Trait-Based Assessments of Climate-Change Impacts on Interacting Species.
暂无分享,去创建一个
Susanne A. Fritz | W. D. Kissling | E. Neuschulz | K. Böhning‐Gaese | D. M. Dehling | T. Mueller | M. Schleuning | C. Hof | D. Bowler | Jörg Albrecht | Marjorie C. Sorensen | Irene M. A. Bender | Larissa Nowak | W. Kissling
[1] Denis Bastianelli,et al. TRY plant trait database - enhanced coverage and open access. , 2019, Global change biology.
[2] Nerea Abrego,et al. Fragmented tropical forests lose mutualistic plant–animal interactions , 2019, Diversity and Distributions.
[3] P. Guimarães,et al. Coevolution by different functional mechanisms modulates the structure and dynamics of antagonistic and mutualistic networks , 2019, Oikos.
[4] P. Maruyama,et al. Including rewiring in the estimation of the robustness of mutualistic networks , 2019, Methods in Ecology and Evolution.
[5] E. Neuschulz,et al. Ignoring biotic interactions overestimates climate change effects: The potential response of the spotted nutcracker to changes in climate and resource plants , 2019, Journal of Biogeography.
[6] Birgitta König-Ries,et al. Towards an ecological trait‐data standard , 2019, Methods in Ecology and Evolution.
[7] Bette A. Loiselle,et al. The Role of Seed Dispersal in Plant Populations : Perspectives and Advances in a Changing World The total dispersal kernel : a review and future directions , 2019 .
[8] K. Böhning‐Gaese,et al. Projecting consequences of global warming for the functional diversity of fleshy‐fruited plants and frugivorous birds along a tropical elevational gradient , 2019, Diversity and Distributions.
[9] Florian Hartig,et al. Machine learning algorithms to infer trait‐matching and predict species interactions in ecological networks , 2019, Methods in Ecology and Evolution.
[10] Jane Elith,et al. Forecasting species range dynamics with process-explicit models: matching methods to applications. , 2019, Ecology letters.
[11] Brittany J. Teller,et al. Rapid changes in seed dispersal traits may modify plant responses to global change , 2019, AoB PLANTS.
[12] G. Tikhonov,et al. Joint species movement modeling: how do traits influence movements? , 2019, Ecology.
[13] Lauren B. Buckley,et al. Does metabolism constrain bird and mammal ranges and predict shifts in response to climate change? , 2018, Ecology and evolution.
[14] Dana G. Schabo,et al. Reward regulation in plant–frugivore networks requires only weak cues , 2018, Nature Communications.
[15] J. MacIvor,et al. The Necessity of Multitrophic Approaches in Community Ecology. , 2018, Trends in ecology & evolution.
[16] Enrique Alonso García,et al. Towards global data products of Essential Biodiversity Variables on species traits , 2018, Nature Ecology & Evolution.
[17] D. Stouffer,et al. Bringing the Eltonian niche into functional diversity , 2018, Oikos.
[18] Plant and animal functional diversity drive mutualistic network assembly across an elevational gradient , 2018, Nature Communications.
[19] Paul J. Hurtado,et al. Across Multiple Species, Phytochemical Diversity and Herbivore Diet Breadth Have Cascading Effects on Herbivore Immunity and Parasitism in a Tropical Model System , 2018, Front. Plant Sci..
[20] B. Choat,et al. Triggers of tree mortality under drought , 2018, Nature.
[21] B. Elderd,et al. Climate change and an invasive, tropical milkweed: an ecological trap for monarch butterflies. , 2018 .
[22] Andrew Gelman,et al. Global shifts in the phenological synchrony of species interactions over recent decades , 2018, Proceedings of the National Academy of Sciences.
[23] Ingolf Kühn,et al. GlobTherm, a global database on thermal tolerances for aquatic and terrestrial organisms , 2018, Scientific Data.
[24] Jeremy M. Cohen,et al. A global synthesis of animal phenological responses to climate change , 2018, Nature Climate Change.
[25] P. Jordano,et al. Pleistocene megafaunal extinctions and the functional loss of long‐distance seed‐dispersal services , 2018 .
[26] Björn C. Rall,et al. Temperature and consumer type dependencies of energy flows in natural communities , 2017 .
[27] J. Blois,et al. Multiresponse algorithms for community‐level modelling: Review of theory, applications, and comparison to species distribution models , 2017 .
[28] J. P. González‐Varo,et al. Seed dispersers help plants to escape global warming. , 2017 .
[29] A. Trowbridge,et al. Global change effects on plant-insect interactions: the role of phytochemistry. , 2017, Current opinion in insect science.
[30] R. O’Hara,et al. Cross-taxa generalities in the relationship between population abundance and ambient temperatures , 2017, Proceedings of the Royal Society B: Biological Sciences.
[31] Anna Norberg,et al. How to make more out of community data? A conceptual framework and its implementation as models and software. , 2017, Ecology letters.
[32] James E. M. Watson,et al. Species/' traits influenced their response to recent climate change , 2017 .
[33] M. Kearney,et al. Mechanistic variables can enhance predictive models of endotherm distributions: the American pika under current, past, and future climates , 2017, Global change biology.
[34] Judith L Bronstein,et al. Interaction rewiring and the rapid turnover of plant-pollinator networks. , 2017, Ecology letters.
[35] R. O’Hara,et al. Cross-realm assessment of climate change impacts on species’ abundance trends , 2017, Nature Ecology &Evolution.
[36] D. Bonte,et al. Warming affects different components of plant–herbivore interaction in a simplified community but not net interaction strength , 2017 .
[37] Carsten F Dormann,et al. Ecological networks are more sensitive to plant than to animal extinction under climate change , 2016, Nature Communications.
[38] J. Barlow,et al. Using avian functional traits to assess the impact of land-cover change on ecosystem processes linked to resilience in tropical forests , 2016, Proceedings of the Royal Society B: Biological Sciences.
[39] Duarte S. Viana,et al. Migratory Birds as Global Dispersal Vectors. , 2016, Trends in ecology & evolution.
[40] S. Wipf,et al. Evolutionary potential in the Alpine: trait heritabilities and performance variation of the dwarf willow Salix herbacea from different elevations and microhabitats , 2016, Ecology and evolution.
[41] M. Kautz,et al. Dispersal variability and associated population-level consequences in tree-killing bark beetles , 2016, Movement Ecology.
[42] Ana M. Martín González,et al. The integration of alien plants in mutualistic plant–hummingbird networks across the Americas: the importance of species traits and insularity , 2016 .
[43] P. Jordano,et al. Morphology predicts species' functional roles and their degree of specialization in plant–frugivore interactions , 2016, Proceedings of the Royal Society B: Biological Sciences.
[44] R. A. Garcia,et al. Integrating climate change vulnerability assessments from species distribution models and trait-based approaches , 2015 .
[45] Peter G. Kevan,et al. Functional mismatch in a bumble bee pollination mutualism under climate change , 2015, Science.
[46] Dominique Gravel,et al. A common framework for identifying linkage rules across different types of interactions , 2015, bioRxiv.
[47] R. Kays,et al. Terrestrial animal tracking as an eye on life and planet , 2015, Science.
[48] J. Stillman,et al. Plasticity in thermal tolerance has limited potential to buffer ectotherms from global warming , 2015, Proceedings of the Royal Society B: Biological Sciences.
[49] Jochen Fründ,et al. Predicting ecosystem functions from biodiversity and mutualistic networks: an extension of trait-based concepts to plant - animal interactions , 2015 .
[50] N. Blüthgen,et al. Morphological traits determine specialization and resource use in plant–hummingbird networks in the neotropics , 2014 .
[51] Haldre S. Rogers,et al. Secondary extinctions of biodiversity. , 2014, Trends in ecology & evolution.
[52] B. Young,et al. Imputation of missing data in life‐history trait datasets: which approach performs the best? , 2014 .
[53] S. Finnegan,et al. Climate Change and the Past, Present, and Future of Biotic Interactions , 2013, Science.
[54] R. Slatyer,et al. Niche breadth predicts geographical range size: a general ecological pattern. , 2013, Ecology letters.
[55] Florian Altermatt,et al. Predicting novel trophic interactions in a non-native world. , 2013, Ecology letters.
[56] R. Corlett,et al. Will plant movements keep up with climate change? , 2013, Trends in ecology & evolution.
[57] P. Brancalion,et al. Functional Extinction of Birds Drives Rapid Evolutionary Changes in Seed Size , 2013, Science.
[58] J. Kingsolver,et al. Functional and Phylogenetic Approaches to Forecasting Species' Responses to Climate Change , 2012 .
[59] May R. Berenbaum,et al. Climate Change: Resetting Plant-Insect Interactions1 , 2012, Plant Physiology.
[60] Charles M. Bishop,et al. Eco-Virological Approach for Assessing the Role of Wild Birds in the Spread of Avian Influenza H5N1 along the Central Asian Flyway , 2012, PloS one.
[61] Peter E. Larsen,et al. Predicting bacterial community assemblages using an artificial neural network approach , 2012, Nature Methods.
[62] G. Mace,et al. Beyond Predictions: Biodiversity Conservation in a Changing Climate , 2011, Science.
[63] N. Blüthgen,et al. Responses to olfactory signals reflect network structure of flower-visitor interactions. , 2010, The Journal of animal ecology.
[64] Robert D Holt,et al. A framework for community interactions under climate change. , 2010, Trends in ecology & evolution.
[65] Louie H. Yang,et al. Phenology, ontogeny and the effects of climate change on the timing of species interactions. , 2010, Ecology letters.
[66] Ingolf Kühn,et al. Climate change can cause spatial mismatch of trophically interacting species. , 2008, Ecology.
[67] Sandra Díaz,et al. Scaling environmental change through the community‐level: a trait‐based response‐and‐effect framework for plants , 2008 .
[68] B. Enquist,et al. Rebuilding community ecology from functional traits. , 2006, Trends in ecology & evolution.
[69] A. Fitter,et al. Rapid Changes in Flowering Time in British Plants , 2002, Science.
[70] T. Sparks,et al. Climate change and trophic interactions. , 1999, Trends in ecology & evolution.