Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
15,702
datasets available to search
ShareScore release 0.7.1
Dataset results
15,702 results for “history”
Fig. 1. Streblopus opatroides van Lansberge, 1874. A‒B. Ordinary specimens, dorsal view. A in Systematics of the enigmatic South American Streblopus Van Lansberge, 1874 dung beetles and their transatlantic origin: a case study on the role of dispersal events in the biogeographical history of the Scarabaeinae (Coleoptera: Scarabaeidae)
Fig. 1. Streblopus opatroides van Lansberge, 1874. A‒B. Ordinary specimens, dorsal view. A. ♂. B. ♀. C‒D. Lectotype, ♂. C. Dorsal view. D. Attached labels.
Fig. 3 in Systematics of the enigmatic South American Streblopus Van Lansberge, 1874 dung beetles and their transatlantic origin: a case study on the role of dispersal events in the biogeographical history of the Scarabaeinae (Coleoptera: Scarabaeidae)
Fig. 3. Streblopus punctatus (Balthasar, 1938). A‒B. Holotype, ♀. A. Dorsal view. B. Attached labels. C‒D. Ordinary specimens, dorsal view. C. ♂. D. ♀.
EU Lighting Efficacy Policy History Tool
<p>As of 2020, the EU has published <a href="https://ec.europa.eu/energy/en/topics/energy-efficiency/energy-efficient-products/list-regulations-product-groups-energy-efficient-products">three regulations on lighting efficiency</a>. This Excel tool can be used to calculate the corresponding luminous efficacy [lm/W] for each regulation.</p> <p>Compiled as part of the research project <a href="https://web.archive.org/web/20220920225758/https://www.ceenrg.landecon.cam.ac.uk/research/climate-change-and-energy-policy/what-factors-drive-innovation-in-energy-technologies-the-role-of-technology-spillovers-and-government-investment">"What factors drive innovation in energy technologies? The role of technology spillovers and government investment"</a>, funded by the Alfred P. Sloan Foundation.</p>
Figures 55–60 in Onciderini Thomson, 1860 (Coleoptera: Cerambycidae: Lamiinae) types of the Museu de Zoologia, Universidade de São Paulo (MZSP), with a brief history of the Coleoptera collection
Figures 55–60. Six species of Onciderini. Fig. 55. Oncideres diringsi Martins and Galileo (a, dorsal habitus; b, labels). Fig. 56. Oncideres errata Martins and Galileo (a, dorsal habitus; b, labels). Fig. 57. Oncideres glebulenta Martins (a, dorsal habitus; b, labels). Fig. 58. Oncideres irrorata Melzer (a, dorsal habitus; b, labels). Fig. 59. Oncideres magnifica Martins (a, dorsal habitus; b, labels). Fig. 60. Oncideres manauara Martins and Galileo (a, dorsal habitus; b, labels).
Figures 43–48 in Onciderini Thomson, 1860 (Coleoptera: Cerambycidae: Lamiinae) types of the Museu de Zoologia, Universidade de São Paulo (MZSP), with a brief history of the Coleoptera collection
Figures 43–48. Six species of Onciderini. Fig. 43. Japi duartei Martins and Galileo (a, dorsal habitus; b, labels). Fig. 44. Lingafelteria pandolfii Nearns and Nascimento (a, dorsal habitus; b, labels). Fig. 45. Neohylus alexandrei Martins and Galileo (a, dorsal habitus; b, labels). Fig. 46. Oncideres albopicta Martins and Galileo (a, dorsal habitus; b, labels). Fig. 47. Oncideres alicei Lane (a, dorsal habitus; b, labels). Fig. 48. Oncideres antonkozlovi Nearns and Nascimento (a, dorsal habitus; b, labels).
Figures 13–18 in Onciderini Thomson, 1860 (Coleoptera: Cerambycidae: Lamiinae) types of the Museu de Zoologia, Universidade de São Paulo (MZSP), with a brief history of the Coleoptera collection
Figures 13–18. Six species of Onciderini. Fig. 13. Charoides pigra Martins and Galileo (a, dorsal habitus; b, labels). Fig. 14. Cnemosioma innominata Martins (a, dorsal habitus; b, labels). Fig. 15. Cylicasta chionea Martins (a, dorsal habitus; b, labels). Fig. 16. Euthima araujoi Martins (a, dorsal habitus; b, labels). Fig. 17. Glypthaga mucorea Martins and Galileo (a, dorsal habitus; b, labels). Fig. 18. Glypthaga unicolor Martins and Galileo (a, dorsal habitus; b, labels).
Figures 7–12 in Onciderini Thomson, 1860 (Coleoptera: Cerambycidae: Lamiinae) types of the Museu de Zoologia, Universidade de São Paulo (MZSP), with a brief history of the Coleoptera collection
Figures 7–12. Six species of Onciderini. Fig. 7. Cacostola gracilis Marinoni and Martins (a, dorsal habitus; b, labels). Fig. 8. Cacostola nordestina Martins and Galileo (a, dorsal habitus; b, labels). Fig. 9. Cacostola parafusca Martins, Galileo, and Limeira-de-Oliveira (a, dorsal habitus; b, labels). Fig. 10. Cacostola sulcipennis Melzer (a, dorsal habitus; b, labels). Fig. 11. Cacostola vanini Martins (a, dorsal habitus; b, labels). Fig. 12. Charoides pepoata Martins and Galileo (a, dorsal habitus; b, labels).
Figures 1–6 in Onciderini Thomson, 1860 (Coleoptera: Cerambycidae: Lamiinae) types of the Museu de Zoologia, Universidade de São Paulo (MZSP), with a brief history of the Coleoptera collection
Figures 1–6. Six species of Onciderini. Fig. 1. Bucoides montana Martins and Galileo (a, dorsal habitus; b, labels). Fig. 2. Cacostola acuticauda Marinoni and Martins (a, dorsal habitus; b, labels). Fig. 3. Cacostola bimaculata Martins, Galileo, and Limeira-de-Oliveira (a, dorsal habitus; b, labels). Fig. 4. Cacostola carinata Martins, Galileo, and Santos-Silva (a, dorsal habitus; b, labels). Fig. 5. Cacostola colombiana Martins and Galileo (a, dorsal habitus; b, labels). Fig. 6. Cacostola exilis Martins, Galileo, and Limeira-de-Oliveira (a, dorsal habitus; b, labels).
Figures 4–8 in Observations on the natural history of Romulus globosus Knull (Coleoptera: Cerambycidae)
Figures 4–8. Habitat of R. globosus with stems containing mature larvae. 4) Typical habitat where mature R. globosus larvae were found. Some stems of Q. geminata were dead. 5) Dead, leafless stem of Q. geminata that contained mature larva of R. globosus in its root. 6) Different stem of Q. geminata pulled from the ground containing a pupa of R. globosus in the root just below the root crown. 7) Zoom-in on the pupa from Fig. 6. 8) Root with an old emergence hole indicated by white arrow. The white dotted lines in Fig. 6 and 8 indicate ground level to show that the pupal cell and the emergence hole were underground.
Figures 1–3 in Observations on the natural history of Romulus globosus Knull (Coleoptera: Cerambycidae)
Figures 1–3. The workings of young R. globosus larvae. 1) Small stem of Q. geminata with dead leaves. The leaves died due to larval activity of R. globosus on its root. 2-3) Two parts of the root that split after pulling on a stem with dead leaves (different stem than in Fig. 1). The larva is visible in Fig. 2, tightly packed galleries in Fig. 3.
Figures 1–5. Chileporter huemeri n. gen. and n in New genus and species of Yponomeutidae (Lepidoptera: Yponomeutoidea) associated with Maytenus boaria Molina (Celastraceae) from Chile, with descriptions of immature stages and natural history observations
Figures 1–5. Chileporter huemeri n. gen. and n. sp., adult. 1) Wings, dorsal view. 2) Head, side view. 3) Wing veins. Scale bar: 1 mm (1, 2, 3). 4). Sternum 2. Scale bar: 0.5 mm. 5). Tergum spiny setae. Scale bar: 0.25 mm.
Figures 12–20. Chileporter huemeri n. gen. and n in New genus and species of Yponomeutidae (Lepidoptera: Yponomeutoidea) associated with Maytenus boaria Molina (Celastraceae) from Chile, with descriptions of immature stages and natural history observations
Figures 12–20. Chileporter huemeri n. gen. and n. sp. 12–15. Adult female. Scale bar: 0.25 mm. 12) Female genitalia. 13) Ductus bursae. 14) Corpus bursae. 15) Signum. 16) Larva, dorsal view. Scale bar: 1.0 mm. 17–20. Larval structures. Scale bar: 0.20 mm. 17) Mandible. 18) Crochets. 19) Microprocesses on integument. 20) Antennae.
Fig. 2 in Growth and reproduction in captivity unveils remarkable life-history plasticity in the smallnose fanskate, Sympterygia bonapartii (Chondrichthyes: Rajiformes)
Fig. 2. Egg cases and neonate of Sympterygia bonapartii born at Temaikèn Aquarium (Argentina). ah, anterior horns; mt, mucous tendrils; ph, posterior horns. Scale bar: 20 mm.
Fig. 2 in Molecular phylogeny and biogeographic history of the Neotropical tribe Glandulocaudini (Characiformes: Characidae: Stevardiinae)
Fig. 2. Calibrated Bayesian tree based on concatenated dataset (16S+COI+RAG2, 1,829 bp) showing the relationships within the Glandulocaudini. Numbers at branches are posterior probabilities and bootstrap values. Species/populations from Brazilian crystalline shield are highlighted in brown (upland areas) and species/populations from Brazilian coastal drainages in green (lowland areas).
Figures 3–4 in Notes on the natural history of Enaphalodes archboldi Lingafelter and Chemsak, 2002 and E. bingkirki Lingafelter and Santos-Silva, 2018 (Coleoptera: Cerambycidae)
Figures 3–4. Signs of the workings of young larvae. 3) Crack in the bark where the larva circled the stem. 4) Subcortical gallery heading down the stem.
Figures 7–8 in Notes on the natural history of Enaphalodes archboldi Lingafelter and Chemsak, 2002 and E. bingkirki Lingafelter and Santos-Silva, 2018 (Coleoptera: Cerambycidae)
Figures 7–8. Expelled frass on the ground. 7) Severed stem next to a pile of frass. The bottom part is not apparent because it is covered by the frass and leaves. 8) Bottom part of the severed stem with regions of tightly packed granular frass. The red arrow points to the upper side of the stem.
FIG. 10 in 1802 - 2018: 220 ans d'histoire des périodiques au Muséum 1802 - 2018: a 220 - year history of the Muséum periodicals
FIG. 10. — Publication sur différentes plateformes d'un article paru récemment dans EJT (Carvalho & Kury 2018) et qui a servi à faire des tests de conversion en XML: A, B, l'article original, paru sur le site d'EJT (A) et sur celui des Publications scientifiques du Muséum (B); C, le même article, sur la plateforme 'Treatment Bank' de Plazi (http://plazi.org); D, E, enfin, l'article est automatiquement soumis aux bases de données du Biodiversity Literature Repositery (D) et du Global Biodiversity Information Facility (GBIF) (E)/Cross-platform publication of an article published recently by EJT (Carvalho & Kury 2018) and used to make conversion tests in XML: A, B, original article, published on the EJT website (A) and that of the Muséum Science Press (B); C, the same article, on the Plazi platform 'Treatment Bank' (http://plazi.org); D, E, appropriate elements of the article are finally fed to the Biodiversity Literature Repository (D) and the Global Biodiversity Information Facility (GBIF) (E).
Natural history specimens collected and/or identified and deposited.
Natural history specimen data collected and/or identified by Copas, Kyle, <a href="https://orcid.org/0000-0002-6590-599X">https://orcid.org/0000-0002-6590-599X</a>. Claims were made on Bloodhound, <a href="http://bloodhound-tracker.net">https://bloodhound-tracker.net</a> using specimen data from the Global Biodiversity Information Facility, <a href="https://gbif.org">https://gbif.org</a>.
Fig. 6.1. Shell digitised with different methods. The photogrammetry model was captured with a 100 in Handbook of best practice and standards for 2D+ and 3D imaging of natural history collections
Fig. 6.1. Shell digitised with different methods. The photogrammetry model was captured with a 100 mm Macro lens and processed with Agisoft Photoscan. The visual comparison of the mollusc shows a similar level of detail between photogrammetry and MechScan for the external surfaces, with still a bit more detail for the MechScan. The HDI Advance has a much lower resolution.
Fig. 5.6 in Handbook of best practice and standards for 2D+ and 3D imaging of natural history collections
Fig. 5.6. Decimation of a 3D model. The four parts show a 3D model in various degrees of reducing the amount of faces. In the left upper corner is the original and rotating clockwise are the models at 50%, 75% and 90% decimation. Until 75% there is hardly any difference noticeable, while at 90% the cracks become less deep and the faces become more visible.
ScienceDex guides
Understand access before you commit
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.