Publications

Quand vous soumettez une liste de contrôle à eButterfly, vous rendez vos observations disponibles à la communauté mondiale des citoyens scientifiques, des chercheurs, des éducateurs, des conservationnistes et des amateurs de papillons. Les publications ci-dessous mettent en évidence les différentes façons dont toutes ces contributions sont utilisées.

Nous aimerions que cette liste de publications soit la plus inclusive possible. Si vous connaissez d’autres publications non répertoriées qui ont utilisé les données d’eButterfly, veuillez nous le faire savoir.

2024

  • Zachary G MacDonald, Sean Schoville, Merly Escalona, Mohan P A Marimuthu, Oanh Nguyen, Noravit Chumchim, Colin W Fairbairn, William Seligmann, Erin Toffelmier, Thomas Gillespie, H Bradley Shaffer, A genome assembly for the Chryxus Arctic (Oeneis chryxus), the highest butterfly in North America, Journal of Heredity, 2024;, esae051, https://doi.org/10.1093/jhered/esae051
  • Hin Yau, Emily E. Jones, Toby Pak Nok Tsang, Shuang Xing, Richard T. Corlett, Patrick Roehrdanz, David J. Lohman, Adam Kai Chi Lee, Catherine Wai Ching Hai, Shawan Chowdhury, Jane K. Hill, Jade A.T. Badon, Cheong Weei Gan, Yves Basset, IChing Chen, Suzan Benedick, Anuj Jain, Tiffany L.T. Ki, Krushnamegh Kunte, Akihiro Nakamura, Lien Van Vu, Sarah A. Scriven, Alice Hughes, Timothy Bonebrake (2024). Spatial occurrence records and distributions of tropical asian butterflies. *EcoEvoRxiv*. https://doi.org/10.32942/x2c904
  • Joan DíazCalafat, Sebastià JaumeRamis, Karen Soacha, Ana Álvarez, Jaume Piera (2024). Revealing biases in insect observations: a comparative analysis between academic and citizen science data. *PLOS ONE*. https://doi.org/10.1371/journal.pone.0305757
  • Capinha, A. T. Monteiro, A. CeiaHasse (2024). Supporting early detection of biological invasions through shortterm spatial forecasts of detectability. *bioRxiv*. https://doi.org/10.1101/2024.06.12.598508
  • Yunfeng Li, Yan Wang, Chunying Zhao, Xiaojuan Du, Ping He, Fanyun Meng (2024). Predicting the spatial distribution of three ephedra species under climate change using the maxent model. *Heliyon*. https://doi.org/10.1016/j.heliyon.2024.e32696
  • D. Thomas, C. A. Cunningham, N. A. C. Hulme, E. C. Corrigan, B. Metherell, P. Green, M. Oates (2024). Assisted colonisation prospects for the blackveined white butterfly in england. *bioRxiv*. https://doi.org/10.1101/2024.05.21.595182
  • Tom Jamonneau, Eric ToroDelgado, Roger Vila (2024). Primer registre de vanessa virginiensis (drury, 1773) a catalunya. *Butlletí de la Societat Catalana de Lepidopterologia*. https://www.researchgate.net/profile/RogerVila2/publication/380395391
  • Andrea Battisti, Andre.A. Walker, Mizuki Uemura, Myron.P. Zalucki, AnneSophie Brinquin, Rudy CaparrosMegidos, Emmanuel Gachet, Carole Kerdelhué, Nicolas Desneux (2024). Look but do not touch: the occurrence of venomous species across lepidoptera. *Entomologia Generalis*. https://doi.org/10.1127/entomologia/2023/2295
  • Sarah Whipple, Stefan Moss (2024). Leveraging virtual datasets to investigate the interplay of pollinators, protected areas, and sdg 15. *Sustainable Earth Reviews*. https://doi.org/10.1186/s42055024000849
  • F AmadorCruz, BL FigueroaRangel, D JiménezGarcía, MA MoraRamírez, M OlveraVargas, ME Mendoza (2024). The ecological value of neotropical forest landscapes through a multicriteria approach employing spatial models. *Progress in Physical Geography: Earth and Environment*. https://doi.org/10.1177/03091333241248782
  • Dexter Locke, Melissa Chapman, Diego EllisSoto (2024). Historic residential segregation impacts biodiversity data availability disparately across the tree of life. *EcoEvoRxiv*. https://doi.org/10.32942/x2d04v
  • Giriraj Singh Panwar, Puneet Kumar, Aakriti Bhandari, Amber Srivast, A. A. Mao (2024). Integration of exsitu multiplication approaches with insitu conservation of gentiana kurroo through reintroduction and recovery programs: a critically endangered and endemic species of the northwest himalaya. *Research Square*. https://doi.org/10.21203/rs.3.rs4253275/v1
  • Emilio GarcíaRoselló, Jacinto GonzálezDacosta, Jorge M. Lobo (2024). Exploring biodiversity challenges in europe: completeness, geography and environmental representativeness. *Research Square*. https://doi.org/10.21203/rs.3.rs4251904/v1
  • Marie V. Henriksen, Eduardo Arlé, Arman Pili, David A. Clarke, Emili GarcíaBerthou, Quentin Groom, Bernd Lenzner, Carsten Meyer, Hanno Seebens, Reid Tingley, Marten Winter, Melodie A. McGeoch (2024). Global indicators of the environmental impacts of invasive alien species and their information adequacy. *Philosophical Transactions of the Royal Society B: Biological Sciences*. https://doi.org/10.1098/rstb.2023.0323
  • Guillermo LezamaBalderas, Felipe Barragán, Alfredo RamírezHernández (2024). Interactions between the migratory monarch butterfly and native vegetation in san luis potosi, mexico. *The Journal of the Lepidopterists’ Society*. https://doi.org/10.18473/lepi.78i1.a8
  • Valéria Marques, Joan Carles Hinojosa, Leonardo Dapporto, Gerard Talavera, Constantí Stefanescu, David Gutiérrez, Roger Vila (2024). The opposed forces of differentiation and admixture across glacial cycles in the butterfly aglais urticae. *Molecular Ecology*. https://doi.org/10.1111/mec.17304
  • Zhichao Dong, Tao Shen, Shijie Liu, Cunlong Yu, Chengqi Zhang, Ning Li, Ruochen Fang, Lei Jiang, Xingfei Li, Kang Yang (2024). Fast prototype and rapid construction of threedimensional and multiscaled pitcher for controlled drainage by systematic biomimicry. *International Journal of Extreme Manufacturing*. https://doi.org/10.1088/26317990/ad2cde
  • Vaughn Shirey, Naresh Neupane, Robert Guralnick, Leslie Ries (2024). Rising minimum temperatures contribute to 50 years of occupancy decline among cold‐adapted arctic and boreal butterflies in north america. *Global Change Biology*. https://doi.org/10.1111/gcb.17205
  • Eduardo Arlé, Tiffany Marie Knight, Marina Jiménez‐Muñoz, Dino Biancolini, Jonathan Belmaker, Carsten Meyer (2024). The cumulative niche approach: a framework to assess the performance of ecological niche model projections. *Ecology and Evolution*. https://doi.org/10.1002/ece3.11060
  • Zadoki Tabo, Lutz Breuer, Codalli Fabia, Gorata Samuel, Christian Albrecht (2024). A machine learning approach for modeling the occurrence of the major intermediate hosts for schistosomiasis in east africa. *Scientific Reports*. https://doi.org/10.1038/s41598024546991
  • Attila J. Trájer (2024). Reconstruction of palaeoenvironmental conditions that led to the formation of eocene subbituminous coal seams in the hungarian paleogene basin. *Review of Palaeobotany and Palynology*. https://doi.org/10.1016/j.revpalbo.2024.105080
  • TaeSung Kwon, SungSoo Kim, Elie Gaget, Won IL Choi, DaeSeong Lee, YoungSeuk Park (2024). Evaluation of moth community changes and northward shifts in response to climate warming in korea using both local and global occurrences. *Global Ecology and Conservation*. https://doi.org/10.1016/j.gecco.2023.e02763

2023

2022

  • Pinkert, S., Sica, Y., Winner, K., & Jetz, W. (2022). The potential of ecoregional range maps for boosting taxonomic coverage in large-scale ecology and conservation. Authorea Preprintshttps://www.authorea.com/doi/pdf/10.22541/au.167156303.39224288
  • Calhoun, John V. (2022).A local irruption of Chlosyne nycteis (Nymphalidae) in Maine, with an important new food plant record. News of The Lepidopterists’ Society 64(1): 26-33. https://images.peabody.yale.edu/lepsoc/nls/2020s/2022/2022_v64_n1.pdf
  • David, K. T. (2022). Global gradients in the distribution of animal polyploids. Proceedings of the National Academy of Sciences119(48), e2214070119. https://doi.org/10.1073/pnas.2214070119
  • Ednie, G., & Kerr, J. T. (2022). High resolution thermal remote sensing and the limits of species’ tolerance. PeerJ10, e13911.
  • Erin Toffelmier, Joscha Beninde, H Bradley Shaffer, The phylogeny of California, and how it informs setting multi-species conservation priorities, Journal of Heredity, 2022;, esac045, https://doi.org/10.1093/jhered/esac045
  • Forister, Matthew L.; Eliza M. Grames, Christopher A. Halsch, Kevin J. Burls, Cas F. Carroll, Katherine L. Bell, Joshua P. Jahner, Taylor Bradford, Jing Zhang, Qian Cong, Nick V. Grishin, Jeffrey Glassberg, Arthur M. Shapiro, Thomas V. Riecke (2022). Assessing risk for butterflies in the context of climate change, demographic uncertainty, and heterogenous data sources. bioRxiv 2022.05.22.492972; https://doi.org/10.1101/2022.05.22.492972.
  • Larsen, E. A., Belitz, M. W., Guralnick, R. P., & Ries, L. (2022). Consistent trait-temperature interactions drive butterfly phenology in both incidental and survey data. Scientific Reports12(1), 1-10. https://doi.org/10.1038/s41598-022-16104-7
  • Pinkert, S., Barve, V., Guralnick, R., & Jetz, W. (2022). Global geographical and latitudinal variation in butterfly species richness captured through a comprehensive country‐level occurrence database. Global Ecology and Biogeography. https://doi.org/10.1111/geb.13475.
  • Prudic, K. L., Cruz, T. M. P., Winzer, J. I., Oliver, J. C., Melkonoff, N. A., Verbais, H., & Hogan, A. (2022). Botanical Gardens Are Local Hotspots for Urban Butterflies in Arid Environments. Insects13(10), 865.https://doi.org/10.3390/insects13100865
  • Valho, A. P. S., Owens, H. L., St Laurent, R. A., Earl, C., Dexter, K. M., Messcher, R. L., … & Lohman, D. J. (2022). Diversification is correlated with temperature in white and sulfur butterflies. bioRxivhttps://doi.org/10.1101/2022.09.22.509088
  • Wilson Rankin, E.E. and Rankin, D.T. (2022), Secondary nectar robbing by Lycaenidae and Riodinidae: Opportunistic but not infrequent. Ecology. Accepted Author Manuscript e3892. https://doi.org/10.1002/ecy.3892

2021

  • Wilson J. Keaton, Casajus Nicolas, Hutchinson Rebecca A., McFarland Kent P., Kerr Jeremy T., Berteaux Dominique, Larrivée Maxim, Prudic Kathleen L. (2021). Climate Change and Local Host Availability Drive the Northern Range Boundary in the Rapid Expansion of a Specialist Insect Herbivore, Papilio cresphontes. Frontiers in Ecology and Evolution 9:85. https://doi.org/10.3389/fevo.2021.579230
  • Davidson, S. C., & Ruhs, E. C. (2021). Understanding the dynamics of Arctic animal migrations in a changing world. Animal Migration8(1), 56-64. https://doi.org/10.1515/ami-2020-0114
  • Lewthwaite, J. M., & Mooers, A. Ø. Geographical homogenization but little net change in the local richness of Canadian butterflies. Global Ecology and Biogeography. https://doi.org/10.1111/geb.13426
  • Rivest, S. A., & Kharouba, H. M. (2021). Anthropogenic disturbance promotes the abundance of a newly introduced butterfly, the European common blue (Polyommatus icarus; Lepidoptera: Lycaenidae), in Canada. Canadian Journal of Zoology99(8), 642-652. https://doi.org/10.1139/cjz-2021-0009
  • Dargent, F., Gilmour, S. M., Brown, E. A., Kassen, R., & Kharouba, H. M. (2021). Low prevalence of the parasite Ophryocystis elektroscirrha at the range edge of the eastern North American monarch (Danaus plexippus) butterfly population. Canadian Journal of Zoology99(5), 409-413. https://doi.org/10.1139/cjz-2020-0175
  • Bates, A. E., Primack, R. B., Duarte, C. M., & PAN-Environment Working Group. (2021). Global COVID-19 lockdown highlights humans as both threats and custodians of the environment. Biological Conservation, 109175. https://doi.org/10.1016/j.biocon.2021.109175
  • Crimmins, T. M., Posthumus, E., Schaffer, S., & Prudic, K. L. (2021). COVID-19 impacts on participation in large scale biodiversity-themed community science projects in the United States. Biological Conservation256, 109017. https://doi.org/10.1016/j.biocon.2021.109017
  • Shirey, V., Belitz, M. W., Barve, V., & Guralnick, R. (2021). A complete inventory of North American butterfly occurrence data: narrowing data gaps, but increasing bias. Ecography, 44(4), 537-547. https://doi.org/10.1111/ecog.05396
  • Dexheimer, E., de Araújo, H. N., & Despland, E. (2021). Novel mutualistic interaction in introduced Polyommatus icarus larvae in Quebec. The Journal of the Entomological Society of Ontario, 152, 29-38. https://journal.lib.uoguelph.ca/index.php/eso/article/view/6370
  • Kantor, C. A., Skreta, M., Rauby, B., Boussioux, L., Jehanno, E., Luccioni, A., … & Talbot, H. (2021). Geo-Spatiotemporal Features and Shape-Based Prior Knowledge for Fine-grained Imbalanced Data Classification. arXiv preprint arXiv:2103.11285. https://arxiv.org/pdf/2103.11285.pdf
  • Kantor, C. A., Boussioux, L., Rauby, B., & Talbot, H. (2021). Gradient-Based Localization and Spatial Attention for Confidence Measure in Fine-Grained Recognition using Deep Neural Networks. Proceedings of the AAAI Conference on Artificial Intelligence35(18), 15807-15808. https://ojs.aaai.org/index.php/AAAI/article/view/17900
  • Kantor, C. A., Skreta, M., Rauby, B., Boussioux, L., Jehanno, E., Luccioni, A., … & Talbot, H. (2021). Geo-Spatiotemporal Features and Shape-Based Prior Knowledge for Fine-grained Imbalanced Data Classification. arXiv preprint arXiv:2103.11285. https://arxiv.org/pdf/2103.11285
  • Kantor, C. A., Boussioux, L., Rauby, B., & Talbot, H. (2021). Over-MAP: Structural Attention Mechanism and Automated Semantic Segmentation Ensembled for Uncertainty Prediction. Proceedings of the AAAI Conference on Artificial Intelligence, 35(17), 15316-15322. https://ojs.aaai.org/index.php/AAAI/article/view/17798

2020

  • Skreta, M., Luccioni, A., & Rolnick, D. (2020). Spatiotemporal Features Improve Fine-Grained Butterfly Image Classification. Tackling Climate Change with Machine Learning workshop at NeurIPS 2020. https://www.climatechange.ai/papers/neurips2020/63/paper.pdf
  • Tremblay, P., MacMillan, H. A., & Kharouba, H. M. (2020). Autumn larval cold tolerance does not predict the northern range limit of a widespread butterfly species. bioRxiv. https://doi.org/10.1101/2020.06.14.151266
  • Weiser, E. L., Diffendorfer, J. E., Lopez-Hoffman, L., Semmens, D., & Thogmartin, W. E. (2020). Challenges for leveraging citizen science to support statistically robust monitoring programs. Biological Conservation, 242, 108411. https://doi.org/10.1016/j.biocon.2020.108411

2019

  • Crewe, Tara L., Mitchell, Greg W., Larrivée, Maxim. (2019). Size of the Canadian Breeding Population of Monarch Butterflies Is Driven by Factors Acting During Spring Migration and Recolonization. Frontiers in Ecology and Evolution 7: 308. https://doi.org/10.3389/fevo.2019.00308
  • Calhoun, John. (2019). Watch for Erynnis funeralis (Hesperiidae) in the East. SOUTHERN LEPIDOPTERISTS’ NEWS 41 (4):285-287. (PDF)
  • Weiser, E. L., Diffendorfer, J. E., Grundel, R., López‐Hoffman, L., Pecoraro, S., Semmens, D., & Thogmartin, W. E. (2019). Balancing sampling intensity against spatial coverage for a community science monitoring programme. Journal of Applied Ecology. https://doi.org/10.1111/1365-2664.13491
  • Wilson, J. Keaton, Nicolas Casajus, Rebecca A. Hutchinson, Kent P. McFarland, Jeremy T. Kerr, Dominique Berteaux, Maxim Larrivée, Kathleen L. Prudic (2019) Climate change and local host availability drive the northern range boundary in the rapid northward expansion of the eastern giant swallowtail butterfly
    bioRxiv 868125; doi: https://doi.org/10.1101/868125

2015-2018

  • Soroye, P., Ahmed, N., Kerr, J.T. (2018). Opportunistic citizen science data transform understanding of species distributions, phenology, and diversity gradients for global change research. Global Change Biology 24, 5281–5291. https://doi.org/10.1111/gcb.14358
  • Prudic, K. L., Oliver, J. C., Brown, B. V., & Long, E. C. (2018). Comparisons of citizen science data-gathering approaches to evaluate urban butterfly diversity. Insects9(4), 186.
  • Prudic, K. L., McFarland, K. P., Oliver, J. C., Hutchinson, R. A., Long, E. C., Kerr, J. T., & Larrivée, M. (2017). eButterfly: leveraging massive online citizen science for butterfly conservation. Insects8(2), 53. https://doi.org/10.3390/insects8020053
  • Schmidt BC, Layberry RA (2016) What Azure blues occur in Canada? A re-assessment of Celastrina Tutt species (Lepidoptera, Lycaenidae). ZooKeys 584: 135-164. https://doi.org/10.3897/zookeys.584.7882
  • Ries, L., & Oberhauser, K. (2015). A citizen army for science: quantifying the contributions of citizen scientists to our understanding of monarch butterfly biology. BioScience65(4), 419-430. https://doi.org/10.1093/biosci/biv011+