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.
611
datasets available to search
ShareScore release 0.9.0
Dataset results
611 results for “eastern North America”
FIGURE 16. T1 in Revision of the metallic Lasioglossum (Dialictus) of eastern North America (Hymenoptera: Halictidae: Halictini)
FIGURE 16. T1 acarinarial fan (A) complete, without dorsal opening, (B) incomplete, with dorsal opening. (From Gibbs 2010b).
FIGURE 13 in Revision of the metallic Lasioglossum (Dialictus) of eastern North America (Hymenoptera: Halictidae: Halictini)
FIGURE 13. Mesoscutal punctation (A) completely dense, (B) sparse medially (indicated by arrow). (From Gibbs 2010b).
FIGURE 14. T1 in Revision of the metallic Lasioglossum (Dialictus) of eastern North America (Hymenoptera: Halictidae: Halictini)
FIGURE 14. T1 Acarinarial fan (A) with transverse glabrous area (L. disparile); (B) without transverse glabrous area (L. albipenne).
FIGURE 12 in Revision of the metallic Lasioglossum (Dialictus) of eastern North America (Hymenoptera: Halictidae: Halictini)
FIGURE 12. Mesoscutal punctation on lateral portion of disc (A) sparse (B) dense. (From Gibbs 2010b).
FIGURE 49 in Revision of the metallic Lasioglossum (Dialictus) of eastern North America (Hymenoptera: Halictidae: Halictini)
FIGURE 49. Lasioglossum alachuense (Mitchell) male, (A) lateral habitus, (B) face. Scale bars = 1 mm.
FIGURE 10 in Revision of the metallic Lasioglossum (Dialictus) of eastern North America (Hymenoptera: Halictidae: Halictini)
FIGURE 10. Hypostomal carina variation in female Lasioglossum (Dialictus). (A) subparallel (L. connexum); (B) divergent (L. heterognathum); (C) divergent (L. reticulatum).
FIGURE 45 in Revision of the metallic Lasioglossum (Dialictus) of eastern North America (Hymenoptera: Halictidae: Halictini)
FIGURE 45. Lasioglossum achilleae (Mitchell) male, (A) lateral habitus, (B) face. Scale bars = 1 mm.
FIGURE 8 in Revision of the metallic Lasioglossum (Dialictus) of eastern North America (Hymenoptera: Halictidae: Halictini)
FIGURE 8. Procoxa (A) with conical projection (L. illinoense), (B) without conical projection (From Gibbs 2010b).
FIGURE 7 in Revision of the metallic Lasioglossum (Dialictus) of eastern North America (Hymenoptera: Halictidae: Halictini)
FIGURE 7. Tegula (A) punctate, enlarged, punctate with posterior angle (B) ovoid, without posterior angle (L. nymphaearum). (From Gibbs 2010b).
FIGURE 6 in Revision of the metallic Lasioglossum (Dialictus) of eastern North America (Hymenoptera: Halictidae: Halictini)
FIGURE 6. Labrum of female Dialictus; (A) nest-building species, (B) parasitic species. Arrows indicate apical process. (From Gibbs 2010b).
FIGURE 9 in Revision of the metallic Lasioglossum (Dialictus) of eastern North America (Hymenoptera: Halictidae: Halictini)
FIGURE 9. Declivitous surface of T1 with acarinarial fan (A) present, (B) absent. (From Gibbs 2010b).
FIGURE 5 in Revision of the metallic Lasioglossum (Dialictus) of eastern North America (Hymenoptera: Halictidae: Halictini)
FIGURE 5. Forewings of female Lasioglossum subgenus Dialictus. (A) Typical forewing with three submarginal cells. Pterostigma (pt), basal vein (b), arrows indicate weakened veins. (B) Forewing with two submarginal cells. Arrows indicate weakened veins. (From Gibbs 2010b).
FIGURE 1 in Revision of the metallic Lasioglossum (Dialictus) of eastern North America (Hymenoptera: Halictidae: Halictini)
FIGURE 1. Propodeum and metapostnotum of female Lasioglossum with strong propodeal carinae. Metapostnotum (M). Propodeum, dorsolateral slope (D), posterior surface (P), lateral surface (L), oblique carina (oc), lateral carina (lc). (From Gibbs 2010b).
FIGURE 4 in Revision of the metallic Lasioglossum (Dialictus) of eastern North America (Hymenoptera: Halictidae: Halictini)
FIGURE 4. Mesoscutum of female Lasioglossum (Dialictus) showing sculpture and punctation variation. (A) L. reticulatum, (B) L. cressonii, (C), L. nymphaearum, (D). L. (D.) sp., (E) L. heterognathum, (F) L. coreopsis, (G) L. pilosum, (H) L. nigroviride, (I) L. lineatulum.
FIGURE 3 in Revision of the metallic Lasioglossum (Dialictus) of eastern North America (Hymenoptera: Halictidae: Halictini)
FIGURE 3. Gena and postgena of female Lasioglossum (Dialictus) showing sculpture variation. (A) carinulate (L. cressonii); (B) lineolateimbricate (L. coreopsis); (C) lineolate-imbricate (L. pilosum); (D) weakly imbricate-polished (L. nigroviride).
FIGURE 2 in Revision of the metallic Lasioglossum (Dialictus) of eastern North America (Hymenoptera: Halictidae: Halictini)
FIGURE 2. Propodeum and metapostnotum variation in female Lasioglossum (Dialictus). (A) L. cressonii, (B) L. nigroviride, (C) L. lineatulum, (D) L. coreopsis, (E) L. connexum, (F) L. (D.) sp.
A Modified Global Plate Model Including Quantitative Tomotectonic Plate Reconstruction of Western North America and the Eastern Pacific Basin
<p>This plate model is based on that of Clennett et al. (2020) (<a href="../records/10348271" target="_blank" rel="noopener">https://zenodo.org/records/10348271</a>). The Clennett et al. (2020) model was an extension of the global model of Müller et al. (2019) (<a href="../records/10525287" target="_blank" rel="noopener">https://zenodo.org/records/10525287</a>), with a focus on producing a more detailed tectonic reconstruction of the North American Cordillera. Further minor modifications were made to the model for a paper by Alfonso et al. (2024), using the <em>GPlates</em> software (<a href="https://url.au.m.mimecastprotect.com/s/JVvZCE8wmrt1kqgwPtNcn8j?domain=gplates.org/" target="_blank" rel="noopener">https://www.gplates.org/</a>). Firstly, several subduction zones in the published plate model have no associated motions, instead remaining entirely stationary relative to the mantle. This was judged to be incompatible with basic geodynamic principles, as geodynamic models indicate that trenches and subducting slabs are almost always in motion relative to the mantle, exhibiting retreat or, more rarely, advance (e.g. Capitanio, 2013; Capitanio et al., 2010; Schellart et al., 2007; Stegman et al., 2010). As trenches of intermediate length generally display relatively slow retreat (Schellart, 2008), a small amount of trench rollback was imposed on the subduction zones in this model, whilst ensuring that they remained located above their associated tomographically-imaged slabs. Additionally, the Orcas plate (170–130 Ma), located within the Cordilleran archipelago, was split into two sections separated by an east-west trending mid-ocean ridge, consistent with the subsequent plate configuration after 130 Ma. This was done to improve the consistency of the plate motion model, which appeared to indicate divergence within the Orcas plate and convergence at its boundaries. Finally, the reconstruction’s absolute plate motion model was recalculated using the iterative optimisation workflow developed by Tetley et al. (2019).</p> <p> </p> <p>The agegrids associated with this model can be accessed from: <a href="https://repo.gplates.org/webdav/PlateModel_Age_SR_Grids/Alfonso_etal_2024_modClennettMuller/" target="_blank" rel="noopener">https://repo.gplates.org/webdav/PlateModel_Age_SR_Grids/Alfonso_etal_2024_modClennettMuller/</a></p> <p> </p>
FIGURE 12 in Cryptic species among bumblebee mimics: an unrecognized Hemaris hawkmoth (Lepidoptera: Sphingidae) in eastern North America
FIGURE 12. Female genitalia of Hemaris thetis (A), H. diffinis (B) and H. aethra (C). Scale bar equals 1 mm.
FIGURE 11 in Cryptic species among bumblebee mimics: an unrecognized Hemaris hawkmoth (Lepidoptera: Sphingidae) in eastern North America
FIGURE 11. Illustration (top) from the original description of Macroglossa aethra (Strecker 1875), and the holotype specimen with associated labels (bottom), deposited in the Field Museum of Natural history (available at http://collections- Zoology.fieldmuseum.org/catalogue/804170).
FIGURE 10 in Cryptic species among bumblebee mimics: an unrecognized Hemaris hawkmoth (Lepidoptera: Sphingidae) in eastern North America
FIGURE 10. Comparison of the minimum range of H. aethra (red) and the distribution of its larval host plant, Diervilla lonicera (blue). Range of H. aethra is based on minimum shape incorporating examined specimens (Fig. 8), with unverified or potential records indicated by questions marks. Range of D. lonciera is based on information in KartesZ (2015) and Canadensys Explorer (http://data2.canadensys.net).
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.