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.
322
datasets available to search
ShareScore release 0.9.0
Dataset results
322 results for “Southeastern United States”
FIGURE 12 in Taxonomic assessment of Alligator Snapping Turtles (Chelydridae: Macrochelys), with the description of two new species from the southeastern United States
FIGURE 12. Photograph of Macrochelys suwanniensis holotype (UF 166146) demonstrating a superior (A), inferior (B), cranial (C), caudal (D), and left (E) and right (F) lateral view of skull morphology.
FIGURE 6 in Taxonomic assessment of Alligator Snapping Turtles (Chelydridae: Macrochelys), with the description of two new species from the southeastern United States
FIGURE 6. Plot of mean squamosal angle with standard error for three lineages and the holotype (MNHN-AZ-AC-A4540) of M. temminckii.
FIGURE 8 in Taxonomic assessment of Alligator Snapping Turtles (Chelydridae: Macrochelys), with the description of two new species from the southeastern United States
FIGURE 8. Polygons showing the principal component scores (and associated percent of variability explained by each component) for carapace morphometric measurements (caudal notch width, caudal notch area, caudal notch depth) from 104 alligator snapping turtles by lineage (Suwannee n=28, central n=15, and western n=61).
FIGURE 5 in Taxonomic assessment of Alligator Snapping Turtles (Chelydridae: Macrochelys), with the description of two new species from the southeastern United States
FIGURE 5. Variation of the squamosal in the western (A; TU 17991), central (B; UF 57968), and Suwannee (C; UF 12694) lineages of Macrochelys.
FIGURE 14 in Taxonomic assessment of Alligator Snapping Turtles (Chelydridae: Macrochelys), with the description of two new species from the southeastern United States
FIGURE 14. Photograph of Macrochelys apalachicolae holotype (UF 3998) demonstrating a superior (A), inferior (B), cranial (C), caudal (D), and left (E) and right (F) lateral view of skull morphology.
FIGURE 4 in Taxonomic assessment of Alligator Snapping Turtles (Chelydridae: Macrochelys), with the description of two new species from the southeastern United States
FIGURE 4. Distributions for caudal notch depth, width, area, and squamosal angle for the three Macrochelys lineages.
FIGURE 3 in Taxonomic assessment of Alligator Snapping Turtles (Chelydridae: Macrochelys), with the description of two new species from the southeastern United States
FIGURE 3. Post-cranial measurements used in present study to quantify shape variation among the three lineages of extant Macrochelys.
FIGURE 1 in Taxonomic assessment of Alligator Snapping Turtles (Chelydridae: Macrochelys), with the description of two new species from the southeastern United States
FIGURE 1. Map of sampling localities of Macrochelys used for morphological analyses. Multiple specimens were often collected from the same localities.
FIGURE 11 in Taxonomic assessment of Alligator Snapping Turtles (Chelydridae: Macrochelys), with the description of two new species from the southeastern United States
FIGURE 11. Photograph of Macrochelys suwanniensis holotype (UF 166146) demonstrating a superior view of plastron morphology.
FIGURE 7 in Taxonomic assessment of Alligator Snapping Turtles (Chelydridae: Macrochelys), with the description of two new species from the southeastern United States
FIGURE 7. Variation of carapace morphology in western (A; UF 21746), central (B; UF 52676), and Suwannee (C; UF 57967) lineages of Macrochelys. Most of the gross variation in post-cranial morphology is present within the caudal region of the carapace.
FIGURE 2 in Taxonomic assessment of Alligator Snapping Turtles (Chelydridae: Macrochelys), with the description of two new species from the southeastern United States
FIGURE 2. Cranial measurements used in present study to quantify shape variation among the three lineages of extant Macrochelys.
FIGURE 10 in Taxonomic assessment of Alligator Snapping Turtles (Chelydridae: Macrochelys), with the description of two new species from the southeastern United States
FIGURE 10. Photograph of Macrochelys suwanniensis holotype (UF 166146) demonstrating external (A) and internal (B) carapace morphology.
FIGURE 9 in Taxonomic assessment of Alligator Snapping Turtles (Chelydridae: Macrochelys), with the description of two new species from the southeastern United States
FIGURE 9. Bayesian inference phylogeny for extant chelydrids (Chelydra and Macrochelys). Note that representative skeletal synapomorphies in skull and carapace (above and below, respectively, next to lineage name) are provided for each lineage of Macrochelys; values above major nodes represent posterior probabilities (≥ 95%); values below major nodes represent the mean divergence time estimation of the most recent common ancestor (MRCA); and bars at major nodes represent 95% Highest Posterior Density (HPD).
FIGURE 13 in Taxonomic assessment of Alligator Snapping Turtles (Chelydridae: Macrochelys), with the description of two new species from the southeastern United States
FIGURE 13. Photograph of Macrochelys apalachicolae holotype (UF 3998) demonstrating external (A) and internal (B) carapace morphology.
High-spatial-resolution (0.0083° × 0.0083°) and long-term (1982 to 2010) monthly gridded wetland CH4 flux product for the Southeastern United States
<p>This dataset presents monthly gridded methane emissions from subtropical freshwater wetlands across the Southeastern United States spanning from 1982 to 2010, measured in nmol m-2 s-1. Each grid cell's methane flux prediction was adjusted based on the fractional wetland extent within that cell, utilizing data from the National Wetland Inventory (NWI) and the Wetland Area and Dynamics for Methane Modeling (WAD2M) product. The dataset includes mean monthly fluxes with no adjustment for wetland area (i.e., fluxes assuming hypothetical 100% wetland cover), as well as mean monthly fluxes adjusted for wetland area based on NWI or WAD2M, along with their respective standard deviations of the daily emissions for each month. Data are provided in NetCDF4 format.</p> <p>Lat: 25-40°N</p> <p>Lon: 95-75°W</p> <p>Period: 198201-201012 (for "CH4_Monthly_SEUS_unweighted.nc" and "CH4_Monthly_SEUS_NWI.nc") and 200001-201012 (for "CH4_Monthly_SEUS_WAD2M.nc")</p> <p>Temporal resolution: Monthly</p> <p>Spatial resolution: 0.0083° × 0.0083° (~1 km × 1 km)</p> <p>Unit: nmol m-2 s-1</p> <p>Fill value: -9999</p>
Black Scoter habitat use along the southeastern coast of the United States
<p>While the Atlantic Coast of the United States and Canada is a major wintering area for sea ducks, knowledge about their wintering habitat use is relatively limited. Black Scoters have a broad wintering distribution and are the only open water species of sea duck that is abundant along the southeastern coast of the United States. Our study identified variables that affected Black Scoter (<i>Melanitta americana</i>) distribution and abundance in the Atlantic Ocean along the southeastern coast of the United States. We used aerial survey data from 2009 to 2012 provided by the United States Fish and Wildlife Service to identify variables that influenced Black Scoter distribution. We used indicator variable selection to evaluate relationships between Black Scoter habitat use and a variety of broad- and fine-scale oceanographic and weather variables. Average time between waves, ocean floor slope, and the interaction of bathymetry and distance to shore had the strongest association with southeastern Black Scoter distribution.</p>
Figure 37 in Jumping spiders of the Phidippus princeps group in the southeastern United States (Araneae: Salticidae: Dendryphantina)
Figure 37 (continued from previous page). Spiders from counties in Alabama and Georgia. 8-9, Adult
Figure 34 in Jumping spiders of the Phidippus princeps group in the southeastern United States (Araneae: Salticidae: Dendryphantina)
Figure 34. Adult male Phidippus pulcherrimus from Nassau County, Florida (locality 8).
Figure 16 in Jumping spiders of the Phidippus princeps group in the southeastern United States (Araneae: Salticidae: Dendryphantina)
Figure 16. Adult male Phidippus princeps from Laurens County, South Carolina (locality 3).
Figure 15 in Jumping spiders of the Phidippus princeps group in the southeastern United States (Araneae: Salticidae: Dendryphantina)
Figure 15. Two adult female Phidippus princeps from Laurens County, South Carolina (locality 3).
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.