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.
176
datasets available to search
ShareScore release 0.9.0
Dataset results
176 results for “New Jersey”
Fig. 2 in Cephalopods From The Cretaceous/Tertiary Boundary Interval On The Atlantic Coastal Plain, With A Description Of The Highest Ammonite Zones In North America. Part 2. Northeastern Monmouth County, New Jersey
Fig. 2. Standard stratigraphic sequence of part of the Upper Cretaceous and Lower Tertiary succession in Monmouth County, New Jersey (reproduced from Olsson, 1987). In earlier interpretations (Olsson, 1963), the New Egypt Formation was also considered to be equivalent to parts of the Hornerstown and Navesink formations.
Fig. 5 in New vertebrate microfossils expand the diversity of the chondrichthyan and actinopterygian fauna of the Maastrichtian-Danian Hornerstown Formation in New Jersey
Fig. 5. Stratigraphic occurrences of each taxon discussed in this study, with new range extensions noted in red. The range extensions shown are based on the global record of each taxon, and thus represent global temporal range extensions (i.e., they are not merely extensions in the record solely at Edelman Fossil Park). Placement and thickness of the Main Fossiliferous Layer (MFL) and "oyster layer" beneath it within the lower Hornerstown Formation are based on the findings of Voegele et al. (2021), and assignment of the dinoflagellate zones is based on Koch and Olsson (1977) and Aurisano (1989).
Fig. 1 in New vertebrate microfossils expand the diversity of the chondrichthyan and actinopterygian fauna of the Maastrichtian-Danian Hornerstown Formation in New Jersey
Fig. 1. Map showing the location of the outcrops of Cretaceous and Paleocene strata and Jean and Ric Edelman Fossil Park Quarry in Mantua Township, New Jersey, USA. Reproduced, with permission, from Ullmann et al. (2018).
Fig. 4 in New vertebrate microfossils expand the diversity of the chondrichthyan and actinopterygian fauna of the Maastrichtian-Danian Hornerstown Formation in New Jersey
Fig. 4. Remains of the alligatorid crocodilian Bottosaurus harlani (von Meyer, 1832) (A–C) and mosasaurid cf. Mosasaurus hoffmannii Mantell, 1829 (D) recovered from the Cretaceous–Paleogene lower Hornerstown Formation at the Jean and Ric Edelman Fossil Park in Mantua Township, New Jersey, USA. A. Posterior tooth (RU-EFP-02450) in labial (A1), lingual (A2), and mesial or distal (A3) views. B.?Posterior tooth (RU-EFP-03876) in labial (B1), lingual B2), and occlusal (B3) views. C. Left dentary (RU-EFP-03820) in dorsal (C1), medial (C2), lateral (C3), and ventral (C4) views. D. Right pterygoid (RU- EFP-03592) in medial (D1), ventral (D2), and lateral (D3) views. Abbreviations: av, alveolus; t, tooth.
Fig. 3 in New vertebrate microfossils expand the diversity of the chondrichthyan and actinopterygian fauna of the Maastrichtian-Danian Hornerstown Formation in New Jersey
Fig. 3. Exemplar actinopterygian scutes (A, B) and teeth (C–I) recovered from the Cretaceous–Paleogene lower Hornerstown Formation at the Jean and Ric Edelman Fossil Park in Mantua Township, New Jersey, USA. A, B. Aulopiform teleost Dercetidae gen. et sp. indet., RU-EFP-02490 (A) and RU- EFP-00228-1 (B), in dorsal (A1, B1) and lateral (A2, B2) views. C. Phyllodontid elopiform Phyllodus paulkatoi Estes & Hiatt, 1978 (RU-EFP-04165-1) in occlusal (C1) and lateral (C2) views. D. Phyllodontid elopiform Paralbula marylandica Blake, 1940 (RU-EFP-00228-2) in occlusal (D1) and lateral (D2) views. E. Saurodontid ichthyodectiform Saurocephalus lanciformis Harlan, 1824 (RU-EFP-04151) in labial (E1) and lingual (E2) views. F, G. Enchodontid aulopiform Enchodus gladiolus (Cope, 1872). F. RU-EFP-04157-1 in lateral view. G. RU-EFP-02188 in lateral (G1) and basal (G1) views. H. Lepisosteid lepisosteiform Atractosteus sp. (RU-EFP-02939) in labial (H1) and mesial or distal (H2) views. I. Pycnodontid pycnodontiform Anomoeodus phaseolus (Hay, 1899) (RU-EFP-02858) in lateral view.
Fig. 2 in New vertebrate microfossils expand the diversity of the chondrichthyan and actinopterygian fauna of the Maastrichtian-Danian Hornerstown Formation in New Jersey
Fig. 2. Chondrichthyan ichthyoliths from the Cretaceous–Paleogene lower Hornerstown Formation at the Jean and Ric Edelman Fossil Park in Mantua Township, New Jersey, USA. Anterolateral (A, I, K) and lateral (C–H) teeth, mandibular toothplate (B), and spine (J). A. Triakid carchariniform Palaeogaleus vincenti (Daimeries, 1888) (RU-EFP-04145) in labial (A1) and lingual (A2) views. B. Callorhynchid chimaeriform Ischyodus bifurcatus (Case, 1978) (RU-EFP-03717) in oral (B1) and labial (B2) views. C. Hexanchid Heptranchias howellii (Reed, 1946) (RU-EFP-04139) in labial (C1) and lingual (C2) views. D. Hexanchid Hexanchus sp. (RU-EFP-02633) in labial (D1) and lingual (D2) views. E, F. Hexanchid Notidanodon brotzeni (Siverson, 1995), RU-EFP-04141 (E) and RU-EFP-03586 (F) in labial (E1, F1) and lingual (E2, F2) views. G. Hexanchid Weltonia ancistrodon (Arambourg, 1952) (RU-EFP-04142) in labial (G1) and lingual (G2) views. H. Pseudocoracid lamniform Pseudocorax affinis (Münster in Agassiz, 1843) (RU-EFP-02832) in labial (H1) and lingual (H2) views. I, J. Squalid Squalus sp. I. RU-EFP-02582 in lateral view. J. RU-EFP-00157-7 in labial (J1) and lingual (J2) views. K. Orthacodontid synechodontiform Sphenodus lundgreni (Davis, 1890) (RU-EFP-02913) in labial (K1), lingual (K2), mesial or distal (K3), occlusal (K4), and basal (K5) views.
Fig. 11 in Additions to the Ammonite Fauna of the Upper Cretaceous Navesink Formation of New Jersey
Fig. 11. Jeletzkytes cf. J. nodosus (Owen, 1852), MAPS A2020a2, microconch, lower phosphatic level, Navesink Formation, Atlantic Highlands, New Jersey. All figures are X1.
Fig. 9. A–F in Additions to the Ammonite Fauna of the Upper Cretaceous Navesink Formation of New Jersey
Fig. 9. A–F. Hoploscaphites pumilus (Stephenson, 1941). A, B. MAPS 2032a1; C, D. MAPS 2032a2; E, F. MAPS 2032a3; G–I. Discoscaphites gulosus (Morton, 1834), NJSM 16121, Inversand Pit, Sewell, Gloucester County, New Jersey. J–P. Jeletzkytes cf. J. nodosus (Owen, 1852). J–L. MAPS A2020a3; M, N. MAPS A2020a5; O, P. MAPS A2020a4. All specimens are from the lower phosphatic layer, Navesink Formation, Atlantic Highlands, unless otherwise stated. All figures are X1.
Fig. 5. A–E, K–O in Additions to the Ammonite Fauna of the Upper Cretaceous Navesink Formation of New Jersey
Fig. 5. A–E, K–O. Nostoceras (Nostoceras) approximans (Conrad, 1855). A, B. MAPS A2027a2, macroconch; C–E. holotype, ANSP 12861, microconch, White River, Arkansas; K–M. MAPS 2027a1, microconch; N, O. USNM 445246, pathological microconch. F–H. Exiteloceras rude, n. sp., holotype, USNM 433778, Big Brook, near Marlboro, Monmouth County. I, J. Didymoceras cf. D. draconis (Stephenson, 1941), MAPS A2040b1. All specimens are from the lower phosphatic layer, Navesink Formation, Atlantic Highlands, New Jersey, unless otherwise stated. All figures are X1.
Fig. 2 in Additions to the Ammonite Fauna of the Upper Cretaceous Navesink Formation of New Jersey
Fig. 2. Locality map for part of New Jersey showing localities where Navesink ammonites were collected.
Fig. 10 in Additions to the Ammonite Fauna of the Upper Cretaceous Navesink Formation of New Jersey
Fig. 10. Jeletzkytes cf. J. nodosus (Owen, 1852), MAPS A2020a1, macroconch, lower phosphatic level, Navesink Formation, Atlantic Highlands, New Jersey. Both figures are X1.
Fig. 12. A, B. Jeletzkytes criptonodosus Riccardi, 1983, MAPS A2050a1 in Additions to the Ammonite Fauna of the Upper Cretaceous Navesink Formation of New Jersey
Fig. 12. A, B. Jeletzkytes criptonodosus Riccardi, 1983, MAPS A2050a1, Navesink Formation, bank of Nut Swamp Brook, near Middletown, Monmouth County. C–F. Jeletzkytes cf. J. nodosus (Owen, 1852), lower phosphatic layer, Navesink Formation, Atlantic Highlands, New Jersey. C. USNM 445247; D, E. MAPS A2020a6; F. MAPS A2020a7. All figures are X1.
Fig. 7 in Vulnerability of Northern Pine Snakes (Pituophis melanoleucus Daudin, 1803) during fall den ingress in New Jersey, USA
Fig. 7. Schematic of life cycle of Northern Pine Snakes, indicating periods of high vulnerability to human disturbances, such as fire, off-road vehicles, hunting, and poaching.
Fig. 5 in Vulnerability of Northern Pine Snakes (Pituophis melanoleucus Daudin, 1803) during fall den ingress in New Jersey, USA
Fig. 5. Activity of snakes in Fall 2017 and Fall 2018 as a function of the maximum daytime temperature and the previous night's low temperature.
Fig. 3 in Vulnerability of Northern Pine Snakes (Pituophis melanoleucus Daudin, 1803) during fall den ingress in New Jersey, USA
Fig. 3. All activity of snakes at four dens in Bass River State Forest in 2018 as a function of date and soil surface temperature.
Fig. 2 in Vulnerability of Northern Pine Snakes (Pituophis melanoleucus Daudin, 1803) during fall den ingress in New Jersey, USA
Fig. 2. All activity of snakes at den 1 (Bass River State Forest) in 2017 as a function of date and soil surface temperature. The colored markers indicated by 9-digit numbers in the legend represent individually tagged snakes. Data for snakes during the period from 29 October to 11 November (red line) were not recorded because the maximum number of data points the receiver could store was reached.
Fig. 4 in Vulnerability of Northern Pine Snakes (Pituophis melanoleucus Daudin, 1803) during fall den ingress in New Jersey, USA
Fig. 4. Fall activity of snakes in Fall 2017 and Fall 2018 as a function of time of day and surface soil temperature. Activity type is noted by each symbol.
Fig. 6 in Vulnerability of Northern Pine Snakes (Pituophis melanoleucus Daudin, 1803) during fall den ingress in New Jersey, USA
Fig. 6. Activity of two hatchlings (tag numbers 845090639 and 845090603) in the fall of 2018 at den (Davenport) as a function of date and soil surface temperature.
Fig. 52. Discoscaphites jerseyensis, n in CEPHALOPODS FROM THE CRETACEOUS/TERTIARY BOUNDARY INTERVAL ON THE ATLANTIC COASTAL PLAIN, WITH A DESCRIPTION OF THE HIGHEST AMMONITE ZONES IN NORTH AMERICA. PART III. MANASQUAN RIVER BASIN, MONMOUTH COUNTY, NEW JERSEY
Fig. 52. Discoscaphites jerseyensis, n.sp., macroconchs, Pinna Layer, top of the Tinton Formation, Manasquan River Basin, Monmouth County, New Jersey. A–D. AMNH 50393, holotype. A. Right lateral; B. apertural; C. ventral; D. left lateral. E–H. AMNH 50774, paratype. E. Right lateral; F. apertural; G. ventral; H. left lateral. All figures X1.
Fig. 46 in CEPHALOPODS FROM THE CRETACEOUS/TERTIARY BOUNDARY INTERVAL ON THE ATLANTIC COASTAL PLAIN, WITH A DESCRIPTION OF THE HIGHEST AMMONITE ZONES IN NORTH AMERICA. PART III. MANASQUAN RIVER BASIN, MONMOUTH COUNTY, NEW JERSEY
Fig. 46. Size frequency histogram of a sample of Discoscaphites iris (Conrad, 1858) from the upper part of the Tinton Formation, mostly the Pinna Layer, Manasquan River Basin, Monmouth County, New Jersey.
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.