojevic, M. J. and K. N. Suding. 2012. Inferring community assembly mechanisms from functional diversity patterns: the importance of multiple assembly processes. Journal of Ecology 100:652-661.

  76. Costa Rican Tropical Dry Forest Trees — Powers Jennifer

    Jennifer S. Powers and Peter Tiffin 2012 Plant functional type classifications in tropical dry forests in Costa Rica: leaf habit versus taxonomic approaches. Functional Ecology 2010, 24, 927–936 doi: 10.1111/j.1365-2435.2010.01701.x

  77. Functional Traits Of Bulgarian Grasslands — Vassilev Kiril

    Vassilev, K., Pedashenko, H., Nikolov, S., Apostolova, I., Dengler, J. 2011. The effect of land abandonment on the vegetation of upland semi-natural grasslands in the Western Balkans MTS, Bulgaria. - Plant Biosystems, 145: 654-665.

  78. Saskatchewan Plant Trait Database — Lamb Eric

    Guy, A. L., J. M. Mischkolz, and E. G. Lamb. 2013. Limited effects of simulated acidic deposition on seedling survivorship and root morphology of endemic plant taxa of the Athabasca Sand Dunes in well watered greenhouse trials. Botany 91:176-181. http://dx.doi.org/10.1139/cjb-2012-0162

  79. Plant Traits of Acidic Grasslands in Central Spain — Peco Begoña

    Peco B., de Pablos I., Traba J. , & Levassor C. (2005) The effect of grazing abandonment on species composition and functional traits: the case of dehesa Basic and Applied Ecology, 6(2): 175-183

  80. Plant Coastal Dune Traits (France, Aquitaine) — Forey Estelle

  81. Plant Trait Database in East and South-East Asia — Koike Fumito

    Koike, F. 2001. Plant traits as predictors of woody species dominance in climax forest communities. Journal of Vegetation Science 12: 327-336

  82. Cabo de Gata-Níjar Natural Park — de Frutos Angel

    De Frutos, Á., Navarro, T., Pueyo, Y., Alados, C.L., 2015. Inferring Resilience to Fragmentation-Induced Changes in Plant Communities in a Semi-Arid Mediterranean Ecosystem. PLoS ONE 10, e0118837. doi:10.1371/journal.pone.0118837

  83. Traits of halophytic species — Minden Vanessa

    Minden V, M Kleyer (2015): Ecosystem multifunctionality of coastal marshes is determined by key plant traits, Journal of Vegetation Science 26: 651-662

  84. TOPIC (Traits of Plants in Canada) — Aubin Isabelle

    Aubin, I., Messier, C., Gachet, S., Lawrence, K., McKenney, D., Arseneault, A., Bell, W., De Grandpré, L., Shipley, B., Ricard, J.P. and Munson, A.D., 2012. TOPIC–traits of plants in Canada. Natural Resources Canada, Canadian Forest Service, Sault Ste. Marie, Ontario. Online [URL] TOPIC website :http://cfs.cloud.nrcan.gc.ca/ctn/topic.php

  85. Northern mixed-grass prairie species traits - Wyoming, USA — Blumenthal Dana

  86. Traits of Polygonum viviparum L. — Boucher Florian

    Boucher, F.C., Thuiller, W., Arnoldi, C., Albert, C.H. & Lavergne, S., (2013) Unravelling the architecture of functional variability in wild populations of Polygonum viviparum L. Functional Ecology. 27, 382–391

  87. Traits related to riparian plant invasion in South East Australia — Catford Jane

    Catford, J. A., Morris, W. K., Vesk, P. A., Gippel, C. J. & Downes, B. J. (2014) Species and environmental characteristics point to flow regulation and drought as drivers of riparian plant invasion. Diversity and Distributions, 20, 1084–1096. http://dx.doi.org/10.1111/ddi.12225

  88. Leaf traits from the Loess Plateau region of northern Shaanxi in China — Chai Yongfu

  89. Specific leaf area responses to environmental gradients through space and time — Dwyer John

    Dwyer, J. M., R. J. Hobbs, and M. M. Mayfield. 2014. Specific leaf area responses to environmental gradients through space and time. Ecology 95:399-410

  90. Traits from Semi-Arid Mediterranean Ecosystems — Flynn Daniel

    de Frutos A, Teresa Navarro, Yolanda Pueyo, Concepción L. Alados (2015) Inferring Resilience to Fragmentation-Induced Changes in Plant Communities in a Semi-Arid Mediterranean Ecosystem DOI: 10.1371/journal.pone.0118837

  91. Plant traits from Costa Rica — Holl Karen

  92. Plant traits of grassland species — La Pierre Kim

    La Pierre, KJ and Smith, MD. (2015) Functional trait expression of grassland species shift with short- and long-term nutrient additions. Plant Ecology 216: 307 doi:10.1007/s11258-014-0438-4

  93. French Alps Trait Data — Lavorel Sandra

    Gos P., Loucougaray G., Colace MP., Arnoldi C., Gaucherand S., Dumazel D., Girard L., Delorme S., Lavorel S. (2016) Oecologia 180:1001 doi:10.1007/s00442-016-3551-3

  94. Shoot dry mass of annual grassland species — Mehrabi Zia

  95. Element contents of plant organs of halohytic species, NW-Germany — Minden Vanessa

    Minden V, Michael Kleyer (2014): Internal and external regulation of plant organ stoichiometry, Plant Biology, 16: 897-907

  96. Grassland Plant Trait Database — Pärtel Meelis

    Takkis, K. 2014. Changes in plant species richness and population performance in response to habitat loss and fragmentation. DISSERTATIONES BIOLOGICAE UNIVERSITATIS TARTUENSIS 255, 2014-04-07. Available from: http://hdl.handle.net/10062/39546

  97. Leaf angles — Pisek Jan

    Pisek, J., Sonnentag, O., Richardson, A.D., Mõttus, M. (2013). Is the spherical leaf inclination angle distribution a valid assumption for temperate and boreal broadleaf tree species? Agricultural and Forest Meteorology, 169, 186 - 194

  98. Rocky Mountain Biological Laboratory WSR/gradient plant traits — Read Quentin

  99. Rollinson DBH — Rollinson Emily

  100. Eastern US Old Field Plant Traits Database — Siefert Andrew

    Siefert, A., Fridley, J.D., and Ritchie, M.E. 2014. Community functional responses to soil and climate at multiple spatial scales: when does intraspecific variation matter? PLOS ONE 9: e111189

  101. A Global Data Set of Leaf Photosynthetic Rates, Leaf N and P, and Specific Leaf Area — Walker Anthony

    Walker, A.P. 2014. A Global Data Set of Leaf Photosynthetic Rates, Leaf N and P, and Specific Leaf Area. Data set. Available on-line [http://daac.ornl.gov] from Oak Ridge National Laboratory Distributed Active Archive Center, Oak Ridge, Tennessee, USA. http://dx.doi.org/10.3334/ORNLDAAC/1224

  102. Plant traits from Wisconsin, USA — Weiher Evan

  103. FRED - Fine Root Ecology Database — Iversen Colleen

    Iversen, C. M., McCormack, M. L., Powell, A. S., Blackwood, C. B., Freschet, G. T., Kattge, J. , Roumet, C. , Stover, D. B., Soudzilovskaia, N. A., Valverde?Barrantes, O. J., Bodegom, P. M. and Violle, C. (2017), A global Fine?Root Ecology Database to address below?ground challenges in plant ecology. New Phytol, 215: 15-26. doi:10.1111/nph.14486

  104. Global leaf size dataset — Wright Ian

    Wright, I. J., N. Dong, V. Maire, I. C. Prentice, M. Westoby, S. Díaz, R. V. Gallagher, B. F. Jacobs, R. Kooyman, E. A. Law, M. R. Leishman, Ü. Niinemets, P. B. Reich, L. Sack, R. Villar, H. Wang and P. Wilf (2017). Global climatic drivers of leaf size. Science 357(6354): 917-921. DOI:10.1126/science.aal4760

  105. eHALOPH - Halophytes Database (2015) — Flowers Tim

    eHALOPH - Halophytes Database (version 3.11) Tim Flowers, Joaquim Santos, Moritz Jahns, Brian Warburton and Peter Reed; http://www.sussex.ac.uk/affiliates/halophytes, accessed 2015

  106. Traits of 59 grassland species — Weigelt Alexandra

    Schroeder-Georgi, T., Wirth, C., Nadrowski, K., Meyer, S. T., Mommer, L. and Weigelt, A. (2016), From pots to plots: hierarchical trait-based prediction of plant performance in a mesic grassland. J Ecol, 104: 206–218. doi:10.1111/1365-2745.12489

  107. Mediterranean psammophytes — Ciccarelli Daniela

    Ciccarelli D. (2015) - Mediterranean coastal dune vegetation: Are disturbance and stress the key selective forces that drive the psammophilous succession? Estuarine, Coastal and Shelf Science 165(5):247–253 doi: 10.1016/j.ecss.2015.05.023

  108. Trait Data for African Plants - a Photo Guide — Schmidt Marco

    Dressler S, M Schmidt, G Zizka (2014) Introducing African Plants—A Photo Guide—An Interactive Photo Data-Base and Rapid Identification Tool for Continental Africa. Taxon 63(5) 1159-1161 DOI: http://dx.doi.org/10.12705/635.26

  109. Old fields of Eastern US (Siefert Data) — Negoita Luka

    Siefert, A., Fridley, J.D., and Ritchie, M.E. 2014. Community functional responses to soil and climate at multiple spatial scales: when does intraspecific variation matter? PLOS ONE 9: e111189

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    Abakumova, M., Zobel K., Lepik, A., Semchenko, M. (2016) Plasticity in plant functional traits is shaped by variability in neighbourhood species composition. New Phytologist 211:455–463 doi:10.1111/nph.13935

  111. Tree of sex: a database of sexual systems — Otto Sarah

    The Tree of Sex Consortium, Ashman T-L, Bachtrog D, Blackmon H, Goldberg EE, Hahn MW, Kirkpatrick M, Kitano J, Mank JE, Mayrose I, Ming R, Otto SP, Peichel CL, Pennell MW, Perrin N, Ross L, Valenzuela N, Vamosi JC (2014) Tree of sex: a database of sexual systems. Scientific Data 1:140015. http://dx.doi.org/10.1038/sdata.2014.15

  112. Plant Traits from LTER Matsch (Mazia), Italy — Fontana Veronika

  113. Traits and ecological strategies of 66 subtropical tree species in the Brazilian Atlantic Forest — Souza Alexandre

    Forgiarini, C., Souza, A.F., Longhi, S.J., Oliveira, J.M., 2015. In the lack of extreme pioneers: trait relationships and ecological strategies of 66 subtropical tree species. J. Plant Ecol. 8, 359–367. doi:10.1093/jpe/rtu028

  114. Trait Data from Niwot Ridge LTER (2016) — Chmurzynski Adam

  115. Olive Lawn Orchid Trait Database (OLO) — Cerabolini Bruno E. L.

    Pierce S., Vagge I., Brusa G., Cerabolini B.E.L. (2014) The intimacy between sexual traits and Grime’s CSR strategies for orchids coexisting in semi-natural calcareous grassland at the Olive Lawn. Plant Ecology, 215(5): 495-505

  116. Malga San Simone Trait Database (MSS) — Cerabolini Bruno E. L.

    Cerabolini B., Pierce S., Luzzaro A., Ossola A. (2010) Species evenness affects ecosystem processes in situ via diversity in the adaptive strategies of dominant species. Plant Ecology, 207(2): 333-345

  117. Traits of the Hungarian flora — Csecserits Anikó

    Lhotsky B., Anikó Csecserits, Bence Kovács, Zoltán Botta-Dukát: New plant trait records of the Hungarian flora

  118. Plant growth form dataset for the New World — Engemann Kristine

    Engemann, K., Sandel, B., Boyle, B., Enquist, B. J., Jørgensen, P. M., Kattge, J., McGill, B. J., Morueta-Holme, N., Peet, R. K., Spencer, N. J., Violle, C., Wiser, S. K. and Svenning, J.-C. (2016), A plant growth form dataset for the New World. Ecology, 97: 3243. doi:10.1002/ecy.1569

  119. Species able to reproduce after fire in a Brazilian Savanna — Giroldo Aelton

    Giroldo, Aelton (2016) Pequenas plantas, grandes estrategias: adaptacoes e sobrevivencia no Cerrado. PhD Thesis University of Brasilia. DOI: 10.13140/RG.2.2.34455.16800

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    Giarrizzo E., Burrascano S., Chiti T., de Bello F., Leps J., Zavattero L., Blasi C. (2017) Re-visiting historical semi-natural grasslands in the Apennines to assess patterns of changes in plant species composition and functional traits. Applied Vegetation Science 20(2):247-258, doi: 10.1111/avsc.12288

  121. Iranian Plant Trait Dataset — Abedi Mehdi

  122. Whole plant traits and leaf traits of four grassland species in Central Apennines (Italy) — Campetella Giandiego

    Wellstein C., Chelli S., Campetella G., Bartha S., Galiè M., Spada F., Canullo R. (2013): Intraspecific phenotypic variability of plant functional traits in contrasting mountain grasslands habitats. Biodiversity and Conservation, 22(10), 2353-2374

  123. eHALOPH - Halophytes Database (2018) — Flowers Tim

    eHALOPH - Halophytes Database (version 3.11) Tim Flowers, Joaquim Santos, Moritz Jahns, Brian Warburton and Peter Reed; http://www.sussex.ac.uk/affiliates/halophytes, accessed 2017

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    Miller JED, Ives AR, Harrison SP, Damschen EI (2018) Early‐ and late‐flowering guilds respond differently to landscape spatial structure. J Ecol. 106:1033–1045. https://doi.org/10.1111/1365-2745.12849

  125. Garmisch-Partenkirchen elevational gradients — Bucher Solveig Franziska

    Bucher, S.F., Auerswald, K., Tautenhahn, S., Geiger, A., Otto, J., Müller, A. and Römermann, C. (2016) Intra- and interspecific variation in stomatal pore area index along altitudinal gradients and its relation to leaf functional traits. Plant Ecology 217, 229-240

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    Spasojevic, M. J., Turner, B. L., and Myers, J. A. (2016) When does intraspecific trait variation contribute to functional beta‐diversity? J Ecol, 104: 487-496. doi:10.1111/1365-2745.12518

  127. Sherbrooke — Li Yuanzhi

    Li, Y. and Shipley, B. (2018) Community divergence and convergence along experimental gradients of stress and disturbance. Ecology, 99: 775-781. doi:10.1002/ecy.2162

  128. LECA - Traits of the European Alpine Flora — Boulangeat Louise

    Thuiller W - Traits of European Alpine Flora - Wilfried Thuiller - OriginAlps Project - Centre National de la Recherche Scientifique

  129. LCE: Leaf carbon exchange dataset for tropical, temperate, and boreal species of North and Central A — Smith Nick

    Smith, N. G. and Dukes, J. S. (2017), LCE: leaf carbon exchange data set for tropical, temperate, and boreal species of North and Central America. Ecology, 98: 2978. doi:10.1002/ecy.1992

  130. Trait and biomass data 2014 and 2015 of the BE_LOW project — Bruelheide Helge

    Herz, K., Dietz, S., Haider, S., Jandt, U., Scheel, D. & Bruelheide, H. (2017): Drivers of intraspecific trait variation of grass and forb species in German meadows and pastures. – Journal of Vegetation Science 28: 705–716. Doi: 10.1111/jvs.12534. Herz, K., Dietz, S., Haider, S., Jandt, U., Scheel, D. & Bruelheide, H. (2017): Predicting individual plant performance in grasslands. – Ecology and Evolution 7: 8958–8965. DOI: 10.1002/ece3.3393

  131. Global Dataset of Maximum Rooting Depth — Fan Reinfelder Ying

    Fan Y, Gonzalo Miguez-Macho, Esteban G. Jobbágy, Robert B. Jackson, Carlos Otero-Casal (2017) Hydrologic regulation of plant rooting depth. Proceedings of the National Academy of Sciences 114 (40) 10572-10577; DOI: 10.1073/pnas.1712381114

  132. Global Leaf Gas Exchange Database (I) — Lin Yan-Shih

    Lin Y-S, Medlyn BE, Duursma RA, Prentice IC, Wang H, Baig S, Eamus D, De Dios VR, Mitchell P, Ellsworth DS, De Beeck MO, Wallin G, Uddling J, Tarvainen L, Linderson M-L, Cernusak LA, Nippert JB, Ocheltree TW, Tissue DT, Martin-StPaul NK, Rogers A, Warren JM, De Angelis P, Hikosaka K, Han Q, Onoda Y, Gimeno TE, Barton CVM, Bennie J, Bonal D, Bosc A, Löw M, Macinins-Ng C, Rey A, Rowland L, Setterfield SA, Tausz-Posch S, Zaragoza-Castells J, Broadmeadow MSJ, Drake JE, Freeman M, Ghannoum O, Hutley LB, Kelly JW, Kikuzawa K, Kolari P, Koyama K, Limousin J-M, Meir P, Da Costa ACL, Mikkelsen TN, Salinas N, Sun W, Wingate L, (2015) Optimal stomatal behaviour around the world. Nature Climate Change 5(5): 459-464 DOI: 10.1038/NCLIMATE2550

  133. The China Plant Trait Database — Wang Han

    Wang, Han; Harrison, Sandy P; Prentice, Iain Colin; Yang, Yanzheng; Bai, Fan; Furstenau Togashi, Henrique; Wang, Meng; Zhou, Shuangxi; Ni, Jian (2017): The China Plant Trait Database. PANGAEA, https://doi.org/10.1594/PANGAEA.871819

  134. Herbaceous plants of Rouge National Urban Park — Cadotte Marc

    Sodhi, DS, Livingstone, SW, Carboni, M, Cadotte, MW. Plant invasion alters trait composition and diversity across habitats. Ecol Evol. 2019; 9: 6199– 6210. https://doi.org/10.1002/ece3.5130

  135. Cadotte 2017 Ecology Letters: herbaceous traits measured in the filed — Cadotte Marc

    Cadotte, M. W. 2017. Functional traits explain ecosystem function through opposing mechanisms. Ecology Letters 20:989-996

  136. KIT herbaceous functional gradient (median) — Kattenborn Teja

    Kattenborn, T., Fassnacht, F. E., & Schmidtlein, S. (2018). Differentiating plant functional types using reflectance: which traits make the difference? Remote Sensing in Ecology and Conservation, 1–15. http://doi.org/10.1002/rse2.86

  137. European North Russia — Novakovskiy Alexander

    Dalke, I.V., Novakovskiy, A.B., Maslova, S.P. et al. Plant Ecol (2018) 219: 1295. https://doi.org/10.1007/s11258-018-0879-2

  138. Trait-responses of Impatiens species to light and nutrients — Minden Vanessa

    Minden V, Gorschlüter J (2016) Comparison of native and non-native Impatiens species across experimental light and nutrient gradients. Plant Ecology and Evolution 149: 59-72. doi.org/10.5091/plecevo.2016.1118

  139. Antibiotics-effects on plant traits — Minden Vanessa

    Minden V, Deloy A, Volkert AM, Leonhardt SD, Pufal G (2017) Antibiotics impact plant traits, even at small concentrations. Annals of Botany Plants 9:1-19. doi.org/10.1093/aobpla/plx010

  140. Antibiotics-effects on plant elements — Minden Vanessa

    Minden V, Schnetger B, Pufal G, Leonhardt SD (2018) Antibiotic-induced effects on scaling relationships and on plant element contents in herbs and grasses. Ecology and Evolution 8: 6699-6713. doi.org/10.1002/ece3.4168

  141. TRY Categorical Traits Dataset (update 2018) — Guenther Angela

  142. Western Pamirs — Vanselow Kim André

    Vanselow, K.A., Samimi, C., Breckle, S.-W. (2016): Preserving a Comprehensive Vegetation Knowledge Base – An Evaluation of Four Historical Soviet Vegetation Maps of the Western Pamirs (Tajikistan). PLoS ONE 11(2): e0148930. doi:10.1371/journal.pone.0148930

  143. Tundra Trait Team — Bjorkman Anne

    Bjorkman, AD, IH Myers-Smith, SC Elmendorf, S Normand, HJD Thomas, and 86 others (2018) Tundra Trait Team: a database of plant traits spanning the tundra biome. Global Ecology and Biogeography 27(12): 1402-1411.

  144. BROT 2.0 — Pausas Juli

    Tavsanoglu C. & Pausas J.G. 2018. A functional trait database for Mediterranean Basin plants. Scientific Data 5:180135. http://dx.doi.org/10.1038/sdata.2018.135

  145. Fazlioglu et al. 2016 — Fazlioglu Fatih

    Fazlioglu F, Al-Namazi A, Bonser SP. (2016) Reproductive efficiency and shade avoidance plasticity under simulated competition, Ecology and Evolution 6: 4947–4957. Doi: 10.1002/ece3.2254.

  146. Leaf inclination angle — Chianucci Francesco

    Chianucci, F., Pisek, J., Raabe, K., Marchino, L., Ferrara, C. and Corona, P., 2018. A dataset of leaf inclination angles for temperate and boreal broadleaf woody species. Annals of Forest Science, 75(2), p.50. doi: 10.1007/s13595-018-0730-x

  147. Growth form data for 3581 Australian species — Chen Si-Chong

    Chen S-C, W Cornwell, H-X Zhang & AT Moles. (2017) Plants show more flesh in the tropics: variation in fruit type along latitudinal and climatic gradients. Ecography 40(4): 531-538

  148. Pladias: Life forms and heights of the Czech flora — Danihelka Jiøí

    Kaplan Z., Danihelka J., Chrtek J. jun., Kirschner J., Kubát K., Štech M. & Štěpánek J. (eds) (2019): Klíč ke květeně České republiky [Key to the flora of the Czech Republic]. Ed. 2. Academia, Praha.

  149. Freschet et al. 2018 — Freschet Gregoire

    Freschet GT, Violle C, Bourget MY, Scherer-Lorenzen M, Fort F. 2018. Allocation, morphology, physiology, architecture: the multiple facets of plant above and belowground responses to resource stress. New Phytologist 219: 1338-1352.

  150. Freschet et al. 2015 - Mount Hutt — Freschet Gregoire

    Freschet GT, Kichenin E, Wardle DA. 2015. Explaining within-community variation in plant biomass allocation: a balance between organ biomass and morphology above vs below ground? Journal of Vegetation Science 26: 431-440.

  151. Pladias: Flowering time of the Czech flora — Kaplan Zdenìk

    Kaplan Z., Danihelka J., Chrtek Jr. J., Kirschner J., Kubát K., Štěpánek J. & Štech M. (eds) (2019) Klíč ke květeně České republiky [Key to the flora of the Czech Republic]. Ed. 2. – Academia, Praha.

  152. Mt Baldy whole plant traits — Blonder Benjamin

    Blonder, B, Kapas, RE, Dalton, RM, Graae, BJ, Heiling, JM, Opedal, ØH. Microenvironment and functional‐trait context dependence predict alpine plant community dynamics. J Ecol. 2018; 106: 1323– 1337. https://doi.org/10.1111/1365-2745.12973

  153. Plant traits along NPK gradients — Minden Vanessa

    Minden V, olde Venterink H (2019) Plant traits and species interactions along gradients of N, P and K availabilities. Functional Ecology, status 04-30-2019: manuscript accepted

  154. SwissNationalPark_Engadine — Rossi Christian

    Rossi C., Kneubuehler M.,Schuetz M.,Shaepman M.E., Haller R.M.,Risch A.C. (2020) From local to regional: Functional diversity in differently managed alpine grasslands.Remote Sensing of Environment, Volume 236, 111415, DOI: 10.1016/j.rse.2019.111415

  155. Pinnacle Reserve, ACT — OReilly-Nugent Andrew

    O’Reilly‐Nugent, A, Wandrag, EM, Catford, JA, Gruber, B, Driscoll, D, Duncan, RP. Measuring competitive impact: Joint‐species modelling of invaded plant communities. J Ecol. 2019; 00: 1– 11. https://doi.org/10.1111/1365-2745.13280

  156. SLA and height data of exotic plant species in highland forest of Java and Bali — Junaedi Decky Indrawan

  157. AlpinePlants_Austria — Junker Robert R.

    Junker R.R., Martin H. Lechleitner, Jonas Kuppler, Lisa-Maria Ohler (in revision) INTERCONNECTEDNESS OF THE GRINNELLIAN AND ELTONIAN NICHE IN REGIONAL AND LOCAL PLANT-POLLINATOR COMMUNITIES. Front. Plant Sci.

  158. KIT herbaceous functional gradient (weekly measurements) — Kattenborn Teja

    Kattenborn, T., & Schmidtlein, S. (2019). Radiative transfer modelling reveals why canopy reflectance follows function. Scientific reports, 9(1), 6541.

  159. Silva el al. 2019 — Silva Vasco

    Silva V, Filipe X. Catry, Paulo M. Fernandes, Francisco C. Rego, Paula Paes, Leónia Nunes, Ana D. Caperta, Cecília Sérgio, et al. Effects of grazing on plant composition, conservation status and ecosystem services of Natura 2000 shrub-grassland habitat typ Biodivers Conserv (2019) 28:1205-1224 DOI 10.1007/s10531-019-01718-7

  160. NZ kettehole plant traits — Laughlin Daniel

    Purcell, A. S. T., W. G. Lee, A. J. Tanentzap, and D. C. Laughlin. 2019. Fine root traits are correlated with flooding duration while aboveground traits are related to grazing in an ephemeral wetland. Wetlands 39(2): 291-302.

  161. Thermo-Mediterranean species along Greece — Michelaki Chrysanthi

    Michelaki C, Nikolaos M. Fyllas, Alexandros Galanidis, Maria Aloupi, Eleftherios Evangelou, Margarita Arianoutsou, Panayiotis G. Dimitrakopoulos, 2019, An integrated phenotypic trait-network in thermo-Mediterranean vegetation describing alternative, coexisting resource-use strategies, Science of The Total Environment, Volume 672, Pages 583-592, https://doi.org/10.1016/j.scitotenv.2019.04.030

  162. MediterraneanRoadcutTraitData — Raevel Valerie

    Raevel, V., Violle, C., & Munoz, F. (2012). Mechanisms of ecological succession: insights from plant functional strategies. Oikos, 121(11): 1761–1770. doi:10.1111/j.1600-0706.2012.20261.x Raevel, V., Munoz, F., Pons, V., Renaux, A., Martin, A., & Thompson, J.D. (2013). Changing assembly processes during a primary succession of plant communities on Mediterranean roadcuts. Journal of Plant Ecology, 6(1):19-28. https://doi.org/10.1093/jpe/rts011

  163. Traits of Alpine species in GLORIA regions Hochschwab, Schrankogel, Majella and Lefka Ori — Steinbauer Klaus

  164. Teshio grassland plant traits — Mori Akira

  165. Kuujjuarapik-Whapmagoostui — Mori Akira

  166. Sonnier&Boughton_ABS — sonnier gregory

  167. Haean_South_Korea_Traits — Elsayed Ali Hamada

    Ali, H.E., Reineking, B. & Münkemüller, T. Plant Soil (2017) 411: 359. https://doi.org/10.1007/s11104-016-3036-5

  168. Competition — van Kleunen Mark

    Kempel A, Chrobock T, Fischer M, Rohr RP & van Kleunen M (2013) Determinants of plant establishment success in a multispecies introduction experiment with native and alien species. Proceedings of the National Academy of Sciences 110:12727-12732

  169. SW Michigan restored prairies — Zirbel Chad

    Zirbel CR, Bassett T, Grman E, Brudvig LA (2017) Plant functional traits and environmental conditions shape community assembly and ecosystem functioning during restoration. Journal of Applied Ecology 54(4): 1070-1079. https://doi.org/10.1111/1365-2664.12885 Zirbel CR, Basset T, Grman E, Brudvig LA (2017) Data from: Plant functional traits and environmental conditions shape community assembly and ecosystem functioning during restoration. Dryad Digital Repository. https://doi.org/10.5061/dryad.2175q

  170. Charidemi Database — Tarifa Ruben

  171. Jena Experiment Traits — Roscher Christiane

    Gubsch M, Buchmann N, Schmid B, Schulze E-D, Lipowsky A, Roscher C (2011) Differential effects of plant diversity on functional trait variation of grass species. Annals of Botany 107, 157-169.

  172. Mont_Mégantic_Individual_Traits_2016-2017 — Messier Julie

    DOI: 10.5281/zenodo.3258342

  173. shade (for TRY)_mvk — van Kleunen Mark

    Feng Y & van Kleunen M (2014) Responses to shading of naturalized and non-naturalized exotic woody species. Annals of Botany 114:981-989. (DOI: 10.1093/aob/mcu163)

  174. Colt Park Mesocosms — Jackson Benjamin

    De Long, JR, Jackson, BG, Wilkinson, A, et al. Relationships between plant traits, soil properties and carbon fluxes differ between monocultures and mixed communities in temperate grassland. J Ecol. 2019; 107: 1704– 1719. https://doi.org/10.1111/1365-2745.13160

  175. Ecophysiological parameters of tree and shrub leaves in forest-steppe plantings — Yankov Nikolai

    Pomogaybin A.V., Pomogaybin Ye.A. K izucheniyu bioekologicheskikh osobennostey predstaviteley roda Juglans L. pri introduktsii v lesostepi Srednego Povolzhya // Sovremennaya botanika v Rossii. Trudy XIII syezda Russkogo botanicheskogo obshchestva T. P.156-158

  176. Div_Resource Pot Experiment — Siebenkäs Alrun

    Siebenkäs A, Schumacher J, Roscher C (2015) Phenotypic plasticity to light and nutrient availability alters functional trait ranking across eight perennial grassland species. AoB Plants 7:plv029. doi: 10.1093/aobpla/plv029

  177. Forbs and grasses in North East Belgium — Van Cleemput Elisa

    Van Cleemput,E., Roberts, D., Honnay, O., Somers, B. (2019). A novel procedure for measuring functional traits of herbaceous species through field spectroscopy. Methods in Ecology and Evolution. XXX(XXX). https://doi.org/10.1111/2041-210X.13237

  178. Alpine tundra plants - effects of climate warming on traits of species in mid-latitude snowbeds — Carbognani Michele

  179. Functional Flowering Plant Traits — Morrison Jane

  180. Plant three traits (SLA,LA, Height) of 14 plots in Easten Tibetan subalpine meadow — Li Xine

    Xin-e Li; Yingying Nie; Xiaoyu Song; Renyi Zhang and Gang Wang*.Patterns of species diversity and functional diversity along a south-to north-facing slope in a sub-alpine meadow. Community Ecology, 2011, 12(2):179-187

  181. Traits of urban species from Ibagué Colombia — Fernández-Méndez Fernando

    Núñez-Florez, R., U. Pérez-Gómez, and F. Fernández-Méndez. 2019. Functional diversity criteria for selecting urban trees. Urban Forestry & Urban Greening 38:251–266. https://doi.org/10.1016/j.ufug.2019.01.005

  182. Fabio Carvalho lowland fen peatland — Carvalho Fabio

    Carvalho F, Brown KA, Waller MP, Bunting MJ, Boom A, Leng MJ (2019) A method for reconstructing temporal changes in vegetation functional trait composition using Holocene pollen assemblages. PLoS ONE 14(5): e0216698. https://doi.org/10.1371/journal.pone.0216698

  183. Morton Arboretum Experimental Prairie traitset 1, 2019 — Hipp Andrew

    Hipp, A.L., Glasenhardt, M.-C., Bowles, M.L., Garner, M., Scharenbroch, B.C., Williams, E.W., Barak, R.S., Byrne, A., Ernst, A.R., Grigg, E., Midgley, M.G., Wagreich, H., and Larkin, D.J. 2018. Effects of Phylogenetic Diversity and Phylogenetic Identity in a Restoration Ecology Experiment. In Phylogenetic Diversity: Applications and Challenges in Biodiversity Science. Edited by R.A. Scherson and D.P. Faith. Springer International Publishing, Cham. pp. 189–210. doi:10.1007/978-3-319-93145-6_10

  184. Michaletz_RMBL2013 — Michaletz Sean

    Michaletz ST, Weiser MD, McDowell NG, Zhou J, Kaspari M, Helliker BR, Enquist BJ. 2016. The energetic and carbon economic origins of leaf thermoregulation. Nature Plants 2:16129

  185. Michaletz_RMBL2015 — Michaletz Sean

    Michaletz ST, Weiser MD, McDowell NG, Zhou J, Kaspari M, Helliker BR, Enquist BJ. 2016. The energetic and carbon economic origins of leaf thermoregulation. Nature Plants 2:16129

  186. Stem, dispersal and growth traits of plants from Mount Kilimanjaro, Tanzania — Schellenberger Costa David

    Schellenberger Costa, D., Gerschlauer, F., Pabst, H., Kühnel, A., Huwe, B., Kiese, R., Kuzyakov, Y. & Kleyer, M. (2017) Community-weighted means and functional dispersion of plant functional traits along environmental gradients on Mount Kilimanjaro. Journal of Vegetation Science, 28, 684-695, 10.1111/jvs.12542

  187. Leaf-Height-Seed traits of Mediterranean mountain grassland — Bricca Alessandro

    Bricca, A., Conti, L., Tardella, M. F., Catorci, A., Iocchi, M., Theurillat, J. P., & Cutini, M. (2019). Community assembly processes along a sub-Mediterranean elevation gradient: analyzing the interdependence of trait community weighted mean and functional diversity. Plant Ecology, 220(12), 1139-1151

  188. riparian forb traits W-Europe — Helsen Kenny

    Helsen K, Smith SW, Brunet J, et al (2018) Impact of an invasive alien plant on litter decomposition along a latitudinal gradient. Ecosphere 9:e02097. doi: 10.1002/ecs2.2097

  189. Olson et al. 2020 Ecological Monographs vessel diameter-plant height scaling — Olson Mark E.

    Olson ME, Rosell JA, Martínez-Pérez C, León-Gómez C, Fajardo A, Isnard S, Cervantes-Alcayde M-A, Echeverría A, Figueroa-Abúndiz, Segovia-Rivas A, et al. in press. Xylem vessel diameter-shoot length scaling: ecological significance of porosity types and other traits. Ecological Monographs

  190. Freschet Mount Hutt 1450 — Freschet Gregoire

    Freschet GT, Kichenin E, Wardle DA. 2015. Explaining within-community variation in plant biomass allocation: a balance between organ biomass and morphology above vs below ground? Journal of Vegetation Science 26: 431-440.

  191. Silva et al., 2020 — Silva Vasco

    Silva, V., Catry, F.X, Fernandes, P.M, Rego, F.C., Bugalho, M.N. 2020, Trade-offs between fire hazard reduction and conservation in a Natura 2000 shrub-grassland mosaic. Applied Vegetation Science 23(1):39-52

  192. A global growth form database for 143,616 vascular plant species — Cornwell William

    Taseski, G. , Beloe, C. J., Gallagher, R. V., Chan, J. Y., Dalrymple, R. L. and Cornwell, W. K. (2019), A global growth form database for 143,616 vascular plant species. Ecology. doi:10.1002/ecy.2614

  193. Balruddery barley-mixture weed experiment, 2016. — Pakeman Robin

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  194. Functional traits and within habitat characteristics of Trifolium montanum (mountain clover) in Cent — Karbstein Kevin

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