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Figure 1 in Biodiversity of the scentless plant bugs (Hemiptera: Rhopalidae) in southern South America
Figure 1. Distribution of Liorhyssus Stål species in Argentina. Pale colour: known distributions; dark colour: new distributions. The number of known species for each province is provided, with an asterisk indicating the number of newly recorded species.
Figure 7 in Biodiversity of the scentless plant bugs (Hemiptera: Rhopalidae) in southern South America
Figure 7. Known records for the species of Rhopalidae from Argentina over the years (cumulative relative frequencies 0–100%).
Fig. 5 in First insights into past biodiversity of giraffes based on mitochondrial sequences from museum specimens
Fig. 5. Giraffe subspecies of the Nile region. The map (extracted from Google Earth; https://www.google.com/intl/de/earth/) shows the geographical barriers (rivers and mountains) that may have isolated (at least temporarily) the subspecies Giraffa camelopardalis camelopardalis (Linnaeus, 1758) (red), G. c. antiquorum (Jardine, 1835) (yellow), G. c. rothschildi Lydekker, 1903 (green) and G. c. reticulata de Winton, 1899 (magenta). The question mark refers to the uncertain geographic origin of Zarafa (left) and the two specimens from Abyssinia (right) (see Discussion for more details).
Fig. 2 in First insights into past biodiversity of giraffes based on mitochondrial sequences from museum specimens
Fig. 2. Illustrations of historical giraffe specimens. A. The ʻGiraffe of Levaillantʼ, anonymous painting made in the late 18th century and early 19th century, exhibited in ʻhôtel de Magnyʼ, Jardin des Plantes in Paris (France). B. The ʻGiraffe from Sennaarʼ, representing a lithography of Zarafa (MNHN-1845-211) and the skull of a giraffe from the Cape region (Geoffroy Saint-Hilaire 1827). C. Drawing of the holotype of Giraffa camelopardalis congoensis Lydekker, 1903 (RMCA-452), housed in the Royal Museum of Central Africa, Tervuren (Belgium) (Lydekker 1904). D. Head drawings of the holotypes of G. c. cottoni Lydekker, 1904 (NHMUK-1904.1.21.1, left) and G. g. wardi Lydekker, 1904 (NHMUK-1903.11.18.1, right) (Lydekker 1914).
Figure 1 in Terrestrial isopods and myriapods in a forested scree slope: subterranean biodiversity, depth gradient and annual dynamics
Figure 1. Distribution of Isopoda, Diplopoda and Chilopoda along the depth gradient of the scree slope expressed as the total number of individuals trapped in two sampling periods (November 2008–November 2009; November 2009–July 2010).
Values and attitudes associated with public support for biodiversity and ecosystem services as goals of ecological restoration
<p>Source data and metadata for "Public support for restoration: Does including ecosystem services as a goal engage a different set of values and attitudes than biodiversity protection alone?", accepted to PLOS One in December 2020. </p>
Combining internal and external motivations in multi-actor governance arrangements for biodiversity and ecosystem services
<p>These files provide the original survey data of the paper on motivations for biodiversity conservation in Europe. This paper analyses the possibility of building a mutually supportive dynamics between internally and<br /> externally motivated behaviour for biodiversity conservation and ecosystem services provision. To this<br /> purpose a face to face survey amongst 169 key actors of 34 highly successful and prominent biodiversity<br /> arrangements in seven EU countries was conducted. The main<br /> finding of the paper is the feasibility of<br /> combining inherently intrinsically motivated behaviours (providing enjoyment, pleasure from<br /> experimentation and learning, aesthetic satisfaction) and internalized extrinsic motivations (related<br /> to the identification with the collective goals of conservation policy) through a common set of governance<br /> features. Successful initiatives that combine internal and external motivations share the following<br /> features: inclusive decision making processes, a broad monitoring by “peers” beyond the core staff of the<br /> initiatives, and a context that is supportive for the building of autonomous actor competences. These<br /> findings are in line with the psycho-sociological theory of motivation, which shows the importance of a<br /> psycho-social context leading to a subjective perception of autonomy and a sense of competence of the<br /> actors.</p>
Supplementary Information S1 - Detailed results of the CAPRI N-LCA and S2 - Quantification of the main N budget flows in the EU25 agriculture sector of Leip, A., Billen, G., Garnier, J., Grizzetti, B., Lassaletta, L., Reis, S., Simpson, D., Sutton, M. a, de Vries, W., Weiss, F., Westhoek, H. (2015). Impacts of European livestock production: nitrogen, sulphur, phosphorus and greenhouse gas emissions, land-use, water eutrophication and biodiversity. Environ. Res. Lett. 10, 115004. doi:10.1088/1748-9326/10/11/115004
<p>Table S1-1 Quantification of GHG and Nr flow intensities [kg CO2eq (kg product)<sup>-1</sup> yr<sup>-1</sup>] or [g N (kg product)<sup>-1</sup> yr<sup>-1</sup>] with the CAPRI N-LCA model for six main livestock products (BEEF: beef, PORK: pork, EGGS: eggs, POUM: poultry meat; DAIR: milk and dairy products, SGMP: meat from sheep and goats) and six main vegetable food groups (POTA: potatoes, SUGB: sugar beet before processing, OILP: oil seeds before processing; CERR: cereals, LEGU: leguminous crops) as well as other crops (OCRP) and aggregated livestock (ANIMP) and vegetable (CROPP) food. </p> <p>Table S2-1 Quantification of the main N budget flows in the EU25 agriculture sector</p>
FIGURE 5 A – L in Scratching the surface? Taxonomic revision of the subgenus Schizoptera (Odontorhagus) reveals vast undocumented biodiversity in the largest litter bug genus Schizoptera Fieber (Hemiptera: Dipsocoromorpha)
FIGURE 5 A – L. Line drawings of dorsal (above) and ventral (below) views of male genitalia, different colors correspond to different structures labeled on S. (Odonotorhagus) acuta, n. sp.
FIGURE 6 M – W in Scratching the surface? Taxonomic revision of the subgenus Schizoptera (Odontorhagus) reveals vast undocumented biodiversity in the largest litter bug genus Schizoptera Fieber (Hemiptera: Dipsocoromorpha)
FIGURE 6 M – W. Line drawings of dorsal (above) and ventral (below) views of male genitalia, different colors correspond to different structures labeled on S. (Odonotorhagus) acuta, n. sp. (Fig. 5 A).
Data: Evolution of anatomical concept usage over time: Mining 200 years of biodiversity literature
<p>This data package contains data and results corresponding to the paper titled "Evolution of anatomical concept usage over time: Mining 200 years of biodiversity literature". </p>
Figure 9b. from: A first integrative study of the identity and origins of the British Dwarf Pill Millipede populations, Trachysphaera cf. lobata (Diplopoda, Glomerida, Glomeridae) - Biodiversity Data Journal 3: e5176 (09 June 2015) https://doi.org/10.3897/BDJ.3.e5176
Figure 9b. - Taxonomically informative character examples. Abbreviations: AS = anal shield; T10 = tergite 10; c8 = male tergite 10, posterior margin, number of rows of large bacilli; c12 = male anal shield, shape. For more information on characters and states see Table 2.Figure 9a.TW30: T.lobata, male, South Wales (MBsID: 852824). Character states: two rows of bacilli on posterior edge of T10 (c8/1) and well-rounded anal shield (c12/0). This set of character states is (in our sample) unique for T.lobata.Figure 9b.GL07: T.cf.rousseti, male, Spain (MBsID: 852825). Character states: one row of bacilli on posterior edge of T10 (c8/0) and anal shield with special protuberance (c12/1). This set of character states is (in our sample) shared by T.pyrenaica, T.cf.rousseti, and T.cf.drescoi. <br>
Figure 9a. from: A first integrative study of the identity and origins of the British Dwarf Pill Millipede populations, Trachysphaera cf. lobata (Diplopoda, Glomerida, Glomeridae) - Biodiversity Data Journal 3: e5176 (09 June 2015) https://doi.org/10.3897/BDJ.3.e5176
Figure 9a. - Taxonomically informative character examples. Abbreviations: AS = anal shield; T10 = tergite 10; c8 = male tergite 10, posterior margin, number of rows of large bacilli; c12 = male anal shield, shape. For more information on characters and states see Table 2.Figure 9a.TW30: T.lobata, male, South Wales (MBsID: 852824). Character states: two rows of bacilli on posterior edge of T10 (c8/1) and well-rounded anal shield (c12/0). This set of character states is (in our sample) unique for T.lobata.Figure 9b.GL07: T.cf.rousseti, male, Spain (MBsID: 852825). Character states: one row of bacilli on posterior edge of T10 (c8/0) and anal shield with special protuberance (c12/1). This set of character states is (in our sample) shared by T.pyrenaica, T.cf.rousseti, and T.cf.drescoi. <br>
Figure 8d. from: A first integrative study of the identity and origins of the British Dwarf Pill Millipede populations, Trachysphaera cf. lobata (Diplopoda, Glomerida, Glomeridae) - Biodiversity Data Journal 3: e5176 (09 June 2015) https://doi.org/10.3897/BDJ.3.e5176
Figure 8d. - Telopods. SEM micrographs of Trachysphaeracf.drescoi and T.pyrenaica males from France. For TW# refer to Checklists. Abbreviations: fem = femur; pre = prefemur; syn = syncoxite; ta = tarsus; ti = tibia; 18 = leg (pair) 18.Figure 8a.T.cf.drescoi, anterior view (MBiID 852849)Figure 8b.T.cf.drescoi, anterior view (MBiID 852848)Figure 8c.T.pyrenaica, anterior view (MBiID 852894)Figure 8d.T.pyrenaica, posterior (anal) view (MBiID 852898) <br> GL07: T.cf.rousseti, male, Spain (MBsID: 852825). Character states: one row of bacilli on posterior edge of T10 (c8/0) and anal shield with special protuberance (c12/1). This set of character states is (in our sample) shared by T.pyrenaica, T.cf.rousseti, and T.cf.drescoi.
Figure 8c. from: A first integrative study of the identity and origins of the British Dwarf Pill Millipede populations, Trachysphaera cf. lobata (Diplopoda, Glomerida, Glomeridae) - Biodiversity Data Journal 3: e5176 (09 June 2015) https://doi.org/10.3897/BDJ.3.e5176
Figure 8c. - Telopods. SEM micrographs of Trachysphaeracf.drescoi and T.pyrenaica males from France. For TW# refer to Checklists. Abbreviations: fem = femur; pre = prefemur; syn = syncoxite; ta = tarsus; ti = tibia; 18 = leg (pair) 18.Figure 8a.T.cf.drescoi, anterior view (MBiID 852849)Figure 8b.T.cf.drescoi, anterior view (MBiID 852848)Figure 8c.T.pyrenaica, anterior view (MBiID 852894)Figure 8d.T.pyrenaica, posterior (anal) view (MBiID 852898) <br> TW30: T.lobata, male, South Wales (MBsID: 852824). Character states: two rows of bacilli on posterior edge of T10 (c8/1) and well-rounded anal shield (c12/0). This set of character states is (in our sample) unique for T.lobata.
Figure 8b. from: A first integrative study of the identity and origins of the British Dwarf Pill Millipede populations, Trachysphaera cf. lobata (Diplopoda, Glomerida, Glomeridae) - Biodiversity Data Journal 3: e5176 (09 June 2015) https://doi.org/10.3897/BDJ.3.e5176
Figure 8b. - Telopods. SEM micrographs of Trachysphaeracf.drescoi and T.pyrenaica males from France. For TW# refer to Checklists. Abbreviations: fem = femur; pre = prefemur; syn = syncoxite; ta = tarsus; ti = tibia; 18 = leg (pair) 18.Figure 8a.T.cf.drescoi, anterior view (MBiID 852849)Figure 8b.T.cf.drescoi, anterior view (MBiID 852848)Figure 8c.T.pyrenaica, anterior view (MBiID 852894)Figure 8d.T.pyrenaica, posterior (anal) view (MBiID 852898) <br> T.pyrenaica, posterior (anal) view (MBiID 852898)
Figure 8a. from: A first integrative study of the identity and origins of the British Dwarf Pill Millipede populations, Trachysphaera cf. lobata (Diplopoda, Glomerida, Glomeridae) - Biodiversity Data Journal 3: e5176 (09 June 2015) https://doi.org/10.3897/BDJ.3.e5176
Figure 8a. - Telopods. SEM micrographs of Trachysphaeracf.drescoi and T.pyrenaica males from France. For TW# refer to Checklists. Abbreviations: fem = femur; pre = prefemur; syn = syncoxite; ta = tarsus; ti = tibia; 18 = leg (pair) 18.Figure 8a.T.cf.drescoi, anterior view (MBiID 852849)Figure 8b.T.cf.drescoi, anterior view (MBiID 852848)Figure 8c.T.pyrenaica, anterior view (MBiID 852894)Figure 8d.T.pyrenaica, posterior (anal) view (MBiID 852898) <br> T.pyrenaica, anterior view (MBiID 852894)
Figure 5d. from: A first integrative study of the identity and origins of the British Dwarf Pill Millipede populations, Trachysphaera cf. lobata (Diplopoda, Glomerida, Glomeridae) - Biodiversity Data Journal 3: e5176 (09 June 2015) https://doi.org/10.3897/BDJ.3.e5176
Figure 5d. - Trachysphaera SEM characters. A+B: MBsID 852812, C-E: MBsID 852823. Abbreviations: AS = anal shield; Co = collum; Gr = groove, 'Ohrgrube'; h = head; T# = refers to number of tergite; th-sh = thoracic shield; c2 = collum, number of toothed ridges; c3 = thoracic shield anterior margin, number of rows of sclerotized nodules; c4 = thoracic shield, number of rows of large sclerotized protuberances; c5 = endotergum structure; c6 = endotergum, number of rows of setae; c7 = endotergum, number of rows of sclerotized nodules; c9 = female tergite 10, posterior margin, number of rows of large bacilli (with row counts 1, 2); c11 = female anal shield, shape; c13 = female anal shield, setae at posterior margin; c15 = female anal shield, large circular grooves (for more information on characters see Table 2).Figure 5a.TW1: T.lobata, female, Isle of Wight; anterior view; scale bar: 400 µmFigure 5b.TW1: T.lobata, female, Isle of Wight; anterior body part, lateral view; scale bar: 300 µmFigure 5c.TW29: T.lobata, female, South Wales; tergite 10 and anal shield, lateral view; scale bar: 300 µm; c13 points to Fig. 4eFigure 5d.TW29: T.lobata, female, South Wales; endotergum (underside of tergite); scale bar: 20 µmFigure 5e.TW29: T.lobata, female, South Wales; posterior margin of anal shield, detail; scale bar: 50 µm <br> anterior view (MBiID 852943)
Figure 7d. from: A first integrative study of the identity and origins of the British Dwarf Pill Millipede populations, Trachysphaera cf. lobata (Diplopoda, Glomerida, Glomeridae) - Biodiversity Data Journal 3: e5176 (09 June 2015) https://doi.org/10.3897/BDJ.3.e5176
Figure 7d. - Telopods. SEM micrographs of Trachysphaeralobata male from South Wales. For TW# refer to Checklists. Abbreviations: fem = femur; pre = prefemur; syn = syncoxite; ta = tarsus; ti = tibia.Figure 7a.anterior view (MBiID 853010)Figure 7b.anterior view (MBiID 853007)Figure 7c.posterior (anal) view (MBiID 853009)Figure 7d.posterior (anal) view (MBiID 853008) <br> T.cf.drescoi, anterior view (MBiID 852848)
Figure 6d. from: A first integrative study of the identity and origins of the British Dwarf Pill Millipede populations, Trachysphaera cf. lobata (Diplopoda, Glomerida, Glomeridae) - Biodiversity Data Journal 3: e5176 (09 June 2015) https://doi.org/10.3897/BDJ.3.e5176
Figure 6d. - Telopods. SEM micrographs of Trachysphaeralobata males from Isle of Wight. For TW# refer to Checklists. Abbreviations: fem = femur; pre = prefemur; syn = syncoxite; ta = tarsus; ti = tibia.Figure 6a.anterior view (MBiID 852943)Figure 6b.anterior view (MBiID 852942)Figure 6c.posterior (anal) view (MBiID 852974)Figure 6d.anterior view (MBiID 852977) <br> anterior view (MBiID 853007)
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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.