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Fig 3 in Publishing trends and productivity in insect taxonomy from 1946 through 2012 based on an analysis of the Zoological Record for four species-rich families
Fig 3. Average page length of new species descriptions (Cicadellidae, Miridae, Pyralidae and Staphylinidae combined) between 1946 and 2012.
Fig 5 in Publishing trends and productivity in insect taxonomy from 1946 through 2012 based on an analysis of the Zoological Record for four species-rich families
Fig 5 (continued from previous page). Number of articles published by continent (Europe, North America, South America, Africa, Asia and Australia) between 1946 and 2012. A. Cicadellidae. B. Miridae. C. Pyralidae. D. Staphylinidae.
FOSTER Plus Taxonomies
<p>Taxonomies used in FOSTER Plus project regarding Open Science, Research Data Management, RRI, Text and Data Mining Methods, Text and Data Mining, Research workflows and legal issues.</p> <p>The files are available in XML format for reuse. </p> <p>More information at: <a href="https://www.fosteropenscience.eu/about#download">https://www.fosteropenscience.eu/about#download</a></p>
Wind energy taxonomies and restricted vocabularies
<p>This is the update version of the wind energy taxonomies and restricted vocabularies which has been implemented in DTU Data (https://data.dtu.dk/DTU_Wind_Energy) with the purpose of accurately describing published data sets and data collections. The work on updating and implementing the wind energy taxonomies and restricted vocabularies has been done as a part of an internally funded 'FAIR digitalization' project of DTU Wind Energy(see 10.5281/zenodo.1493874). The work on updating the taxonomies and restricted vocabularies is a continuation of the work previously done under the IRPWind Open Data initiative (see 10.5281/zenodo.1199489). </p>
COG_Functional_Category_Abundances_and_GTDB_Taxonomy
<p><strong>Dataset S1:</strong></p> <p><strong>Individual rows correspond to individual genomes (excluding the top row which are column headers). Columns 1 through 25 correspond to raw abundances for each COG functional category. Column 26 corresponds to the total number of COGs in a genome. Columns 27, 28, 29, 30, 31, 32, and 33, correspond to the GTDB domain, phylum, class, order, family, genus, and species classification, respectively. Column 34 corresponds to the culture-status. Column 35 is the genomes size in base pairs. Column 36 corresponds to the accession number for each genome. Accessions starting with GCF and GCA are from Refseq and Genbank, respectively. Accessions that are numbers only correspond to IMG/G. Column 37 corresponds to the total number of open reading frames in the genome.</strong></p>
Fig. 19 in Integrative taxonomy resuscitates two species in the Lasioglossum villosulum complex (Kirby, 1802) (Hymenoptera: Apoidea: Halictidae)
Fig. 19. Punctation in front of the medial ocellus of females. A. Lasioglossum medinai (Vachal, 1895) (France: Uchaux). B. L. villosulum (Kirby, 1802) (Luxembourg: Stadtbredimus).
Fig. 22 in Integrative taxonomy resuscitates two species in the Lasioglossum villosulum complex (Kirby, 1802) (Hymenoptera: Apoidea: Halictidae)
Fig. 22. Geographical distribution of the two pseudocryptic species in the Western Palaearctic. A. Lasioglossum villosulum (Kirby, 1802). B. L. medinai (Vachal, 1895).
Fig. 6. Melitta villosula Kirby, 1802 in Integrative taxonomy resuscitates two species in the Lasioglossum villosulum complex (Kirby, 1802) (Hymenoptera: Apoidea: Halictidae)
Fig. 6. Melitta villosula Kirby, 1802, lectotype, ♂ (= Lasioglossum villosulum). A. Habitus. B. Head. C. Scutum. D. Propodeum. E. First tergum. F. Sterna.
Fig. 8. Halictus pauperatulellus Strand, 1909 in Integrative taxonomy resuscitates two species in the Lasioglossum villosulum complex (Kirby, 1802) (Hymenoptera: Apoidea: Halictidae)
Fig. 8. Halictus pauperatulellus Strand, 1909, holotype, ♂. A. Head. B. Scutum. C. Propodeum. D. First tergum. E. Metasoma, dorsal view. F Metasoma, ventral view.
Fig. 21 in Integrative taxonomy resuscitates two species in the Lasioglossum villosulum complex (Kirby, 1802) (Hymenoptera: Apoidea: Halictidae)
Fig. 21. Fringe on sternum 5 of males (arrow showing the fringe). A. Lasioglossum villosulum (Kirby, 1802). B. L. medinai (Vachal, 1895).
Fig. 2 in Integrative taxonomy resuscitates two species in the Lasioglossum villosulum complex (Kirby, 1802) (Hymenoptera: Apoidea: Halictidae)
Fig. 2. Colouration and relative size of the species and subspecies. A–B. Lasioglossum villosulum (Kirby, 1802), ♀ and ♂. C–D. L. medinai (Vachal, 1895), ♀ and ♂ (holotype). E–F. L. villosulum arabicum Ebmer, 2008, ♀ and ♂.
Fig. 6. Neopanorpa lungtaushana Cheng, 1957. A, C–I. Male. A. Habitus, dorsal view. C. Head, frontal view. D. T3 and T4 in Taxonomy of the genus Neopanorpa van der Weele, 1909 (Mecoptera, Panorpidae) from the Oriental Region, with the description of two new species
Fig. 6. Neopanorpa lungtaushana Cheng, 1957. A, C–I. Male. A. Habitus, dorsal view. C. Head, frontal view. D. T3 and T4, left-lateral view. E. Epandrium and hypandrium, right-lateral view. F–G. Genital bulb, ventral and dorsal views, respectively. H–I. Aedeagal complex, ventral and rightlateral views, respectively. – B, J–L. Female. B. Habitus, dorsal view. J. Subgenital plate, ventral view. K–L. Medigynium, right-lateral and ventral views, respectively.
Fig. 4 in Integrative taxonomy resuscitates two species in the Lasioglossum villosulum complex (Kirby, 1802) (Hymenoptera: Apoidea: Halictidae)
Fig. 4. Ultrametric tree constructed using Bayesian inference and based on 29 haplotype sequences (658bp) of the cytochrome oxidase c subunit I gene of specimens currently identified as Lasioglossum villosulum (Kirby, 1802), Lasioglossum medinai (Vachal, 1895) and one as Lasioglossum berberum (Benoist, 1941). Each label corresponds to one roman letter which encompasses all sequence from a haplotype (for more details see Table 3). A. Lasioglossum medinai; B–D: three supported clusters (a fourth cluster could be defined in C) within Lasioglossum villosulum. This phylogenetic tree is rooted using Lasioglossum bluethgeni Ebmer, 1971 as outgroup (label III, voucher AP222). Posterior probabilities are given at nodes. The three colour gradients on the tree correspond to morphological delineation. Results of the species delimitations analyses are represented on the right side of the figure: the Bayesian Poisson Tree Process (bPTP) analyses based on the trees obtained using Bayesian inference (BI) or maximum likelihood (ML); The Generalized Mixed Yule Coalescent (GMYC) analysis resulting in seven candidate species (using the single threshold represented as a red line on the tree) and five alternative scenarios. Numbers at the top of the columns corresponds to the number of candidate species in the GMYC analysis.
Fig. 1 in Integrative taxonomy resuscitates two species in the Lasioglossum villosulum complex (Kirby, 1802) (Hymenoptera: Apoidea: Halictidae)
Fig. 1. Distribution of Lasioglossum villosulum (Kirby, 1802) throughout the Palaearctic and Oriental Regions.
Fig. 4 in Taxonomy of the genus Neopanorpa van der Weele, 1909 (Mecoptera, Panorpidae) from the Oriental Region, with the description of two new species
Fig. 4. Neopanorpa ocellaris (Navás, 1908), living female. The female is feeding on a dead crane fly. Photo by Wei-Liang Xie from Huanjiang County, Guangxi Province, China.
Fig. 15 in Integrative taxonomy resuscitates two species in the Lasioglossum villosulum complex (Kirby, 1802) (Hymenoptera: Apoidea: Halictidae)
Fig. 15. Lasioglossum medinai (Vachal, 1895), holotype, ♂. A. Head. B. Scutum. C. Propodeum. D. Metasoma.
Fig. 23 in Integrative taxonomy resuscitates two species in the Lasioglossum villosulum complex (Kirby, 1802) (Hymenoptera: Apoidea: Halictidae)
Fig. 23. Lasioglossum berberum (Benoist, 1941), holotype, ♂. A. Head. B. Scutum. C. Propodeum. D. First tergum. E. Metasoma.
Fig. 2 in Taxonomy of the genus Neopanorpa van der Weele, 1909 (Mecoptera, Panorpidae) from the Oriental Region, with the description of two new species
Fig. 2. Neopanorpa luojishana Wang & Hua sp. nov., paratypes (NWAU). A, C–J. Male. A. Habitus, dorsal view. C. Head, frontal view. D. Abdomen, left-lateral view. E–F. Genital bulb, dorsal and ventral views, respectively. G. Right gonostylus, left-lateral view. H. Epandrium and hypandrium, rightlateral view. I–J. Aedeagal complex, ventral and right-lateral views, respectively. – B, K–L. Female. B. Habitus, dorsal view. K. Subgenital plate, ventral view. L. Medigynium, ventral view.
Fig. 5 in Taxonomy of the genus Neopanorpa van der Weele, 1909 (Mecoptera, Panorpidae) from the Oriental Region, with the description of two new species
Fig. 5. Neopanorpa ocellaris (Navás, 1908). A, C–K. Male. A. Habitus, dorsal view. C. Epandrium, dorsal view. D. Head, frontal view. E. T3 and T4, left-lateral view. F. Genital bulb, ventral view. G. Habitus, left-lateral view. H. Left gonostylus, ventral view. I. Epandrium and hypandrium, leftlateral view. J–K. Aedeagal complex, ventral and right-lateral views, respectively. – B, L–N. Female. B. Habitus, dorsal view. L. Subgenital plate, ventral view. M–N. Medigynium, ventral and right-lateral views, respectively.
Fig. 1 in Taxonomy of the genus Neopanorpa van der Weele, 1909 (Mecoptera, Panorpidae) from the Oriental Region, with the description of two new species
Fig. 1. Neopanorpa luojishana Wang & Hua sp. nov., living male. Photo by Ji-Shen Wang from Mt. Luoji, Sichuan, China.
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.
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.
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.
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.
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.