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.
299
datasets available to search
ShareScore release 0.7.1
Dataset results
299 results for “United States of America”
Figs 72-76 in Aulacidae of the southwestern United States, Mexico, and Central America (Hymenoptera)
Figs 72-76: Pristaulacus punctum. 72 Head, front. 73 Head, dorsal. 74 Mesosoma, lateral. 75 Mesosoma, dorsal. 76 Wings.
Figs 53-58 in Aulacidae of the southwestern United States, Mexico, and Central America (Hymenoptera)
Figs 53-58: Pristaulacus maculatus. 53 Head, dorsal. 54 Head, front. 55 Head, lateral. 56 Forewing. 57 Mesosoma, dorsal. 58 Mesosoma, lateral.
Figs 34-38 in Aulacidae of the southwestern United States, Mexico, and Central America (Hymenoptera)
Figs 34-38: Aulacus whartoni. 34 Head, front. 35 Head, dorsal. 36 Mesosoma, lateral. 37 Mesosoma, dorsal. 38 Tarsal claw.
Figs 18-21 in Aulacidae of the southwestern United States, Mexico, and Central America (Hymenoptera)
Figs 18-21: Aulacus costaricensis. 18 Head, front. 19 Head, dorsal. 20 Mesosoma, lateral. 21 Mesosoma dorsal.
Figs 5-10 in Aulacidae of the southwestern United States, Mexico, and Central America (Hymenoptera)
Figs 5-10: Aulacus ochreus. 5 Head, dorsal. 6 Head, front. 7 Head, lateral. 8 Forewing. 9 Mesosoma, dorsal. 10 Mesosoma, lateral.
Figs 87-92 in Aulacidae of the southwestern United States, Mexico, and Central America (Hymenoptera)
Figs 87-92: Pristaulacus torridus. 87 Head, front. 88 Head, dorsal. 89 Mesosoma, lateral. 90 Mesosoma dorsal. 91 Wings. 92 Posterior portion of mesosoma and mid- and hind coxae.
Figs 22-25 in Aulacidae of the southwestern United States, Mexico, and Central America (Hymenoptera)
Figs 22-25: Aulacus heredia. 22Xead, front. 23Xead, dorsal. 24 Mesosoma, lateral. 25 Mesosoma, dorsal.
Figs 67-71 in Aulacidae of the southwestern United States, Mexico, and Central America (Hymenoptera)
Figs 67-71: Pristaulacus virga. 67 Head, front. 68 Head, dorsal. 69 Mesosoma, lateral. 70 Mesosoma, dorsal. 71 Wings.
Figs 45-48 in Aulacidae of the southwestern United States, Mexico, and Central America (Hymenoptera)
Figs 45-48: Pristaulacus argutus. 45 Head, front. 46 Head, dorsal. 47 Mesosoma, lateral. 48 Mesosoma, dorsal.
Figs 59-62 in Aulacidae of the southwestern United States, Mexico, and Central America (Hymenoptera)
Figs 59-62: Pristaulacus ruficollis. 59 Head, front. 60 Head, dorsal. 61 Mesosoma, lateral. 62 Mesosoma, dorsal.
Figs 63-66 in Aulacidae of the southwestern United States, Mexico, and Central America (Hymenoptera)
Figs 63-66: Pristaulacus auricomus. 63 Head, front. 64 Head, dorsal. 65 Mesosoma, lateral. 66 Mesosoma, dorsal.
Figs 49-52 in Aulacidae of the southwestern United States, Mexico, and Central America (Hymenoptera)
Figs 49-52: Pristaulacus tria. 49 Head, front (partially obscured by pin). 50 Head, dorsal. 51 Mesosoma lateral. 52 Mesosoma, dorsal.
Figs 14-17 in Aulacidae of the southwestern United States, Mexico, and Central America (Hymenoptera)
Figs 14-17: Aulacus veracruz. 14 Head, front. 15 Head, dorsal. 16 Mesosoma, lateral. 17 Mesosoma, dorsal.
Figs 83-86 in Aulacidae of the southwestern United States, Mexico, and Central America (Hymenoptera)
Figs 83-86: Pristaulacus aquilus. 83 Head, front. 84 Head, dorsal. 85 Mesosoma, lateral. 86 Mesosoma dorsal.
Metabolizable energy and biomass of plants consumed by caribou (Rangifer tarandus) in tundra communities of northern Alaska and deer (Odocoileus spp.) in forests and grasslands of Washington, United States of America
<p>A ubiquitous interaction operates at the base of food webs in many terrestrial ecosystems of the world, creating the foundation for bottom-up regulation of consumers. This interaction plays out as follows. Populations of herbivores deplete plant biomass by foraging. Increasing herbivore population size intensifies this depletion, which in turn, creates a negative feedback regulating herbivore population growth. Large herbivores and the plants they consume offer a useful system for studying this interaction because populations of large herbivores are often regulated by density dependence, defined as the reduction in the per-capita growth rate that occurs as populations grow. Diminished body mass of individuals has been repeatedly observed in high-density populations, implicating plant-mediated, diminished nutrition as the primary cause of density dependence. However, there is no general explanation for why these nutritional deficiencies occur. The data deposited here were used to demonstrate fit new model of the feedbacks from plant biomass to herbivores. The model shows how reduced nutrition of herbivores can result from increased dilution of metabolizable energy in the plant tissue they consume as populations grow even when a large fraction of the consumable plant biomass remains uneaten. This result provides a tidy, mechanistic explanation for bottom-up control of population dynamics of primary consumers in a "green world." </p>
Metabolizable energy and biomass of plants consumed by caribou (Rangifer tarandus) in tundra communities of northern Alaska and deer (Odocoileus spp.) in forests and grasslands of Washington, United States of America
Open the record for dataset details and reuse information.
Fig. 3-4 in New Cryptophagus H , 1792 (Coleoptera: Cryptophagidae) from Arizona (United States of America)
Fig. 3-4: (3) Cryptophagus discendens CASEY, 1900; (4) Cryptophagus fumidulus CASEY, 1900 holotype.
2014, Dallas, Texas, United States of America Ebola epidemic data and knowledge
Information about the 2014, Dallas, Texas, United States of America Ebola epidemic curated from multiple publications and reports. The information is represented in machine-interpretable Apollo-XSD format. The terminology is defined by the Apollo-SV ontology and standard identifiers.
1989, Virginia, United States of America Ebola epidemic data and knowledge
Information about the 1989, Virginia, United States of America Ebola epidemic curated from multiple publications and reports. The information is represented in machine-interpretable Apollo-XSD format. The terminology is defined by the Apollo-SV ontology and standard identifiers.
Fig. 5 in New distributional records of the genus Tetragonoderus Dejean, 1829 from the United States of America, including an updated key to species (Coleoptera: Carabidae)
Fig. 5 – Tetragonoderus pallidus Horn, 1869: a, map of distribution; b, habitus.
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.