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173 results for “South Carolina”

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zenodo36/100

Figure 19. Feeding Phidippus from southern Greenville County, South Carolina. 1, Penultimate female P in Learned avoidance of the Large Milkweed Bug (Hemiptera: Lygaeidae: Oncopeltus fasciatus) by jumping spiders (Araneae: Salticidae: Dendryphantina: Phidippus)

Figure 19. Feeding Phidippus from southern Greenville County, South Carolina. 1, Penultimate female P. audax with two leafhoppers. This spider held one leafhopper as it jumped and captured the second. 2, Adult female P. audax fedding on a large brachyceran fly. 3, Adult female P. princeps feeding on spider. 4, Adult female P. princeps feeding on a captured bug after wiping it against the surface. Each scale bar = 1.0 mm.

opencc-by-nd-4.0Jun 2016View details →
dryad36/100

Exponential growth of private coastal infrastructure influenced by geography and race in South Carolina, USA

<p>Homeowners in coastal environments often augment their access to estuarine ecosystems by building private docks on their personal property. Despite the commonality of docks, particularly in the Southeastern United States, few works have investigated their historical development, their distribution across the landscape, or the environmental justice dimensions of this distribution. In this study, we used historic aerial photography to track the abundance and size of docks across six South Carolina counties from the 1950s to 2016. Across our roughly 60-year study period, dock abundance grew by two orders of magnitude, the mean length of newly constructed docks doubled, and the cumulative length of docks ballooned from 34 to 560 km. Additionally, we drew on census data interpolated into consistent 2010 tract boundaries to analyze the racial and economic distribution of docks in 1994, 1999, 2011, and 2016. Racial composition, measured as the percentage of a tract's population that was White, positively correlated with dock abundance in each year. Median household income and dock abundance were only correlated in 2011. Taken together, these metrics indicate the growing desire for direct estuary access, however, that access does not appear to be equally spread across racial groups. Because docks enhance estuarine access and demarcate private property, our study provides longitudinal insights into environmental justice concerns related to disparate private property ownership. We found a persistent correlation between the racial characteristics of an area and dock abundance, strongly indicating that White South Carolinians have had disproportionately greater private water access for the past two decades.</p>

opencc-zeroApr 2024View details →
zenodo36/100

Figure 9. Adult female Lyssomanes viridis from Greenville County, South Carolina. 1 in Asemonea cf. tenuipes in Karnataka (Araneae: Salticidae: Asemoneinae)

Figure 9. Adult female Lyssomanes viridis from Greenville County, South Carolina. 1, Gravid female with normal green colour. Inset detail shows the small PME characteristic of the Lyssomaninae. 2, Female just after feeding with dark opisthosoma. Like Asemonea, Lyssomanes females occupy simple shelters of layered silk laid down beneath large leaves (Jackson 1990).

opencc-by-nd-4.0Oct 2018View details →
zenodo36/100

Fig. 19 in A New Protocetid Whale (Cetacea: Archaeoceti) from the Late Middle Eocene of South Carolina

Fig. 19. Anterior views of sixth (A) and seventh (B) cervical vertebrae of Carolinacetus gingerichi

opencc-by-4.0Jul 2005View details →
dryad36/100

Alabama, Georgia, and South Carolina Coyote recursive GPS data

<p>Coyotes (<em>Canis latrans</em>) colonized the southeastern United States over the last century as large predators, including the red wolf (<em>Canis rufus</em>) and eastern cougar (<em>Puma concolor</em>), were extirpated from the region. As a generalist carnivore, the coyote preys on white-tailed deer (<em>Odocoileus virginianus</em>) and various smaller mammals, birds, and vegetation. While resource selection by coyotes has been well documented at the home-range scale, little is known about their foraging behavior, which is an important factor in thoroughly understanding influences of coyotes on prey and sympatric carnivores. We assessed 3<sup>rd</sup>-order resource selection of coyotes at sites across Alabama, Georgia, and South Carolina during 2015-2016. Using GPS collars, we tracked 41 resident coyotes across 4 calendar seasons and identified suspected foraging areas using recursive analysis where individuals repeatedly returned to known locations. We found that resident coyotes selected for open landcover types throughout the year, while avoiding primary and secondary roads. Additionally, resident coyotes avoided forested landcover types while selecting for forest edges except from April to June when they foraged within interior forest away from edges. Previous studies have documented substantive predation rates on white-tailed deer neonates by coyotes, and that fawn mortality may increase in forested landscapes away from forest edge. Our findings indicate that foraging coyotes may select forest cover types during spring where fawns are more vulnerable to predation. Additionally, there has been debate in the literature as to how coyotes obtain consistent levels of deer in their diets outside of fawning and fall hunting seasons. Our study indicates that use of road-kill carcasses by coyotes was an unlikely explanation for the presence of deer in coyote diets throughout the year, as coyotes in our study were not observed using roads during foraging excursions.</p>

opencc-zeroNov 2022View details →
ClinicalTrials.gov36/100

Vitamin D Status of Pregnant Women and Their Children in Eau Claire, South Carolina

ClinicalTrials.gov study NCT00412087. IPD Sharing: Not stated. Countries: 1. Publications: 4.

restrictedIPD-UNDECIDEDFeb 2026View details →
ClinicalTrials.gov36/100

Nurse-Family Partnership Impact Evaluation in South Carolina

ClinicalTrials.gov study NCT03360539. IPD Sharing: NO. Countries: 1. Publications: 6.

closedIPD-NOFeb 2026View details →
dryad36/100

Data from: Racial composition and homeownership influence the distribution of coastal armoring in South Carolina, United States

Open the record for dataset details and reuse information.

publicApr 2025View details →
dryad36/100

Exponential growth of private coastal infrastructure influenced by geography and race in South Carolina, USA

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publicApr 2024View details →
dryad36/100

Data from: Systematics and biogeography of Appalachian Anillini, and a taxonomic review of the species of South Carolina (Coleoptera, Carabidae, Trechinae, Anillini)

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publicAug 2024View details →
dryad36/100

Bee diversity and abundance during peach bloom in South Carolina, United States

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publicSep 2024View details →
dryad36/100

Alabama, Georgia, and South Carolina Coyote recursive GPS data

Open the record for dataset details and reuse information.

publicNov 2022View details →
edi36/100

Santee Experimental Forest site, station South Carolina Division 7, Southern, study of Palmer Drought Severity Index in units of dimensionless on a monthly timescale

The EcoTrends project was established in 2004 by Dr. Debra Peters (Jornada Basin LTER, USDA-ARS Jornada Experimental Range) and Dr. Ariel Lugo (Luquillo LTER, USDA-FS Luquillo Experimental Forest) to support the collection and analysis of long-term ecological datasets. The project is a large synthesis effort focused on improving the accessibility and use of long-term data. At present, there are ~50 state and federally funded research sites that are participating and contributing to the EcoTrends project, including all 26 Long-Term Ecological Research (LTER) sites and sites funded by the USDA Agriculture Research Service (ARS), USDA Forest Service, US Department of Energy, US Geological Survey (USGS) and numerous universities. Data from the EcoTrends project are available through an exploratory web portal (http://www.ecotrends.info). This web portal enables the continuation of data compilation and accessibility by users through an interactive web application. Ongoing data compilation is updated through both manual and automatic processing as part of the LTER Provenance Aware Synthesis Tracking Architecture (PASTA). The web portal is a collaboration between the Jornada LTER and the LTER Network Office. The following dataset from Santee Experimental Forest (SAN) contains Palmer Drought Severity Index measurements in dimensionless units and were aggregated to a monthly timescale.

openOpenJan 2020View details →
edi36/100

Santee Experimental Forest site, station South Carolina Division 7, Southern, study of Palmer Drought Severity Index in units of dimensionless on a yearly timescale

The EcoTrends project was established in 2004 by Dr. Debra Peters (Jornada Basin LTER, USDA-ARS Jornada Experimental Range) and Dr. Ariel Lugo (Luquillo LTER, USDA-FS Luquillo Experimental Forest) to support the collection and analysis of long-term ecological datasets. The project is a large synthesis effort focused on improving the accessibility and use of long-term data. At present, there are ~50 state and federally funded research sites that are participating and contributing to the EcoTrends project, including all 26 Long-Term Ecological Research (LTER) sites and sites funded by the USDA Agriculture Research Service (ARS), USDA Forest Service, US Department of Energy, US Geological Survey (USGS) and numerous universities. Data from the EcoTrends project are available through an exploratory web portal (http://www.ecotrends.info). This web portal enables the continuation of data compilation and accessibility by users through an interactive web application. Ongoing data compilation is updated through both manual and automatic processing as part of the LTER Provenance Aware Synthesis Tracking Architecture (PASTA). The web portal is a collaboration between the Jornada LTER and the LTER Network Office. The following dataset from Santee Experimental Forest (SAN) contains Palmer Drought Severity Index measurements in dimensionless units and were aggregated to a yearly timescale.

openOpenJan 2020View details →
zenodo32/100

FIGURE 6. A–F. Khulisa carolinae n. gen. et n in Novel taxa of Cheilostomata Bryozoa discovered in the historical backlogs of the Iziko South African Museum

FIGURE 6. A–F. Khulisa carolinae n. gen. et n. sp. (SAMC-A029002) A. Group of autozooids and interzooidal avicularia (scale bar = 0.4 mm, magnified x50). B. Close-up of the interzooidal avicularium (scale bar = 0.2 mm, magnified x75). C. Autozooids and enlarged dimorphic zooid (scale bar = 0.4 mm, magnified x50). D. View of the apertural bar and detail of the distal pore plates (scale bar = 0.2 mm, magnified x100). E. Close-up of the apertural bar (scale bar = 0.1 mm, magnified x200). F. Orificial rim of an enlarged, dimorphic zooid (scale bar = 0.1 mm, magnified x200).

opennotspecifiedJul 2020View details →
zenodo32/100

FIGURES 37–39. Barronopsis stephaniae left palpus. Dorchester County, South Carolina. 37 in Systematics and natural history of Barronopsis (Araneae: Agelenidae), with description of a new species

FIGURES 37–39. Barronopsis stephaniae left palpus. Dorchester County, South Carolina. 37, prolateral view; 38, retrolateral view; 39, ventral view. Scale bar= 0.2 mm. bf—basal flange, c—conductor, etc—embolic tight coils, mamedian apophysis, RTA—retrolateral tibial apophysis, sd—sperm duct, ta—tegular apophysis.

opennotspecifiedDec 2009View details →
zenodo32/100

FIGURE 7 in Taxonomy and morphology of plant-parasitic nematodes associated with turfgrasses in North and South Carolina, USA

FIGURE 7. Micrographs of Hemicycliophora thienemanni, H. conida, Hemicaloosia graminis from turfgrasses in NC and SC. All scale bars =20µm. A. Female esophageal region of H. thienemanni. B. Vulva region of H. thienemanni. C. Female tail of H. thienemanni. D. Female esophageal region of H. conida. E,F. Vulva region of H. conida. G. Female esophageal region of Hemicaloosia graminis. H. Vulva region of Hemicaloosia graminis. I. Female tail of Hemicaloosia graminis. J. Male esophageal region of Hemicaloosia graminis. K. Male tail of Hemicaloosia graminis.

opennotspecifiedDec 2012View details →
zenodo32/100

FIGURE 4 in Taxonomy and morphology of plant-parasitic nematodes associated with turfgrasses in North and South Carolina, USA

FIGURE 4. Micrographs of Belonolaimus longicaudatus and Dolichodorus heterocephalus from turfgrasses in NC and SC. All scale bars=20µm. A. Pharyngeal region of B. longicaudatus. B. Vulva region of B. longicaudatus. C. Female tail of B. longicaudatus. D,E. Male tails of B. longicaudatus. F. Pharyngeal region of D. heterocephalus. G. Vulval region of D. heterocephalus. H. Female tail of D. heterocephalus. I. Male tails of D. heterocephalus.

opennotspecifiedDec 2012View details →
zenodo32/100

FIGURE 1 in Taxonomy and morphology of plant-parasitic nematodes associated with turfgrasses in North and South Carolina, USA

FIGURE 1. Micrographs of Pratylenchus penetrans, Tylenchorhynchus claytoni and Filenchus cylindricus from turfgrasses in NC and SC. Scale bars: A, B, J=50 μm; C-I, K-M=20μm. A,B. Entire body of P. penetrans. C. Pharyngeal region of P. penetrans. D,E. Female tails of P. penetrans. F. Male tail of P. penetrans. G. Pharyngeal region of T. claytoni. H. Female tail of T. claytoni. I. Male tail of T. claytoni. J. Entire body of F. cylindricus. K. Pharyngeal region of F. cylindricus. L. Vulval region of F. cylindricus. M. Female tail of F. cylindricus.

opennotspecifiedDec 2012View details →
zenodo32/100

FIGURE 6 in Taxonomy and morphology of plant-parasitic nematodes associated with turfgrasses in North and South Carolina, USA

FIGURE 6. Micrographs of Hemicriconemoides chitwoodi, H. wessoni, Paratylenchus goldeni and Aphelenchoides myceliophagus from turfgrasses in NC and SC. Scale bars: A, D=50µm; B, C, E–M=20µm. A. Entire body of H. chitwoodi. B. Pharyngeal region of H. chitwoodi. C. Vulva and tail region of H. chitwoodi. D. Entire body of H. wessoni. E. Pharyngeal region of H. wessoni. F. Vulva and tail region of H. wessoni. G. Pharyngeal region of P. g o l d e n i. H. Vulva and tail region of P. goldeni. I. Pharyngeal region of A. myceliophagus. J. Vulval region of A. myceliophagus. K. Pharyngeal region of A. myceliophagus. L. Female tail of A. myceliophagus. M. Male tail of A. myceliophagus.

opennotspecifiedDec 2012View details →

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abode-home-cage
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DANDI Archive for NWB datasets

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dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

OpenNeuro

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openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record