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112 results for “EOL”

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zenodo40/100

EOL taxon identifier map

<p>A mapping of taxon identifiers from major classification sources to EOL, of the form:</p> <p>node_id, resource_pk, resource_id, page_id, preferred_canonical_for_page</p> <ul> <li>node_id: internal to EOL; useful for some API calls</li> <li>resource_pk: identifier according to the classification provider</li> <li>resource_id: identifies the classification provider (see below)</li> <li>page_id: EOL taxon concept identifier; official, for sharing</li> <li>preferred_canonical_for_page: canonical name preferred by EOL for this taxon concept</li> </ul> <p>resource_ids, their names and descriptions, are available at:&nbsp;<a href="https://eol.org/resources.json" target="_blank" rel="nofollow noopener">https://eol.org/resources.json</a>&nbsp;</p> <div> <p>There is also a summary file with resources ids, links, and resource names here:&nbsp;<a href="https://github.com/KatjaSchulz/eolResources">https://github.com/KatjaSchulz/eolResources</a></p> </div> <p>To view one at a time:&nbsp;<a href="https://eol.org/resources/" target="_blank" rel="nofollow noopener">https://eol.org/resources/</a>[enter ID here]</p> <p>Included classification providers:</p> <p>1-&gt; EOL Dynamic Hierarchy version 2.1, <a href="https://eol.org/resources/1">https://eol.org/resources/1</a><br>5 -&gt; IUCN, <a href="https://eol.org/resources/5">https://eol.org/resources/5</a>&nbsp;<br>459 -&gt; World Register of Marine Species (WoRMS), <a href="https://eol.org/resources/459">https://eol.org/resources/459&nbsp;</a><br>676 -&gt; National Center for Biotechnology Information (NCBI), <a href="https://eol.org/resources/676">https://eol.org/resources/676</a><br>695 -&gt; Integrated Taxonomic Information System (ITIS), <a href="https://eol.org/resources/695">https://eol.org/resources/695</a>&nbsp;<br>724 -&gt; EOL Dynamic Hierarchy version 1.1, <a href="https://eol.org/resources/724">https://eol.org/resources/724</a>&nbsp;<br>767 -&gt; GBIF classification, <a href="https://eol.org/resources/767">https://eol.org/resources/767</a>&nbsp;<br>1072 -&gt; Wikidata hierarchy, <a href="https://eol.org/resources/1072">https://eol.org/resources/1072</a>&nbsp;<br>1162 -&gt; Catalogue of Life (COL), <a href="https://eol.org/resources/1162">https://eol.org/resources/1162</a>&nbsp;<br>1174 -&gt; Dynamic Hierarchy Version 2.2.3 - Test, <a href="https://eol.org/resources/1174">https://eol.org/resources/1174</a></p> <p>commas within entries are "escaped, by, quoting", and quotes-within-quotes are ""double quoted""&nbsp;</p> <p>There is also a much larger mapping file for all EOL resources: <a href="../doi/10.5281/zenodo.13253932">EOL full taxon identifier map</a></p>

opencc-zeroSep 2024View details →
zenodo36/100

InZePro InForm 300 Cycles CCCV after EOL

<p>Data of 300 Cycles of InZePro project InForm cells. Material provided by Zentrum für Sonnenenergie- und Wasserstoff-Forschung Baden-Württemberg(ZSW). This test was done after formation and an end-of-line test.</p><p>Grants: Bundesministerium für Bildung und Forschung - BMBF &amp; Projektträger Jülich</p>

opencc-by-4.0Nov 2023View details →
zenodo36/100

End of life (EoL) pathways for the battery lifecycle

<p>A flowchart showing the end of life (EoL) pathways for the battery lifecycle, including decisions which need to be made at specific stages. Qualitative ranges have been selected, as the actual figures may change over time. For example, at present, when deciding which route to choose for an EoL battery pack, based on the State of Health (SoH) check, those which exceed 80&nbsp;% ("above") are suitable for reuse in another automotive application; those which demonstrate 50&nbsp;% or less ("below") must be dismantled and those which lie between these limits ("mid-range") can be considered for repurposing.</p>

opencc-by-4.0Dec 2023View details →
zenodo36/100

Supplementary data for the Eoles model

<p>Contains several demand and production hourly profiles to be used by the Eoles model developed at CIRED</p>

opencc-by-4.0Jul 2024View details →
zenodo36/100

User Generated Content (EOL v2): User Added Text, full v2

with user IDs mapped to v3 IDs; static resource file. derived from <p></p>https://opendata.eol.org/dataset/user-generated-content/resource/6886fc1d-83f9-45a6-87c4-b6b7726f30b8 For questions or use cases calling for large, multi-use aggregate data files, please visit the EOL Services forum at <p></p>http://discuss.eol.org/c/eol-services

opennotspecifiedAug 2024View details →
zenodo36/100

User Generated Content (EOL v2): user contributed common names for v3

in form: Namestring, ISO language code, User ID, Taxon ID Taxon IDs from v2, some may not find matches in v3 For questions or use cases calling for large, multi-use aggregate data files, please visit the EOL Services forum at <p></p>http://discuss.eol.org/c/eol-services

opennotspecifiedAug 2024View details →
zenodo36/100

User Generated Content (EOL v2): selected collection IDs

EOL v2 collections containing 3 or more taxa, not including content partner resource collections For questions or use cases calling for large, multi-use aggregate data files, please visit the EOL Services forum at <p></p>http://discuss.eol.org/c/eol-services

opennotspecifiedAug 2024View details →
zenodo36/100

User Generated Content (EOL v2): image order

A starting point for images in EOL v3, based on v2 user ratings and user selections as exemplar, translated into the new media tab system. Format: order begins 0, 1, 2, 3... counting from the top of the media gallery if firstOrLast=first, counting from the bottom of the media gallery if firstOrLast=last For questions or use cases calling for large, multi-use aggregate data files, please visit the EOL Services forum at <p></p>http://discuss.eol.org/c/eol-services

opennotspecifiedAug 2024View details →
zenodo36/100

EOL Dinosauria Patch (dino)

<p>Dinosaurs, including extinct birds to complement coverage of the COL &amp; IOC data sets.</p> <h3>References</h3> <p>Averianov, Alexander, and Hans-Dieter Sues. 2019. Morphometric Analysis of the Teeth and Taxonomy of the Enigmatic Theropod Richardoestesia from the Upper Cretaceous of Uzbekistan. Journal of Vertebrate Paleontology 39(3): e1614941. <a href="https://doi.org/10.1080/02724634.2019.1614941">https://doi.org/10.1080/02724634.2019.1614941</a></p> <p>Baron, Matthew G., David B. Norman, and Paul M. Barrett. 2017. A New Hypothesis of Dinosaur Relationships and Early Dinosaur Evolution. Nature 543(7646):501&ndash;6. <a href="https://doi.org/10.1038/nature21700">https://doi.org/10.1038/nature21700</a></p> <p>Benton, Michael. 2014. Vertebrate Palaeontology. John Wiley &amp; Sons. Brocklehurst, Neil, Paul Upchurch, Philip D. Mannion, and Jingmai O__Connor. 2012. The Completeness of the Fossil Record of Mesozoic Birds: Implications for Early Avian Evolution. PLoS ONE 7(6). <a href="https://doi.org/10.1371/journal.pone.0039056">https://doi.org/10.1371/journal.pone.0039056</a></p> <p>Brusatte, Stephen L., Jingmai K. O__Connor, and Erich D. Jarvis. 2015. The Origin and Diversification of Birds. Current Biology 25(19): R888&ndash;98. <a href="https://doi.org/10.1016/j.cub.2015.08.003">https://doi.org/10.1016/j.cub.2015.08.003</a></p> <p>Fastovsky, D.E., Weishampel, D.B., 2016. Dinosaurs: A Concise Natural History, third ed. New York: Cambridge University Press. Foth, Christian, and Oliver W. M. Rauhut. 2017. Re-Evaluation of the Haarlem Archaeopteryx and the Radiation of Maniraptoran Theropod Dinosaurs." BMC Evolutionary Biology 17. <a href="https://doi.org/10.1186/s12862-017-1076-y">https://doi.org/10.1186/s12862-017-1076-y</a></p> <p>Jarvis, Erich D., Siavash Mirarab, Andre J. Aberer, Bo Li, Peter Houde, Cai Li, Simon Y. W. Ho, et al. 2014. Whole-Genome Analyses Resolve Early Branches in the Tree of Life of Modern Birds. Science 346(6215):1320&ndash;31. <a href="https://doi.org/10.1126/science.1253451">https://doi.org/10.1126/science.1253451</a></p> <p>Jetz, W., G. H. Thomas, J. B. Joy, K. Hartmann, and A. O. Mooers. 2012. The Global Diversity of Birds in Space and Time. Nature 491(7424): 444&ndash;48. <a href="https://doi.org/10.1038/nature11631">https://doi.org/10.1038/nature11631</a></p> <p>J&oslash;nsson, Knud A., Pierre-Henri Fabre, Robert E. Ricklefs, and Jon Fjelds&aring;. 2011. Major Global Radiation of Corvoid Birds Originated in the Proto-Papuan Archipelago. Proceedings of the National Academy of Sciences 108(6):2328&ndash;33. <a href="https://doi.org/10.1073/pnas.1018956108">https://doi.org/10.1073/pnas.1018956108</a></p> <p>Ksepka, Daniel T., Julia A. Clarke, Sterling J. Nesbitt, Felicia B. Kulp, and Lance Grande. 2013. Fossil Evidence of Wing Shape in a Stem Relative of Swifts and Hummingbirds (Aves, Pan-Apodiformes). Proceedings of the Royal Society B: Biological Sciences 280(1761). <a href="https://doi.org/10.1098/rspb.2013.0580">https://doi.org/10.1098/rspb.2013.0580</a></p> <p>Langer, Max C., Mart&iacute;n D. Ezcurra, Oliver W. M. Rauhut, Michael J. Benton, Fabien Knoll, Blair W. McPhee, Fernando E. Novas, Diego Pol, and Stephen L. Brusatte. 2017. Untangling the Dinosaur Family Tree. Nature 551(7678): E1&ndash;3. <a href="https://doi.org/10.1038/nature24011">https://doi.org/10.1038/nature24011</a></p> <p>Mayr, Gerald. 2014. The origins of crown group birds: Molecules and fossils. Palaeontology 57:231&ndash;242. <a href="https://doi.org/10.1111/pala.12103">https://doi.org/10.1111/pala.12103 </a></p> <p>Mayr, Gerald. 2016. Avian Evolution: The Fossil Record of Birds and Its Paleobiological Significance. 1st ed. John Wiley &amp; Sons, Ltd, 2016. <a href="https://doi.org/10.1002/9781119020677">https://doi.org/10.1002/9781119020677</a>&nbsp;</p> <p>Mayr, Gerald, Thomas Lechner, and Madelaine B&ouml;hme.&nbsp;2020. The Large-Sized Darter Anhinga pannonica (Aves, Anhingidae) from the Late Miocene Hominid Hammerschmiede Locality in Southern Germany. PLOS ONE 15(5):e0232179. <a href="https://doi.org/10.1371/journal.pone.0232179">https://doi.org/10.1371/journal.pone.0232179</a></p> <p>Mayr, Gerald, and Marco Pavia. 2014. On the True Affinities of Chenornis graculoides Portis, 1884, and Anas lignitifila Portis, 1884&mdash;an Albatross and an Unusual Duck from the Miocene of Italy. Journal of Vertebrate Paleontology 34(4):914&ndash;23. <a href="https://doi.org/10.1080/02724634.2013.821076">https://doi.org/10.1080/02724634.2013.821076</a></p> <p>Nesbitt, Sterling J., Daniel T. Ksepka, and Julia A. Clarke. 2011. Podargiform Affinities of the Enigmatic Fluvioviridavis platyrhamphus and the Early Diversification of Strisores (Caprimulgiformes + Apodiformes). PLoS ONE 6(11). <a href="https://doi.org/10.1371/journal.pone.0026350">https://doi.org/10.1371/journal.pone.0026350</a></p> <p>Paleobiology Database, PBDB, accessed at <a href="https://paleobiodb.org">https://paleobiodb.org </a></p> <p>Pietri, Vanesa L.&nbsp;De, and Gerald Mayr. 2014. The Phylogenetic Relationships of the Early Miocene Stork Grallavis edwardsi, with Comments on the Interrelationships of Living Ciconiidae (Aves). Zoologica Scripta 43(6):576&ndash;85. <a href="https://doi.org/10.1111/zsc.12074">https://doi.org/10.1111/zsc.12074</a></p> <p>Pietri, VL De, R. P. Scofield, S. J. Hand, A. J. D. Tennyson, and T. H. Worthy. 2016. Sheathbill-like Birds (Charadriiformes: Chionoidea) from the Oligocene and Miocene of Australasia." Journal of the Royal Society of New Zealand 46(3&ndash;4):181&ndash;99. <a href="https://doi.org/10.1080/03036758.2016.1194297">https://doi.org/10.1080/03036758.2016.1194297</a></p> <p>Su&aacute;rez, William. 2020. The Fossil Avifauna of the Tar Seeps Las Breas de San Felipe, Matanzas, Cuba. Zootaxa 4780(1):1&ndash;53. <a href="https://doi.org/10.11646/zootaxa.4780.1.1">https://doi.org/10.11646/zootaxa.4780.1.1</a></p> <p>Warheit, Kenneth I. 2002. The Seabird Fossil Record and the Role of Paleontology in Understanding Seabird Community Structure. CRC Press. Worthy, Trevor H., and Jacqueline M. T. Nguyen. 2020. An Annotated Checklist of the Fossil Birds of Australia.Transactions of the Royal Society of South Australia 144(1):66&ndash;108. <a href="https://doi.org/10.1080/03721426.2020.1756560">https://doi.org/10.1080/03721426.2020.1756560</a></p> <p>Yuri, Tamaki, Rebecca T. Kimball, John Harshman, Rauri C. K. Bowie, Michael J. Braun, Jena L. Chojnowski, Kin-Lan Han, et al. 2013. Parsimony and Model-Based Analyses of Indels in Avian Nuclear Genes Reveal Congruent and Incongruent Phylogenetic Signals. Biology 2(1):419&ndash;44.&nbsp;<a href="https://doi.org/10.3390/biology2010419">https://doi.org/10.3390/biology2010419</a></p>

openother-pdAug 2024View details →
zenodo36/100

EOL Dynamic Hierarchy: Dynamic Hierarchy Version 2.2

<p>EOL Dynamic Hierarchy Version 2.2</p> <p>The Encyclopedia of Life (EOL, eol.org) aggregates biodiversity information from more than 400 sources and provides access to the data through taxon pages, visual query and application programming interfaces. Scientific names are essential elements of the data integration infrastructure, but their shortcomings as key identifiers are well documented (Patterson et al., 2016). Complex automated workflows and continuous manual curation are required to address idiosyncrasies of source taxonomies, variation in data quality, and conflicting taxonomic opinions. To achieve a harmonized taxonomic view of EOL content, names from data sources are mapped to a dynamic reference hierarchy using an algorithm that leverages canonical name strings, hierarchical information (ancestry, descendants), taxonomic ranks, synonym data, and author strings. Names that cannot be associated with a reference taxon are still accessible, but their unmapped status excludes them and any associated content from certain core EOL functions. For more information about the EOL taxonomy, see <a title="EOL Dynamic Hierarchy" href="https://eol.org/docs/eol-dynamic-hierarchy">EOL Dynamic Hierarchy</a>.</p>

openother-pdAug 2024View details →
zenodo36/100

EOL Dynamic Hierarchy: Dynamic Hierarchy Version 2.1.1

Currently active Dynamic Hierarchy and archived versions. For more information, see: <p></p>https://eol.org/docs/eol-dynamic-hierarchy<p></p>The Encyclopedia of Life (EOL, eol.org) aggregates biodiversity information from more than 400 sources and provides access to the data through taxon pages, visual query and application programming interfaces. Scientific names are essential elements of the data integration infrastructure, but their shortcomings as key identifiers are well documented (Patterson et al., 2016). Complex automated workflows and continuous manual curation are required to address idiosyncrasies of source taxonomies, variation in data quality, and conflicting taxonomic opinions. To achieve a harmonized taxonomic view of EOL content, names from data sources are mapped to a dynamic reference hierarchy ([see current version here](<p></p>https://opendata.eol.org/dataset/tram-807-808-809-810-dh-v1-1/resource/00adb47b-57ed-4f6b-8f66-83bfdb5120e8)) using an algorithm that leverages canonical name strings, hierarchical information (ancestry, descendants), taxonomic ranks, synonym data, and author strings. Names that cannot be associated with a reference taxon are still accessible, but their unmapped status excludes them and any associated content from certain core EOL functions. For more information about the EOL taxonomy, see [EOL Dynamic Hierarchy](<p></p>https://eol.org/docs/eol-dynamic-hierarchy)

openother-pdAug 2024View details →
zenodo36/100

EOL Annelida Patch (ANN)

<p>Taxonomic hierarchy &amp; species lists for Annelida compiled from multiple sources:</p> <p>Bantaowong, U., Chanabun, R., Tongkerd, P., Sutcharit, C., James, S.W., Panha, S., 2011. New earthworm species of the genus Amynthas Kinberg, 1867 from Thailand (Clitellata, Oligochaeta, Megascolecidae). Zookeys, 90: 35-62.</p> <p>Bantaowong, U., Chanabun, R., James, S.W., Panha, S., 2016. Seven new species of the earthworm genus Metaphire Sims and Easton, 1972 from Thailand (Clitellata: Megascolecidae). Zootaxa, 4117(1): 063-084.</p> <p>Blakemore, R.J., 2007. Checklist and phylogeny of Exxidae (Oligochaeta). European Journal of Soil Biology, 43: S9-S13.</p> <p>Blakemore, R.J., 2008. A Series of Searchable Texts on Earthworm Biodiversity, Ecology and Systematics from Various Regions of the World &ndash; 3rd Edition (2008) December, 2008,&nbsp;<a href="http://www.annelida.net/earthworm/" target="_blank" rel="nofollow noopener">http://www.annelida.net/earthworm/</a></p> <p>Blakemore, R.J., 2011. Further records of non-cryptic New Zealand earthworms. ZooKeys, 160: 23-46.</p> <p>Blakemore, R.J., 2013. Earthworms newly from Mongolia (Oligochaeta, Lumbricidae, Eisenia). ZooKeys, 285: 1&ndash;21.</p> <p>Blakemore, R.J., Chang, C.H., Chuang, S.C., Ito, M.T., James, S.W., 2006. Biodiversity of Earthworms in Taiwan: a Species Checklist with the Confirmation and New Records of the Exotic Lumbricids Eisenia fetida and Eiseniella tetraedra. Taiwania, 51 (3): 226-236.</p> <p>Blakemore, R.J., Park, T.S., Seo, H.Y., 2012. A new Korean earthworm (Oligochaeta: Megadrilacea: Megascolecidae). Zootaxa, 3368: 256-262.</p> <p>Buckley, T.R., James, S., Allwood, J., Bartlam, S., Howitt, R., Prada, D., 2011. Phylogenetic analysis of New Zealand earthworms (Oligochaeta: Megascolecidae) reveals ancient clades and cryptic taxonomic diversity. Molecular Phylogenetics and Evolution, 58: 85-96.</p> <p>Celis, L.V., Rangel-Ch, O., 2015. Two new earthworm species (Oligochaeta: Annelida) of the Caribbean region of Colombia. Zootaxa, 3974(1): 106&ndash;114.</p> <p>Cervantes, G., Fragoso, C., De Los Monteros, A.E., Sanchez-Ramos, G., Lara-Villalon, M., Yanez-Pacheco, M.J., Lazaro-Castellanos, J.O., James, S.W., 2016. New species of the earthworm genus Zapatadrilus (Clitellata, Acanthodrilidae) from northern Mexico. Zootaxa, 4189(2).</p> <p>Chanabun, R., Sutcharit, C., Tongkerd, P., Shau-Hwai, A.T., Panha, S., 2012. Three new species of semi-aquatic freshwater earthworms of the genus Glyphidrilus Horst, 1889 from Malaysia (Clitellata: Oligochaeta: Almidae). Zootaxa, 3458: 120-132.</p> <p>Chanabun, R., Sutcharit, C., Tongkerd, P., Panha, S., 2013. The semi-aquatic freshwater earthworms of the genus Glyphidrilus Horst, 1889 from Thailand (Oligochaeta, Almidae) with re-descriptions of several species. Zookeys, 265: 1-76. DOI: 10.3897/zookeys.265.3911</p> <p>Chanabun, R., Inkavilay, K., Panha, S., 2017. New species of semi-aquatic freshwater earthworm genus Glyphidrilus Horst, 1889 from Thailand and Laos (Oligochaeta, Almidae). ZooKeys, 672: 1-34 (03 May 2017), DOI: 10.3897/zookeys.672.10212</p> <p>Chang, C.H., Chuang, S.C., Wu, J.H., Chen, J.H., 2014. New species of earthworms belonging to the Metaphire formosae species group (Clitellata: Megascolecidae) in Taiwan. Zootaxa, 3774(4).</p> <p>Christoffersen, M.L., 2008. Species catalogue and phylogenetic relations of criodriloids and basal glossoscolecoids (Annelida Clitellata Lumbricina) from South America. Tropical Zoology, 21: 209-226.</p> <p>Christoffersen, M.L., 2009. Species diversity and distributions of microdrile earthworms (Annelida, Clitellata, Enchytraeidae) from South America. Zootaxa, 2065: 51-68.</p> <p>Csuzdi, Cs., 2012. Earthworm species, a searchable database. Opuscula Zoologica Budapest, 43: 97&ndash;99.&nbsp;<a href="http://earthworm.uw.hu/" target="_blank" rel="nofollow noopener">http://earthworm.uw.hu/</a></p> <p>Csuzdi, Cs., Tondoh, J.E, 2007. New and little-known earthworm species from the Ivory Coast (Oligochaeta: Acanthodrilidae: Benhamiinae and Eudrilidae). Journal of Natural History, 41(41&ndash;44): 2551&ndash;2567.</p> <p>Csuzdi, Cs., Mischis, C.C., 2009. Earthworms from Argentinean Patagonia with description of two remarkable new species (Oligochaeta: Acanthodrilidae, Lumbricidae and Megascolecidae). Journal of Natural History, 44(1-2): 31-40.</p> <p>Csuzdi, Cs., Pavl&iacute;ček, T, 2011. A new earthworm genus Nouraguesia gen. nov. from French Guiana with description of two new species (Oligochaeta, Glossoscolecidae). Journal of Natural History, 45: 27, 1759-1767.</p> <p>Csuzdi, Cs., Zicsi A., Mısırlıoğlu, M., 2006. An annotated checklist of the earthworm fauna of Turkey (Oligochaeta: Lumbricidae). Zootaxa, 1175: 1&ndash;29.</p> <p>Csuzdi, Cs., Guei, M.A., Tondoh, J.E., 2009. New and little known earthworm species from the Mt. Nimba, Guinea (Oligochaeta, Acanthodrilidae: Benhamiinae). Zootaxa, 2141: 56-68.</p> <p>Csuzdi, Cs., Pop, V.V., Pop, A.A., 2011. The earthworm fauna of the Carpathian Basin with new records and description of three new species (Oligochaeta: Lumbricidae). Zoologischer Anzeiger, 250(1): 2-18.</p> <p>Csuzdi, Cs., Razafindrakoto, M., Blanchart, E., 2012. New and Little Known Giant Earthworms from Madagascar (Oligochaeta: Kynotidae). African Invertebrates, 52(2): 285-294.</p> <p>Csuzdi, Cs., Razafindrakoto, M., Blanchart, E., 2012. New and little known earthworm species from Central Madagascar (Oligochaeta: Kynotidae). Zootaxa, 3578: 36-42.</p> <p>Csuzdi, Cs., Sherlock, E., Talla Kouete, M., Doherty-Bone, T.M., 2015. Four new earthworm species from the highlands of Cameroon with description of a new genus Okudrilus gen. n. (Oligochaeta: Eudrilidae &amp; Acanthodrilidae). African Invertebrates, 56(1): 25&ndash;38.</p> <p>Csuzdi, Cs., Pearlson, O., Pavl&iacute;ček, T, 2017. New Acanthodrilus species from New Caledonia (Clitellata, Megadrili, Acanthodrilidae). Journal of Natural History, 51: 1-14, DOI: 10.1080/00222933.2017.1355500</p> <p>Csuzdi, Cs., Chang, C.-H., Pavl&iacute;ček, T., Szederjesi, T., Esopi, D., Szlavecz, K., 2017. Molecular phylogeny and systematics of native North American lumbricid earthworms (Clitellata: Megadrili). PLoS ONE, 12(8): e0181504. DOI: 10.1371/journal.pone.0181504</p> <p>Csuzdi, Cs., Razafindrakoto, M., Hong, Y., 2017. Three new species of Kynotus from the Central Highlands of Madagascar (Clitellata, Megadrili). European Journal of Taxonomy, 336: 1-14, DOI: 10.5852/ejt.2017.336</p> <p>Csuzdi, Cs., James, S.W., Lapied, E. 2018. DriloBASE. World Earthworm Database.&nbsp;<a href="http://taxo.drilobase.org/" target="_blank" rel="nofollow noopener">http://taxo.drilobase.org</a></p> <p>Dom&iacute;nguez, J., Aira, M., Breinholt, J.W., Stojanovic, M., James, S.W., P&eacute;rez-Losada, M., 2015. Underground evolution: New roots for the old tree of lumbricid earthworms. Molecular Phylogenetics and Evolution, 83: 7&ndash;19.</p> <p>Dom&iacute;nguez, J., Aira, M., Porto, P.G., D&iacute;az Cos&iacute;n, D.J., P&eacute;rez-Losada, M., 2017. Multigene phylogeny reveals two new isolated and relic earthworm genera (Oligochaeta: Lumbricidae). Zoological Journal of the Linnean Society, 182: 258&ndash;274. DOI: 10.1093/zoolinnean/zlx031</p> <p>Dos Santos, B.T.S., Bartz, M.L.C., Hernandez-Garcia, L.M., Rousseau, G.X., Martins, M.B., James, S.W., 2017. New earthworm species of Righiodrilus (Clitellata, Glossoscolecidae) from eastern Amazonia. Zootaxa, 4242(2). DOI: 10.11646/zootaxa.4242.2.11</p> <p>Feijoo, M.A., Brown, G.G., James, S.W., 2017. New species of Andiorrhinus Cognetti, 1908 (Oligochaeta: Rhinodrilidae) from Venezuela and Brazil. Zootaxa, 4363(1): 55. DOI: 10.11646/zootaxa.4363.1.2</p> <p>Fragoso, C., Rojas, P., 2016. Lavellodrilus notosetosus sp. nov. (Annelida, Crassiclitellata, Acanthodrilidae): a new Mexican earthworm with uncommon characters, revealed by a preliminary revision of subfamily Acanthodrilinae. Zootaxa, 4154(2): 1.</p> <p>Hackenberger, D.K., Hackenberger, B.K., 2013. Checklist of the earthworm fauna of Croatia (Oligochaeta: Lumbricidae). Zootaxa, 3710(1): 001&ndash;030.</p> <p>Hendrix, P.F., 1995. Earthworm Ecology and Biogeography in North America. CRC Press.</p> <p>James, S.W., 2009. Revision of the earthworm genus Archipheretima Michaelsen (Clitellata: Megascolecidae), with descriptions of new species from Luzon and Catanduanes Islands, Philippines. Organisms Diversity and Evolution, 9(3): 244.e1-244.e16.</p> <p>James, S.W., 2012. Re-erection of Rhinodrilidae Benham, 1890, a senior synonym of Pontoscolecidae James, 2012 (Annelida: Clitellata). Zootaxa, 3540: 67-68.</p> <p>James, S.W., Davidson, S.K., 2012. Molecular phylogeny of earthworms (Annelida: Crassiclitellata) based on 28S, 18S and 16S gene sequences. Invertebrate Systematics, 26(2): 213-229.</p> <p>James, S.W., Gamiette, F., 2016. New species of Dichogaster Beddard, 1888 (Clitellata: Benhamiidae) with additional records of earthworms from Guadeloupe (French West Indies). Zootaxa, 4178(3), DOI: 10.11646/zootaxa.4178.3.5</p> <p>Jirapatrasilp, P., Prasankok, P., Sutcharit, C., Chanabun, R., Panha, S., 2016. Two new Cambodian semi-aquatic earthworms in the genus Glyphidrilus Horst, 1889 (Oligochaeta, Almidae), based on morphological and molecular data. Zootaxa, 4189(3): 543-558, DOI: 10.11646/zootaxa.4189.3.5</p> <p>Lehmitz, R., R&ouml;mbke, J., J&auml;nsch, S., Kr&uuml;ck, S., Beylich, A., Graefe, U., 2014. Checklist of earthworms (Oligochaeta: Lumbricidae) from Germany. Zootaxa, 3866: 221-245.</p> <p>March&aacute;n, D.F., Fern&aacute;ndez, R., de Sosa, I., S&aacute;nchez, N., D&iacute;az Cos&iacute;n, D.J., Novo, M., 2018. Integrative systematic revision of a Mediterranean earthworm family: Hormogastridae (Annelida, Oligochaeta). Invertebrate Systematics, 32(3):652-671. DOI: 10.1071/IS17048</p> <p>Moreno, A.G., Borges, S., eds. 2004. Advances in Earthworm Taxonomy (Annelida: Oligochaeta). Editorial Complutense, Madrid.</p> <p>Narayanan, S.P., Sathrumithra, S., Christopher, G., Julka, J.M., 2017. New species and new records of earthworms of the genus Drawida from Kerala part of the Western Ghats biodiversity hotspot, India (Oligochaeta, Moniligastridae). ZooKeys, 691: 1-18, DOI: 10.3897/zookeys.691.13174</p> <p>Nxele, T.C., 2012. The megadrile fauna (Annelida: Oligochaeta) of Queen Elizabeth Park, South Africa: species composition and distribution within different vegetation types. African Invertebrates, 53(2): 543&ndash;558.</p> <p>Paleobiology Database, PBDB, accessed at&nbsp;<a href="https://paleobiodb.org/" target="_blank" rel="nofollow noopener">https://paleobiodb.org</a></p> <p>Plisko, J.D., 2013. A new family Tritogeniidae for the genera Tritogenia and Michalakus, earlier accredited to the composite Microchaetidae (Annelida: Oligochaeta). African Invertebrates, 54(1): 69-92.</p> <p>Pop, V.V., Pop, A.A., Csuzdi, Cs., 2014. An annotated checklist of the Romanian earthworm fauna. Zoology in the Middle East, 58(4): 59-70, DOI: 10.1080/09397140.2012.10648985</p> <p>Purschke, G&uuml;nter, Markus B&ouml;ggemann, and Wilfried Westheide, eds. 2019. Annelida Basal Groups and Pleistoannelida, Sedentaria I. Annelida. Vol. 1. Handbook of Zoology / Handbuch Der Zoologie. De Gruyter.</p> <p>Razafindrakoto et al., 2017 &mdash; Razafindrakoto, M., Csuzdi, Cs., James, S., Blanchart, E., 2017. New earthworms from Madagascar with key to the Kynotus species (Oligochaeta: Kynotidae). Zoologischer Anzeiger, 268: 126-135.</p> <p>Reynolds, J.W., Wetzel, M.J., 2008. Terrestrial Oligochaeta (Annelida: Clitellata) in North America, including Mexico, Puerto Rico, Hawaii, and Bermuda. Megadrilogica, 12(12): 157-208.</p> <p>Reynolds, J.W., Wetzel, M.J., 2012. Terrestrial Oligochaeta (Annelida: Clitellata) in North America, including Mexico, Puerto Rico, Hawaii, and Bermuda. III. Megadrilogica, 15(8): 191-211.</p> <p>Reynolds, J.W., Wetzel, M.J. 2018. Nomenclatura Oligochaetologica. A Catalogue of Names, Descriptions and Type Specimens of the Oligochaeta. Second Edition.&nbsp;<a href="http://wwx.inhs.illinois.edu/people/mjwetzel/nomenoligo" target="_blank" rel="nofollow noopener">http://wwx.inhs.illinois.edu/people/mjwetzel/nomenoligo</a></p> <p>Schiffer, Philipp H., Helen E. Robertson, and Maximilian J. Telford. 2018. Orthonectids Are Highly Degenerate Annelid Worms. Current Biology 28(12):1970-1974.e3.&nbsp;<a href="https://doi.org/10.1016/j.cub.2018.04.088" target="_blank" rel="nofollow noopener">https://doi.org/10.1016/j.cub.2018.04.088</a>.</p> <p>Schmelz, R.M., ed. 2012. Global diversity of earthworms and other Oligochaeta (Annelida): collected papers. Zootaxa 3458 103&ndash;119.</p> <p>Szederjesi, T., Vavoulidou, E., Chalkia, C., Danyi, L., Csuzdi, Cs., 2017. An annotated checklist of earthworms of Greece (Clitellata: Megadrili). Zootaxa, 4272(1): 57-82. DOI: 10.11646/zootaxa.4272.1.3</p> <p>Trakić, T., Valchovski, H., Stojanović, M., 2016. Endemic earthworms (Oligochaeta: Lumbricidae) of the Balkan Peninsula: a review. Zootaxa, 4189(2): 251-274.</p> <p>Weigert, A., Bleidorn, C., 2016. Current status of annelid phylogeny. Org Divers Evol 16, 345&ndash;362.&nbsp;<a href="https://doi.org/10.1007/s13127-016-0265-7" target="_blank" rel="nofollow noopener">https://doi.org/10.1007/s13127-016-0265-7</a></p> <p>WoRMS Editorial Board (2020). World Register of Marine Species. Available from&nbsp;<a href="http://www.marinespecies.org/" target="_blank" rel="nofollow noopener">http://www.marinespecies.org</a>&nbsp;at VLIZ.&nbsp;<a href="https://doi.org/10.14284/170" target="_blank" rel="nofollow noopener">https://doi.org/10.14284/170</a></p> <p>Zverkov, Oleg A., Kirill V. Mikhailov, Sergey V. Isaev, Leonid Y. Rusin, Olga V. Popova, Maria D. Logacheva, Alexey A. Penin, et al. 2019. Dicyemida and Orthonectida: Two Stories of Body Plan Simplification. Frontiers in Genetics 10.&nbsp;<a href="https://doi.org/10.3389/fgene.2019.00443" target="_blank" rel="nofollow noopener">https://doi.org/10.3389/fgene.2019.00443</a>.</p>

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zenodo36/100

EOL Dynamic Hierarchy: EOL Dynamic Hierarchy 2.1 with eolIDs, authorities & higher classification

Currently active Dynamic Hierarchy and archived versions. For more information, see: <p></p>https://eol.org/docs/eol-dynamic-hierarchy<p></p>The Encyclopedia of Life (EOL, eol.org) aggregates biodiversity information from more than 400 sources and provides access to the data through taxon pages, visual query and application programming interfaces. Scientific names are essential elements of the data integration infrastructure, but their shortcomings as key identifiers are well documented (Patterson et al., 2016). Complex automated workflows and continuous manual curation are required to address idiosyncrasies of source taxonomies, variation in data quality, and conflicting taxonomic opinions. To achieve a harmonized taxonomic view of EOL content, names from data sources are mapped to a dynamic reference hierarchy ([see current version here](<p></p>https://opendata.eol.org/dataset/tram-807-808-809-810-dh-v1-1/resource/00adb47b-57ed-4f6b-8f66-83bfdb5120e8)) using an algorithm that leverages canonical name strings, hierarchical information (ancestry, descendants), taxonomic ranks, synonym data, and author strings. Names that cannot be associated with a reference taxon are still accessible, but their unmapped status excludes them and any associated content from certain core EOL functions. For more information about the EOL taxonomy, see [EOL Dynamic Hierarchy](<p></p>https://eol.org/docs/eol-dynamic-hierarchy)

openother-pdAug 2024View details →
zenodo36/100

EOL Dynamic Hierarchy Lizards Patch (LIZ): EOL Dynamic Hierarchy Lizards Patch

<p>Squamata sans Serpentes. Hierarchy (following Ananjeva 2019, Conrad &amp; Norell 2007, Pyron 2017, Pyron et al. 2013, Reeder et al. 2015, Streicher &amp; Wiens 2017, Zheng &amp; Wiens 2016), extinct taxa (main source: <a href="&lt;p&gt;&lt;/p&gt;http://www.paleobiodb.org/">Paleobiology Database</a>), additions &amp; corrections for Recent taxa (main source: <a href="&lt;p&gt;&lt;/p&gt;http://reptile-database.reptarium.cz/">Reptile Database</a>) to complement Catalogue of Life coverage.</p> <p>Data sources:</p> <p>Alifanov, V.R. 1988. The new lizards (Lacertilia: Teiidae) from the Upper Cretaceous of Mongolia. In F. Kurochkin (ed.), Fossil reptiles and birds of Mongolia.</p> <p>Alifanov, V.R. 1989. [New priscagamas (Lacertilia) from the Upper Cretaceous of Mongolia and their systematic position in the Iguania]. Paleontologiceskij Zhurnal 4:73-87.</p> <p>Alifanov, V.R. 1993. New lizards of the family Macrocephalosauridae (Sauria) from the Upper Cretaceous of Mongolia, critical remarks on the systematics of the Teiidae. Paleontological Journal 27(1):70-90.</p> <p>Alifanov, V.R. 1996. Lizards of the families Priscagamidae and Hoplocercidae (Sauria, Iguania): phylogenetic position and new representatives from the Late Cretaceous of Mongolia. Paleontological Journal 30(4):466-483.</p> <p>Alifanov, V.R. 2000. Macrocephalosaurs and the early evolution of lizards of Central Asia. Transactions of the Palaeontological Institute of the Russian Academy of Sciences 272.</p> <p>Alifanov, V.R. 2000. The fossil record of Cretaceous lizards from Mongolia. In M.J. Benton, M.A. Shishkin, D.M. Unwin, &amp; E N. Kurichkin (eds.), The Age of Dinosaurs in Russia and Mongolia.</p> <p>Alifanov, V.R. 2009. New acrodont lizards (Lacertilia) from the Middle Eocene of southern Mongolia. Paleontological Journal 43(6):675-685.</p> <p>Alifanov, V.R. 2012. Lizards of the family Arretosauridae Gilmore, 1943 (Iguanomorpha, Iguania) from the Paleogene of Mongolia. Paleontological Journal 46(4):412-420.</p> <p>Alifanov, V.R. 2013. Desertiguana gobiensis gen. et sp. nov., a new lizard (Phrynosomatidae, Iguanomorpha) from the Upper Cretaceous of Mongolia. Paleontological Journal 47(4):417-424.</p> <p>Alifanov, V.R. 2016. Lizards of the family Hodzhakuliidae (Scincomorpha) from the lower Cretaceous of Mongolia. Paleontol. J. 50:504&ndash;513. <a href="https://doi.org/10.1134/S0031030116050038">https://doi.org/10.1134/S0031030116050038 </a></p> <p>Alifanov, V.R. 2018. A New Platynotan Lizard (Parasaniwidae, Anguimorpha) from the Late Paleocene of Southern Mongolia. Paleontological Journal 52(12):1432-1435.</p> <p>Ananjeva, N.B. 2019. Current State of the Problems in the Phylogeny of Squamate Reptiles (Squamata, Reptilia). Biol Bull Rev 9:119&ndash;128.&nbsp;<a href="https://doi.org/10.1134/S2079086419020026">https://doi.org/10.1134/S2079086419020026 </a></p> <p>Apestegu&iacute;a, S., J.D. Daza, T.R. Sim&otilde;es, J.C. Rage. 2016. The first iguanian lizard from the Mesozoic of Africa. Royal Society Open Science 3:160462:1-13.</p> <p>Arnold, E.N., D. Azar, I. Ineich, A. Nel. 2002. The oldest reptile in amber: a 120 million year old lizard from Lebanon. Journal of Zoology 258:7-10.</p> <p>Aug&eacute;, M.L. 2003. La faune de Lacertilia (Reptilia, Squamata) de l__&Eacute;oc&egrave;ne inf&eacute;rieur de Pr&eacute;montr&eacute; (Bassin de Paris, France). Geodiversitas 25(3):539-574.</p> <p>Aug&eacute;, M.L. 2005. Evolution des l&eacute;zards du Pal&eacute;og&egrave;ne en Europe. M&eacute;moires du Mus&eacute;um national d__histoire naturelle 192:1-369.</p> <p>Aug&eacute;, M.L. 2007. Past and present distribution of iguanid lizards. Arquivos do Museu Nacional, Rio de Janeiro 65(4):403-416.</p> <p>Aug&eacute;, M.L., D. Pouit. 2012. Presence of iguanid lizards in the European Oligocene Lazarus taxa and fossil abundance. Bulletin de la Soci&eacute;t&eacute; G&eacute;ologique de France 183(6):653-660.</p> <p>Aug&eacute;, M.L., J.-C. Rage. 2006. Herpetofaunas from the Upper Paleocene and Lower Eocene of Morocco. Annales de Pal&eacute;ontologie 92(3):235-253.</p> <p>Aug&eacute;, M.L., R.M. Sullivan. 2006. A new genus, Paraplacosauriops (Squamata, Anguidae, Glyptosaurinae), from the Eocene of France. Journal of Vertebrate Paleontology 26(1):133-137.</p> <p>Aug&eacute;, M.L., R. Smith. 2002. Nouveaux Lacertidae (Reptilia, Squamata) de l__Eoc&egrave;ne inf&eacute;rieur europ&eacute;en. Belgian Journal of Zoology 131(1):3-15.</p> <p>Aug&eacute;, M.L., R. Smith. 2009. An assemblage of early Oligocene lizards (Squamata) from the locality of Boutersem (Belgium), with comments on the Eocene-Oligocene transition. Zoological Journal of the Linnean Society 155:148-170.</p> <p>Aug&eacute;, M.L. 2012. Amphisbaenians from the European Eocene: a biogeographical review. Palaeobiodiversity and Palaeoenvironments 92(4):425-443.</p> <p>Aug&eacute;, M.L., S. Hervet. 2009. Fossil lizards from the locality of Gannat (late Oligocene&ndash;early Miocene, France) and a revision of the genus Pseudeumeces (Squamata, Lacertidae). Palaeobiodiversity and Palaeoenvironments 89:191-201.</p> <p>Averianov, A.O., P.P. Skutschas, A.V. Lopatin, S.V. Leschinskiy, A.S. Rezvyi, A.V. Fayngerts. 2005. Early Cretaceous mammals from Bol__Shoi Kemchug 3 locality in West Siberia, Russia. Russian Journal of Theriology 4(1):1-12.</p> <p>Bailon, S. 2000. Amphibiens et reptiles du Plioc&egrave;ne terminal d__Ahl al Oughlam (Casablanca, Maroc). Geodiversitas 22(4):539-558.</p> <p>Bailon, S., M.L. Aug&eacute;. 2012. Un nouveau genre, Ragesaurus (Squamata, Anguidae, Anguinae), du Pl&eacute;istoc&egrave;ne inf&eacute;rieur des &icirc;les Medas (Catalogne, Espagne). Bulletin de la Soci&eacute;t&eacute; G&eacute;ologique de France 183(6):683-688.</p> <p>Bardet, N. 2012. The mosasaur collections of the Museum National d___Histoire Naturelle of Paris. Bulletin de la Societe Geologique de France 183(1):35-53.</p> <p>Bardet, N., X. Pereda Suberbiola, M. Iarochene, B. Bouya, M. Amaghaz. 2005. A new species of Halisaurus from the Late Cretaceous phosphates of Morocco, and the phylogenetical relationships of the Halisaurinae (Squamata: Mosasauridae). Zoological Journal of the Linnean Society 143:447-472.</p> <p>Bardet, N., X. Pereda Suberbiola, M. Iarochene, F. Bouyahyaoui, B. Bouya, M. Amaghzaz. 2004. Mosasaurus beaugei Arambourg, 1952 (Squamata, Mosasauridae) from the Late Cretaceous phosphates of Morocco. Geobios 37:315-324.</p> <p>Bardet, N., X. Pereda Suberbiola, M. Iaroch&egrave;ne, M. Amalik, B. Bouya. 2005. Durophagous Mosasauridae (Squamata) from the Upper Cretaceous phosphates of Morocco, with description of a new species of Globidens. Netherlands Journal of Geosciences &mdash; Geologie en Mijnbouw 84(3):167-175.</p> <p>Bardet, N., X. Pereda Suberbiola, N.-E. Jalil. 2003. A new mosasauroid (Squamata) from the Late Cretaceous (Turonian) of Morocco. Comptes Rendus Palevol 2:607-616.</p> <p>Bauer, A.M., W. B&ouml;hme, W. Weitschat. 2005. An Early Eocene gecko from Baltic amber and its implications for the evolution of gecko adhesion. Journal of Zoology 265:327-332.</p> <p>Bell, G.L., M.J. Polcyn. 2005. Dallasaurus turneri, a new primitive mosasauroid from the Middle Turonian of Texas and comments on the phylogeny of Mosasauridae (Squamata). Netherlands Journal of Geosciences 84(3):177-194.</p> <p>Berman, D.S. 1972. Hyporhina tertia, new species (Reptilia: Amphisbaenia), from the Early Oligocene (Chadronian) White River Formation of Wyoming. Annals of Carnegie Museum 44(1):1-10.</p> <p>Berman, D.S. 1973. Spathorhynchus fossorium, a middle Eocene amphisbaenian (Reptilia) from Wyoming. Copeia 1973(4):704-721.</p> <p>Berman, D.S. 1976. A new amphisbaenian (Reptilia: Amphisbaenia) from the Oligocene-Miocene John Day Formation, Oregon,. Journal of Paleontology 50(1):165-174.</p> <p>Berman, D.S. 1977. Spathorhynchus natronicus, a new species of rhineurid amphisbaenian (Reptilia) from the Early Oligocene of Wyoming. Journal of Paleontology 51(5):986-991.</p> <p>B&ouml;hme, M. 2010. Ectothermic vertebrates (Actinopterygii, Allocaudata, Urodela, Anura, Crocodylia, Squamata) from the Miocene of Sandelzhausen (Germany, Bavaria) and their implications for environment reconstruction and palaeoclimate. Pal&auml;ontologische Zeitschrift 84(1):3-41.</p> <p>Bohme, W., W. Weitschat. 1998. Redescription of the Eocene lacertid lizard Nucras succinea Boulenger, 1917 from Baltic amber and its allocation to Succinilacerta n. gen. Mitteilungen aus dem Geologisch-Pal&auml;ontologischen Institut der Universit&auml;t Hamburg 81:203-222.</p> <p>Bolet, A., M.L. Aug&eacute;. 2014. A new miniaturized lizard from the late Eocene of France and Spain. The Anatomical Record 297(3):505-515.</p> <p>Bolet, A., S.E. Evans. 2010. A new lizard from the Early Cretaceous of Catalonia (Spain), and the Mesozoic lizards of the Iberian Peninsula. Cretaceous Research 31:447-457.</p> <p>Bolet, A., S.E. Evans. 2012. A tiny lizard (Lepidosauria, Squamata) from the Lower Cretaceous of Spain. Palaeontology 55(3):491-500.</p> <p>Bolet, A., J.D. Daza, M.L. Aug&eacute;, A.M. Bauer. 2015. New genus and species names for the Eocene lizard Cadurcogekko rugosus Aug&eacute;, 2005. Zootaxa 3985(2):265-274.</p> <p>Bolet, A., M. Delfino, J. Fortuny, S. Am&eacute;cija, J.M. Robles, D.M. Alba. 2014. An Amphisbaenian Skull from the European Miocene\r\nand the Evolution of Mediterranean Worm Lizards. PLoS ONE 9(6).</p> <p>Borsuk-Bialynicka, M. 1984. Anguimorphans and related lizards from the Late Cretaceous of the Gobi Desert, Mongolia. Palaeontologia Polonica 46:5-105.</p> <p>Borsuk-Bialynicka, M. 1985. Carolinidae, a new family of xenosaurid-like lizards from the Late Cretaceous of Mongolia. Acta Palaeontologica Polonica 30(3-4):151-176.</p> <p>Borsuk-Bialynicka, M. 1988. Globaura venusta gen. et sp. n. and Eoxanta lacertifrons gen. et sp. n. - non-teiid lacertoids from the Late Cretaceous of Mongolia. Acta Palaeontologica Polonica 33(3):211-248.</p> <p>Borsuk-Bialynicka, M. 1990. Gobekko cretacicus gen. et sp. n., a new gekkonid lizard from the Cretaceous of the Gobi Desert. Acta Palaeontologica Polonica 35(1-2):67-76.</p> <p>Borsuk-Bialynicka, M., S.M. Moody. 1984. Priscagaminae, a new subfamily of the Agamidae (Sauria) from the Late Cretaceous of the Gobi Desert. Acta Palaeontologica Polonica 29:51-81.</p> <p>Borsuk-Bialynicka, M., V. Alifanov. 1991. First Asiatic __iguanid__ lizards in the Late Cretaceous of Mongolia. Acta Palaeontologica Polonica 36(3):325-342.</p> <p>Broschinksi, A., D. Sigogneau-Russell. 1996. Remarkable lizard remains from the Lower Cretaceous of Anoual (Morocco). Annales de Pal&eacute;ontologie (Vert.&ndash;Invert.) 82(3):147-175.</p> <p>Bullard, T.S., M.W. Caldwell. 2010. Redescription and rediagnosis of the tylosaurine mosasaur Hainosaurus pembinensis Nicholls, 1988, as Tylosaurus pembinensis (Nicholls, 1988). Journal of Vertebrate Paleontology 30(2):416-426.</p> <p>Caldwell, M.W. 1999. Description and phylogenetic relationships of a new species of Coniasaurus Owen, 1850 (Squamata). Journal of Vertebrate Paleontology 19(3):438-455.</p> <p>Caldwell, M.W. 2006. A new species of Pontosaurus (Squamata, Pythonomorpha) from the Upper Cretaceous of Lebanon and a phylogenetic analysis of Pythonomorpha. Memorie della Societa Italiana di Scienze Naturali e del Museo Civico di Storia Naturale di Milano 34:1-42.</p> <p>Caldwell, M.W., A. Palci. 2007. 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Journal of Systematic Palaeontology 14(3):219-237.</p> <p>Vianey-Liaud, M., B. Comte, B. Marandat, S. Peign&eacute;, J.-C. Rage, J. Sudre. 2014. A new early late Oligocene (MP 26) continental vertebrate fauna from Saint-Privat-des-Vieux (Al&egrave;s Basin, Gard, Southern France). Geodiversitas 36(4):565-622.</p> <p>Vullo, R., J.-C. Rage. 2018. The first Gondwanan borioteiioid lizard and the mid-Cretaceous dispersal event between North America and Africa. The Science of Nature 105:61:1-8.</p> <p>Wright, K.R. 1989. On the taxonomic status of Moanasaurus mangahouangae Wiffen (Squamata: Mosasauridae). Journal of Paleontology 63(1):126-127.</p> <p>Wright, K.R., S.W. Shannon. 1988. Selmasaurus russelli, a new plioplatecarpine mosasaur (Squamata, Mosasauridae) from Alabama. Journal of Vertebrate Paleontology 8(1):102-107.</p> <p>Wu, X.-C., D.B. Brinkman, A.P. Russell, Z.-M. Dong, P.J. Currie, L.-H. Hou, G.-H. Cul. 1993. Oldest known amphisbaenian from the upper Cretaceous of Chinese Inner Mongolia. Nature 366:57-59.</p> <p>Xu, L., X. Wu, J. Lu, S. Jia, J. Zhang, H. Pu, X. Zhang. 2014. A new lizard (Lepidosauria: Squamata) from the Upper Cretaceous of Henan, China. Acta Geologica Sinica 88:1041-1050</p> <p>Zheng, Y., J.J. Wiens. 2016. Combining phylogenomic and supermatrix approaches, and a time-calibrated phylogeny for squamate reptiles (lizards and snakes) based on 52 genes and 4162 species. Molecular Phylogenetics and Evolution 94:537&ndash;547.&nbsp;<a href="https://doi.org/10.1016/j.ympev.2015.10.009">https://doi.org/10.1016/j.ympev.2015.10.009</a></p>

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EOL Dynamic Hierarchy: Dynamic Hierarchy Version 1.2

Currently active Dynamic Hierarchy and archived versions. For more information, see: <p></p>https://eol.org/docs/eol-dynamic-hierarchy<p></p>Minor update to DH1.1. Fixed amphibian synonyms &amp; placements of some passerine bird families. Added landmark values for families. -- This is not yet harvested. The Encyclopedia of Life (EOL, eol.org) aggregates biodiversity information from more than 400 sources and provides access to the data through taxon pages, visual query and application programming interfaces. Scientific names are essential elements of the data integration infrastructure, but their shortcomings as key identifiers are well documented (Patterson et al., 2016). Complex automated workflows and continuous manual curation are required to address idiosyncrasies of source taxonomies, variation in data quality, and conflicting taxonomic opinions. To achieve a harmonized taxonomic view of EOL content, names from data sources are mapped to a dynamic reference hierarchy ([see current version here](<p></p>https://opendata.eol.org/dataset/tram-807-808-809-810-dh-v1-1/resource/00adb47b-57ed-4f6b-8f66-83bfdb5120e8)) using an algorithm that leverages canonical name strings, hierarchical information (ancestry, descendants), taxonomic ranks, synonym data, and author strings. Names that cannot be associated with a reference taxon are still accessible, but their unmapped status excludes them and any associated content from certain core EOL functions. For more information about the EOL taxonomy, see [EOL Dynamic Hierarchy](<p></p>https://eol.org/docs/eol-dynamic-hierarchy)

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EOL Dynamic Hierarchy: Dynamic Hierarchy Version 0.9

Currently active Dynamic Hierarchy and archived versions. For more information, see: <p></p>https://eol.org/docs/eol-dynamic-hierarchy<p></p>November 2017 The Encyclopedia of Life (EOL, eol.org) aggregates biodiversity information from more than 400 sources and provides access to the data through taxon pages, visual query and application programming interfaces. Scientific names are essential elements of the data integration infrastructure, but their shortcomings as key identifiers are well documented (Patterson et al., 2016). Complex automated workflows and continuous manual curation are required to address idiosyncrasies of source taxonomies, variation in data quality, and conflicting taxonomic opinions. To achieve a harmonized taxonomic view of EOL content, names from data sources are mapped to a dynamic reference hierarchy ([see current version here](<p></p>https://opendata.eol.org/dataset/tram-807-808-809-810-dh-v1-1/resource/00adb47b-57ed-4f6b-8f66-83bfdb5120e8)) using an algorithm that leverages canonical name strings, hierarchical information (ancestry, descendants), taxonomic ranks, synonym data, and author strings. Names that cannot be associated with a reference taxon are still accessible, but their unmapped status excludes them and any associated content from certain core EOL functions. For more information about the EOL taxonomy, see [EOL Dynamic Hierarchy](<p></p>https://eol.org/docs/eol-dynamic-hierarchy)

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EOL Dynamic Hierarchy: Dynamic Hierarchy Version 2.1 with higher classification

Currently active Dynamic Hierarchy and archived versions. For more information, see: <p></p>https://eol.org/docs/eol-dynamic-hierarchy<p></p>The Encyclopedia of Life (EOL, eol.org) aggregates biodiversity information from more than 400 sources and provides access to the data through taxon pages, visual query and application programming interfaces. Scientific names are essential elements of the data integration infrastructure, but their shortcomings as key identifiers are well documented (Patterson et al., 2016). Complex automated workflows and continuous manual curation are required to address idiosyncrasies of source taxonomies, variation in data quality, and conflicting taxonomic opinions. To achieve a harmonized taxonomic view of EOL content, names from data sources are mapped to a dynamic reference hierarchy ([see current version here](<p></p>https://opendata.eol.org/dataset/tram-807-808-809-810-dh-v1-1/resource/00adb47b-57ed-4f6b-8f66-83bfdb5120e8)) using an algorithm that leverages canonical name strings, hierarchical information (ancestry, descendants), taxonomic ranks, synonym data, and author strings. Names that cannot be associated with a reference taxon are still accessible, but their unmapped status excludes them and any associated content from certain core EOL functions. For more information about the EOL taxonomy, see [EOL Dynamic Hierarchy](<p></p>https://eol.org/docs/eol-dynamic-hierarchy)

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EOL Dynamic Hierarchy Vespoidea Patch (VSP)

<p>Taxonomic hierarchies &amp; species lists for Armaniidae, Bradynobaenidae, Chyphotidae, Mutillidae, Sapygidae, Scoliidae, Sierolomorphidae, Thynnidae, and Tiphiidae to complement Catalogue of Life coverage. Compiled from multiple sources:</p> <p>Baptiste, L. A., &amp; Kimsey, L. S. (2000). New Caledonian Tiphiidae: revision of the genus Eirone (Hymenoptera: Thynninae). Journal of Hymenoptera Research 9(2):395-415.</p> <p>Bartholomay PR, Williams KA, Luz DR, Morato EF. 2015. Frigitilla gen. nov., a new genus of Amazonian Mutillidae (Hymenoptera). Zootaxa 3957(1):49-58. doi: 10.11646/zootaxa.3957.1.3. PMID: 26249052.</p> <p>Boni Bartalucci, M.B. 1997. Contribution to the knowledge of the Myzininae (Hymenoptera: Tiphiidae). Annali del Museo Civico di Storia Naturale "Giacomo Doria" 91:615&ndash;639.</p> <p>Boni Bartalucci, M.B. 2004. Tribe-groups of the Myzininae with special regard to the palaearctic taxa of the tribe Meriini (Hymenoptera, Tiphiidae). Linzer Biologische Beitr&auml;ge 36:1205&ndash;1308.</p> <p>Boni Bartalucci, M.B. 2005. Anthoboscinae and Myzininae (Hymenoptera, Tiphiidae) from Madagascar. Linzer Biologische Beitr&auml;ge 37:1077&ndash;1097.</p> <p>Boni Bartalucci, M.B. 2005. Third contribution to the knowledge of the Old World Myzininae (Hymenoptera, Tiphiidae). Annali del Museo Civico di Storia Naturale "Giacomo Doria" [2004-2005] 96:363-428.</p> <p>Boni Bartalucci, M.B. 2007. The Afrotropical genera of the subtribe Meriina (Hymenoptera, Tiphiidae, Myzininae). Linzer Biologische Beitr&auml;ge 39:1257- 1305.</p> <p>Boni Bartalucci, M.B. 2011. Myzininae of the Old World. The subtribe Braunsomeriina (Hymenoptera: Tiphiidae). Linzer Biologische Beitr&auml;ge 43:363-380.</p> <p>Boni Bartalucci, M.B. 2013. Afrotropical taxa of the genus Mesa Saussure 1892 (Hymenoptera, Tiphiidae, Myzininae). Linzer Biologische Beitr&auml;ge 45:1657-1744.</p> <p>Boni Bartalucci, M.B. 2016. Meriini from Western Palaearctic and northern Afrotropical Regions (Hymenoptera: Tiphiidae: Myzininae): new taxa and records. Onychium 12:47-81.</p> <p>Brothers, D.J. 1971. The genera of Mutillidae (Hymenoptera) parasitic on tsetse flies (Glossina, Diptera). Journal of the Entomological Society of South Africa 34:101-102.</p> <p>Brothers, D.J. 1974. The first recent species of Protomutilla (Hymenoptera, Mutillidae: Myrmosinae). Psyche 81:268-271.</p> <p>Brothers, D.J. 1975. Phylogeny and classification of the aculeate Hymenoptera, with special reference to Mutillidae. The University of Kansas Science Bulletin 50: 483-648.</p> <p>Brothers, D.J. 1983. Identity and classification of Physetopoda, Chaetotilla and Paramyrme. Journal of the Kansas Entomological Society 563:441&ndash;445.</p> <p>Brothers, D.J. 1983. Identity of four species of Mutillidae described mistakenly as from Australia. Journal of the Entomological Society of South Africa 46:325-330.</p> <p>Brothers, D.J. 1999. Phylogeny and evolution of wasps, ants and bees (Hymenoptera, Chrysidoidea, Vespoidea and Apoidea). Zoologica Scripta 28:233-249.</p> <p>Brothers, D.J. 2018. Aglaotilla, a new genus of Australian Mutillidae (Hymenoptera) with metallic coloration. Zootaxa 4415(2):357-368. doi: 10.11646/zootaxa.4415.2.6.</p> <p>Brothers, D.J., Carpenter, J.M. 1993. Phylogeny of Aculeata: Chrysidoidea and Vespoidea. Journal of Hymenoptera Research 2:227-304.</p> <p>Brothers, D.J. &amp; Finnamore A.T. 1993. Superfamily Vespoidea pp. 161-278.. In GOULET, H. &amp; HUBER, J. eds.. Hymenoptera of the World: an identification guide to families. Research Branch, Agriculture Canada, Ottawa, Canada, 668 pp.</p> <p>Brothers DJ, Lelej AS 2017. Phylogeny and higher classification of Mutillidae (Hymenoptera) based on morphological reanalyses. Journal of Hymenoptera Research 60:1-97. DOI:10.3897/jhr.60.20091</p> <p>Brown, G.R. 1983. Pentazeleboria. A New Genus of Australian Thynnini (Hymenoptera: Tiphiidae). Australian Journal of Entomology 22:61&ndash;64.</p> <p>Brown, G.R. 1987. Revision of the Australian Genus Acanthothynnus Turner (Hymenoptera: Tiphiidae). Australian Journal of Entomology 26:181&ndash;188.</p> <p>Brown, G.R. 1989. Revision of the Australian Genus Doratithynnus Tuner (Hymenoptera: Tiphiidae). Australian Journal of Entomology 28:1&ndash;17.</p> <p>Brown, G.R. 1992. Bifidothynnus wubiniensis, a New Genus and Species of Australian Thynnini (Hymenoptera: Tiphiidae: Thynninae). Australian Journal of Entomology 31:215&ndash;217.</p> <p>Brown, G.R. 1995. New synonyms and combinations in the genus &lsquo;Zeleboria&rsquo; Saussure (Hymenoptera: Tiphiidae). General and Applied Entomology: The Journal of the Entomological Society of New South Wales 26:9.</p> <p>Brown, G.R. 1995. Revision of the Australian wasp genus Macrothynnus Turner (Hymenoptera: Tiphiidae: Thynninae). Records of the Western Australian Museum 17:267&ndash;275.</p> <p>Brown, G.R. 1995. Tachyphron, a New Genus of Australian Thynninae (Hymenoptera: Tiphiidae). Australian Journal of Entomology 34:241&ndash;246.</p> <p>Brown, G.R. 1996. Arthrothynnus, a New Genus of Orchid-pollinating Thynninae (Hymenoptera: Tiphiidae). The Beagle: Records of the Museums and Art Galleries of the Northern Territory 13:73.</p> <p>Brown, G.R. 1996. Chilothynnus, a New Genus of Australian Thynninae (Hymenoptera: Tiphiidae) Associated with Orchids. The Beagle: Records of the Museums and Art Galleries of the Northern Territory 13:61.</p> <p>Brown, G.R. 1998. Revision of the Neozeleboria cryptoides species group of thynnine wasps (Hymenoptera: Tiphiidae): Pollinators of native orchids. Australian Journal of Entomology 37:193&ndash;205.</p> <p>Brown, G.R. 2000. Caetrathynnus, Nitidothynnus and Procerothynnus, New Genera of Thynninae (Hymenoptera: Tiphiidae) from Northern Australia. The Beagle: Records of the Museums and Art Galleries of the Northern Territory 16:107.</p> <p>Brown, G.R. 2001. Status of the Ariphron generic group (Hymenoptera: Tiphiidae): A critical review. Australian Journal of Entomology 40(1):23-40.</p> <p>Brown, G.R. 2005. A revision of Tachyphron Brown and description of two new genera within the Ariphron group (Hymenoptera: Tiphiidae). Journal of Natural History 39: 197&ndash;239.</p> <p>Brown, G.R. 2008. Umbothynnus, a newly recognised genus for the Rhagigaster alexius Gu&eacute;rin group of species (Hymenoptera: Tiphiidae: Thynninae: Rhagigasterini) from northern Australia. Zootaxa 1933:43&ndash;58.</p> <p>Brown, G.R. 2009. Description of Two New Pseudaposematic Species with a Review of Defensive Adaptations in the Subfamily Thynninae (Hymenoptera: Thynnidae). The Beagle: Records of the Museums and Art Galleries of the Northern Territory 25:69.</p> <p>Brown, G.R. 2010. &lsquo;Curvothynnus&rsquo; gen. nov. erected for two unusual species of thynnine wasps (Hymenoptera: Thynnidae: Thynninae: Rhagigasterini). The Beagle: Records of the Museums and Art Galleries of the Northern Territory 26:89.</p> <p>Brown, G.R. 2011. &lsquo;Dimorphothynnus&rsquo; (Hymenoptera: Thynnidae: Rhagigasterini) newly recorded from the Northern Territory, Australia. The Beagle: Records of the Museums and Art Galleries of the Northern Territory 27:107.</p> <p>Brown, G.R. 2015. Rugosothynnus gen. nov. (Hymenoptera: Tiphiidae: Thynninae: Rhagigasterini), a newly recognised Australian genus. Zootaxa 3925:361&ndash;386.</p> <p>Carnimeo, Fernando Henrique, Noll, Fernando Barbosa 2018. On the dumping ground genus Scotaena Klug, 1810 (Hymenoptera: Tiphiidae: Thynninae): Phylogeny, taxonomy and geographic distribution. Zootaxa 4399(4): 451-490, DOI:10.11646/zootaxa.4399.4.1</p> <p>Dur&aacute;n-Moya, L. 1941. Die Thynniden von Chile. Archiv fur Naturgeschichte 1941:71&ndash;176.</p> <p>El&ccedil;in, G., Baria&ccedil;ik, N. and M. Boni Bartalucci. 2013. New Myzinin wasps from Turkey (Hymenoptera Tiphiidae). Linzer biologische Beitr&auml;ge 45(2):2155-2163.</p> <p>Genise, J. &amp; Kimsey, L.S. 1991. New genera of South American Thynninae (Tiphiidae, Hymenoptera). Psyche: A Journal of Entomology 98:57&ndash;69. DOI:10.1155/1991/37156</p> <p>Genise, J. &amp; Kimsey, L.S. 1993. Revision of the South American Thynninae genus Elaphroptera Gu&eacute;rin-M&eacute;neville (Hymenoptera, Tiphiidae). Journal of Hymenoptera Research 2:195&ndash;220.</p> <p>Gess, S.K. &amp; Gess, F.W. 2014. Wasps and bees in southern Africa. SANBI Biodiversity Series 24. South African National Biodiversity Institute, Pretoria. 320 pp.</p> <p>Given, B.B. 1953. Evolutionary Trends in the Thynninae (Hymenoptera: Tiphiidae) With Special Reference To Feeding Habits Of Australian Species. Transactions of the Royal Entomological Society of London 105:1&ndash;10.</p> <p>Justino, C.E.L. 2013. An&aacute;lise Filogen&eacute;tica de Scotaenini (Hymenoptera, Vespoidea, Tiphiidae, Thynninae). Masters Dissertation, UNESP, S&atilde;o Jos&eacute; do Rio Preto, S&atilde;o Paulo, 55 pp.</p> <p>Justino, C.E.L., dos Santos, E.F. &amp; Noll, F.B. 2013. Geographic note on species of the genus Upa Kimsey, 1991 (Hymenoptera, Tiphiidae, Thynninae) in the Atlantic Forest, Brazil. Check List 9(5):1057&ndash;1061. DOI:10.15560/9.5.1057</p> <p>Justino, C.E.L, dos Santos, E.F. &amp; Noll, F.B. 2016. Diversity of Tiphiidae (Insecta, Hymenoptera) in the fragmented Brazilian semi-deciduous Atlantic Forest. Journal of Insect Conservation, 20(3):417&ndash;431. DOI:10.1007/s10841-016-9875-9</p> <p>Kimsey, L.S. 1991. Additional new genera and species of south american thynnine wasps (Hymenoptera, Tiphiidae). Psyche: A Journal of Entomology 98:71&ndash;80. DOI:10.1155/1991/83532</p> <p>Kimsey, L.S. 1991. Relationships among the tiphiid wasp subfamilies (Hymenoptera). Systematic Entomology 16: 427-438.</p> <p>Kimsey, L.S. 1991. Revision of the South American wasp genus Aelurus (Hymenoptera, Tiphiidae, Thynninae). Systematic Entomology 16:223&ndash;237. DOI:10.1111/j.1365-3113.1991.tb00685.x</p> <p>Kimsey, L.S. 1992. Phylogenetic relations among the South American Thynninae Tiphiidae wasps. Systematic Entomology 17:133&ndash;144. DOI:10.1111/j.1365-3113.1992.tb00326.x</p> <p>Kimsey, L.S. 1996. Phylogenetic relationships of the thynnine wasp tribe Rhagigasterini (Hymenoptera: Tiphiidae). Journal of Hymenoptera Research 5:80&ndash;99.</p> <p>Kimsey, L.S. 1996. Revision of the South American thynnine genus Upa (Hymenoptera, Tiphiidae). Proceedings of the Entomological Society of Washington 98:55&ndash;63.</p> <p>Kimsey, L.S. 2000. Revision of the Australian Tiphiid Genus Leiothynnus (Hymenoptera: Tiphiidae: Thynninae). Journal of Hymenoptera Research 9:18&ndash;28.</p> <p>Kimsey, L.S. 2001. The New Western Australian Tiphiid Genus Dythynnus Kimsey (Hymenoptera: Tiphiidae: Thynninae). Journal of Hymenoptera Research 10:76&ndash;80.</p> <p>Kimsey, L.S. 2002. New genus and five new species of heat-tolerant tiphiid wasps from Western Australia (Hymenoptera: Tiphiidae: Thynninae). Australian Journal of Entomology 41:345&ndash;353.</p> <p>Kimsey, L.S. 2003. A Peculiar New Genus of Locally Abundant Australian Thynninae (Hymenoptera: Tiphiidae). Journal of Hymenoptera Research 12:102&ndash;124.</p> <p>Kimsey, L.S. 2004. Taxonomic changes and new generic synonymies in the tiphiid wasp subfamily Thynninae (Hymenoptera, Tiphiidae). Proceedings of the Entomological Society of Washington 106:508&ndash;512.</p> <p>Kimsey, L.S. 2004. Illustrated keys to the genera of the male wasps in the subfamily Thynninae (Hymenoptera, Tiphiidae). Proceedings of the Entomological Society of Washington 106:571&ndash;585.</p> <p>Kimsey, L.S. 2005. Revision of the Northern South American tiphiid genus Merithynnus Kimsey, 1991 (Hymenoptera, Tiphiidae, Thynninae). Proceedings of the Entomological Society of Washington 107:576&ndash;595.</p> <p>Kimsey, L.S. 2006. 14.2: Familia Tiphiidae. In: Hanson, P.Y. &amp; Gauld, I.D. (Eds.), Hymenoptera de la Regi&oacute;n Neotropical. Memoirs of the American Entomological Institute, Gainesville, pp. 575&ndash;583.</p> <p>Kimsey, L.S. 2011. Tiphiidae wasps of Madagascar (Hymenoptera, Tiphiidae). Journal of Hymenoptera Research 22:45&ndash;68. DOI:10.3897/JHR.22.1142</p> <p>Kimsey, L.S. &amp; Brothers, D.J. 2006. Cap&iacute;tulo 56: Familia Tiphiidae. In: Fern&aacute;ndez, F.C. &amp; Sharkey, M.J. (Eds.), Introducci&oacute;n a los Hymenoptera de La Regi&oacute;n Neotropical. Sociedad Colombiana de Entomolog&iacute;a, Col&ocirc;miba, pp. 583&ndash;594.</p> <p>Kimsey, L.S. &amp; Brown, G.R. 1993. Lectotype designations within the subfamily Thynninae (Hymenoptera, Tiphiidae). Journal of the Australian Entomological Society 32:317&ndash;326. DOI:10.1111/j.1440-6055.1993.tb00594.x</p> <p>Krombein, K.V. 1937. Studies in the Tiphiidae, I: a review of the genera of Myzininae. Annals of the Entomological Society of America 30:27&ndash;30.</p> <p>Krombein K.V. 1938. Studies in the Tiphiidae II. A revision of the Nearctic Myzininae. Transactions of the American Entomological Society 64:227-292.</p> <p>Krombein, K.V. 1949. Studies in the Tiphiidae. VII. The Madagascan species. Proceedings of the Entomological Society of Washington 51:45&ndash;73.</p> <p>Krombein K.V. 1968. Studies in the Tiphiidae. X. Hylomesa, a new genus of Myzininae wasp parasitic on larvae of longicorn beetles (Hymenoptera). Proceedings of the United States National Museum 124:1-22.</p> <p>Lelej, A.S. 2002. Catalogue of the Mutillidae Hymenoptera. of the Palaearctic Region. Vladivostok: Dalnauka, 172 p.</p> <p>Lelej, A.S. 2005. Catalogue of the Mutillidae (Hymenoptera) of the Oriental Region. Dalnauka, Vladivostok, 1&ndash;252.</p> <p>Lelej, A.S. &amp; Brothers, D.J. 2008. The genus-group names of Mutillidae Hymenoptera. and their type species, with a new genus, new name, new synonymies, new combinations and lectotypifications. Zootaxa 1889:1&ndash;79.</p> <p>Lelej, A.S., T. Osten, 2004. To the knowledge of the mutillid and bradynobaenid wasps of Iran (Hymenoptera: Mutililidae, Bradynobaenidae). Proceeding of the Russian Entomological Society, St. Petersburg 75(1):253&ndash;262.</p> <p>Lelej, A.S. &amp; van Harten, A. 2006. A review of the Mutillidae (Hymenoptera) of Yemen. Zootaxa 1226:1-50.</p> <p>Pagliano, G., Romano, M., World list of all known species of Bradynobaenidae (Hymenoptera) [WWW Document]. ResearchGate. URL&nbsp;<a href="https://www.researchgate.net/publication/329782449_World_list_of_all_known_species_of_Bradynobaenidae_Hymenoptera" target="_blank" rel="nofollow noopener">https://www.researchgate.net/publication/329782449_World_list_of_all_known_species_of_Bradynobaenidae_Hymenoptera</a>&nbsp;(accessed 1.20.19).</p> <p>Pate, V.S.L. 1947. A Conspectus of the Tiphiid&aelig;, with Particular Reference to the Nearctic Forms (Hymenoptera, Aculeata). Journal of the New York Entomological Society 55:115&ndash;145.</p> <p>Torr&eacute;ns, J., Fidalgo, P., Roig-Alsina, A., Brothers, D.J., 2014. Review of the genus Eotilla Schuster, 1949 (Hymenoptera: Bradynobaenidae: Typhoctinae: Eotillini) and description of new species from Argentina. Zootaxa 3878, 1. DOI:10.11646/zootaxa.3878.1.1</p> <p>Torrens, J. and Roig-Alsina, A., 2009. Description of a new species of Bradynobaenus (Hymenoptera: Bradynobaenidae) from Argentina, with a key to the females of the genus. Zootaxa 2047:63-68.</p> <p>Turrisi, G.F., M. Matteini Palmerini, and D.J. Brothers. 2015. Systematic Revision and Phylogeny of the Genera Blakeius Ashmead, 1903 and Liomutilla Andr&eacute;, 1907, with Description of Two New Genera (Hymenoptera: Mutillidae, Myrmillinae). Zootaxa 4010(1):1&ndash;78.&nbsp;<a href="https://doi.org/10.11646/zootaxa.4010.1.1" target="_blank" rel="nofollow noopener">https://doi.org/10.11646/zootaxa.4010.1.1</a>.</p> <p>van Noort, S. 2020. WaspWeb: Hymenoptera of the Afrotropical region. URL: <a href="https://www.waspweb.org">www.waspweb.org</a></p>

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zenodo36/100

EOL Dynamic Hierarchy Coccinelloidea Patch (COC): EOL Coccinelloidea Patch

<p>Taxonomic hierarchies &amp; species lists for Akalyptoischiidae, Alexiidae, Anamorphidae, Bothrideridae, Cerylonidae, and Endomychidae to complement Catalogue of Life coverage.</p> <p>Compiled from multiple sources:</p> <p>Andrews, F.G. 1976: Akalyptoischion, a new genus of Lathridiidae from western North America (Coleoptera). Occasional papers in entomology, California Department of Agriculture (22)</p> <p>Hartley, C.S.; Andrews, F.G.; McHugh, J.V. 2008: A taxonomic revision of the genus Akalyptoischion Andrews (Coleoptera: Latridiidae). Coleopterists Society monograph, (6) doi: <a href="https://doi.org/10.1649/0010-065X(2008)61[1:ATROTG]2.0.CO;2">10.1649/0010-065X(2008)61[1:ATROTG]2.0.CO;2 </a></p> <p>Robertson, J.A., Slipinski, A., Moulton, M., Shockley, F.W., Giorgi, A., Lord, N.P., Mckenna, D.D., Tomaszewska, W., Forrester, J., Miller, K.B. and Whiting, M.F., 2015. Phylogeny and classification of Cucujoidea and the recognition of a new superfamily Coccinelloidea (Coleoptera: Cucujiformia). Systematic Entomology, 40(4), pp.745-778.</p> <p>Shockley F., Tomaszewska, K. and McHugh, J., 1999. An annotated checklist of the handsome fungus beetles of the world (Coleoptera: Cucujoidea: Endomychidae). Zootaxa, 113, p.30. Tomaszewska, W. (2011) On African Eupsilobiinae (Coleoptera: Endomychidae) with descriptions of new genus and species. Journal of Insect Science, 11, 1&ndash;14.</p> <p>&nbsp;</p>

openother-pdAug 2024View details →
zenodo36/100

User Generated Content (EOL v2): User Added Text, curated

For questions or use cases calling for large, multi-use aggregate data files, please visit the EOL Services forum at <p></p>http://discuss.eol.org/c/eol-services

opennotspecifiedAug 2024View details →

ScienceDex guides

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Allen Brain Atlas

Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.

allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

Annotated Behaviour and Observability Dataset (ABODe)

ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.

abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

DANDI Archive for NWB datasets

DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

International Brain Laboratory public data

The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

OpenNeuro

OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record