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.
65
datasets available to search
ShareScore release 0.9.0
Dataset results
65 results for “Crato Formation”
FIGURES 8–10. Prosyntexis gouleti Sharkey, 1990, specimen SMNS 66698b in Revision of Prosyntexis from the Lower Cretaceous Crato Formation of Brazil (Hymenoptera: Sepulcidae: Trematothoracinae)
FIGURES 8–10. Prosyntexis gouleti Sharkey, 1990, specimen SMNS 66698b, counterimprint. (8) Photograph of habitus in ventral view (scale bar: 5 mm); (9) photograph of head (scale bar: 200 µm); (10) photograph of right wings (scale bar: 2 mm).
FIGURES 6–7. Prosyntexis gouleti Sharkey, 1990, specimen SMNS 66698a in Revision of Prosyntexis from the Lower Cretaceous Crato Formation of Brazil (Hymenoptera: Sepulcidae: Trematothoracinae)
FIGURES 6–7. Prosyntexis gouleti Sharkey, 1990, specimen SMNS 66698a, imprint. (6) Photograph of habitus in dorsal view (scale bar: 5 mm); (7) photograph of left forewing (scale bar: 2 mm).
FIGURES 4–5. Prosyntexis gouleti Sharkey, 1990, specimen SMNS 66301 in Revision of Prosyntexis from the Lower Cretaceous Crato Formation of Brazil (Hymenoptera: Sepulcidae: Trematothoracinae)
FIGURES 4–5. Prosyntexis gouleti Sharkey, 1990, specimen SMNS 66301. (4) Photograph of habitus in dorsal view (scale bar: 5 mm); (5) photograph of antennae (scale bar: 1 mm), with numbers of antennomeres indicated.
FIGURES 1–3. Prosyntexis gouleti Sharkey, 1990 in Revision of Prosyntexis from the Lower Cretaceous Crato Formation of Brazil (Hymenoptera: Sepulcidae: Trematothoracinae)
FIGURES 1–3. Prosyntexis gouleti Sharkey, 1990. (1) Specimen A43720, photograph of right forewing (scale bar: 2 mm); (2) specimen A43720, photograph of left forewing (scale bar: 2 mm); (3) holotype specimen of 'Prosyntexis legitima' (syn. nov.), drawing of forewing venation after the original photograph of Martins-Neto et al. (2007: fig. 2A), wing cells in bold, veins in normal font.
Figure 8 in Description of a new specimen of Susisuchus anatoceps (Crocodylomorpha: Mesoeucrocodylia) from the Crato Formation (Santana Group) with comments on Neosuchia
Figure 8. Detail of the dorsal shield of Susisuchus anatoceps (MPSC-R1136) showing the six contiguous rows (white triangles) of osteoderms. Scale bar = 5 mm.
Figure 7 in Description of a new specimen of Susisuchus anatoceps (Crocodylomorpha: Mesoeucrocodylia) from the Crato Formation (Santana Group) with comments on Neosuchia
Figure 7. Detail of the hand bones (zeugapodial elements and manus) of Susisuchus anatoceps (MPSC-R1136). Abbreviations: dg1–3, digits 1–3; rad, radius; uln, ulna. Scale bar = 20 mm.
Figure 9 in Description of a new specimen of Susisuchus anatoceps (Crocodylomorpha: Mesoeucrocodylia) from the Crato Formation (Santana Group) with comments on Neosuchia
Figure 9. Phylogenetic relationships of Susisuchus anatoceps. A, strict consensus of six most-parsimonious trees based on the data matrix of Jouve (2009). Each tree has 1374 steps and consistency index (CI) = 0.2991 and retention index (RI) = 0.6365. Only the Neosuchia clade is shown. B, strict consensus of 54 most-parsimonious trees based on the data matrix of Salisbury et al. (2006). Each tree has 480 steps and CI = 0.4708 and RI = 0.7668.
Figure 5 in Description of a new specimen of Susisuchus anatoceps (Crocodylomorpha: Mesoeucrocodylia) from the Crato Formation (Santana Group) with comments on Neosuchia
Figure 5. Shoulder girdle of Susisuchus anatoceps (MPSC-R1136). A, lateral view of the right scapula. B, medial view of the right scapula. C, lateral view of the right coracoid. D, medial view of the right coracoid. Scale bars = 10 mm.
Figure 4 in Description of a new specimen of Susisuchus anatoceps (Crocodylomorpha: Mesoeucrocodylia) from the Crato Formation (Santana Group) with comments on Neosuchia
Figure 4. Detail of the sixth cervical vertebrae of Susisuchus anatoceps (MPSC-R1136). The arrow indicates the procoelic end of the vertebra centrum. Scale bar = 5 mm.
Figure 3 in Description of a new specimen of Susisuchus anatoceps (Crocodylomorpha: Mesoeucrocodylia) from the Crato Formation (Santana Group) with comments on Neosuchia
Figure 3. Cervical vertebrae of Susisuchus anatoceps (MPSC-R1136). A, ventral view showing the poorly developed hypapophyses. B, lateral view showing the neural spines. Abbreviations: ax, axis; c3–8, cervical vertebrae 3–8. White arrows indicate the neural spines. Scale bars = 10 mm.
Figure 2 in Description of a new specimen of Susisuchus anatoceps (Crocodylomorpha: Mesoeucrocodylia) from the Crato Formation (Santana Group) with comments on Neosuchia
Figure 2. Drawing of the dorsal vertebrae, dorsal shield, and forelimb (zeugapodial elements and manus) of Susisuchus anatoceps (MPSC-R1136). Scale bar = 30 mm.
Figure 1 in Description of a new specimen of Susisuchus anatoceps (Crocodylomorpha: Mesoeucrocodylia) from the Crato Formation (Santana Group) with comments on Neosuchia
Figure 1. Dorsal vertebrae, dorsal shield, and forelimb (zeugapodial elements and manus) of Susisuchus anatoceps (MPSC-R1136). Abbreviations: dg1–3, digits 1–3; dr1–4, dorsal ribs 1–4; dv7–10, dorsal vertebrae 7–10; lac, lateral accessory osteoderm; mac, medial accessory osteoderm; pav, paravertebral osteoderm; rad, radius; uln, ulna; vos, ventral osteoderms. Scale bar = 30 mm.
FIGURE 5 in Behavioural impacts on the taphonomy of dragonflies and damselflies (Odonata) from the Lower Cretaceous Crato Formation, Brazil
FIGURE 5. Pie charts showing abdominal completeness of Crato Formation Odonate versus other insect orders. A, Pie chart showing the number and percentage of odonate insect fossils examined with varying levels of abdomen preservation. The percentage is of odonates only, not the entire collection examined. B, Pie chart showing the number and percentage of non-odonate insect fossils examined with varying levels of abdomen preservation. The percentage is of non-odonates only, not the entire collection examined.
FIGURE 4 in Behavioural impacts on the taphonomy of dragonflies and damselflies (Odonata) from the Lower Cretaceous Crato Formation, Brazil
FIGURE 4. Principal coordinate analyses of the collection studies. Odonate specimens are connected with a red overlay. Nonodonate specimens are connected with a blue overlay. A, Including both anterior and posterior abdomen characters. B, With the anterior and posterior abdomen characters combined into a single abdomen character. C, Including both anterior and posterior abdomen characters, however three odonate and six non-odonate outliers are excluded in the overlain colours. D, With the anterior and posterior abdomen characters combined into a single abdomen character however two odonate and six non-odonate outliers are excluded in the overlain colours. All analyses use Gower similarity coefficient. Red = Odonata; blue = Blattodea; green = Orthoptera; light blue = Coleoptera; purple = Diptera; light green = Ephemeroptera; black = Hemiptera; yellow = Hymenoptera; orange = Neuroptera; pink = Raphidioptera; grey = Unknown.
FIGURE 2 in Behavioural impacts on the taphonomy of dragonflies and damselflies (Odonata) from the Lower Cretaceous Crato Formation, Brazil
FIGURE 2. Principal coordinate analyses of Crato Formation fossil insect collections studied, clustering specimens based on their completeness. A, Principal coordinate analysis of the collections studied, including both anterior and posterior abdomen characters. B, Principal coordinate analysis of the collections studied, with the anterior and posterior abdomen characters combined into a single abdomen character. Both use Gower similarity coefficient. Red = Odonata; blue = Blattodea; green = Orthoptera; light blue = Coleoptera; purple = Diptera; light green = Ephemeroptera; black = Hemiptera; yellow = Hymenoptera; orange = Neuroptera; pink = Raphidioptera; grey = Unknown.
FIGURE 2 in Ostracods from the Barbalha and Crato formations, Aptian of the Araripe Basin, northeast Brazil
FIGURE 2. Lithology of borehole 1PS-06-CE, as well as the names of the samples analyzed and the distribution of the ostracod taxa recovered. The names of the new species described in this study are in bold. Modified from Fauth et al. (2023).
FIGURE 3 in Ostracods from the Barbalha and Crato formations, Aptian of the Araripe Basin, northeast Brazil
FIGURE 3. Lithology of borehole 1PS-10-CE, as well as the names of the samples analyzed and the distribution of the ostracod taxa recovered. Modified from Fauth et al. (2023).
FIGURE 1. A in Ostracods from the Barbalha and Crato formations, Aptian of the Araripe Basin, northeast Brazil
FIGURE 1. A. Location of the Araripe Basin in Brazil; B. Close-up of the Araripe Basin, displaying the geology of its eastern side and the location of boreholes 1PS-06-CE and 1PS-10-CE. Modified from Fauth et al. (in review).
FIGURE 5 in Ostracods from the Barbalha and Crato formations, Aptian of the Araripe Basin, northeast Brazil
FIGURE 5. Plate illustrating the ostracod species recovered from the Barbalha and Crato formations, Araripe Basin. 1. Pattersoncypris trapezium sp. nov. A–B, ULVG-14198, adult, holotype, RLV, LLV; C, ULVG-14199, A-1, paratype, DV; D– E, ULVG-14200, A-1, paratype, RLV and DV; F–G, ULVG-14201, A-2, paratype, RLV and DV; H–I, ULVG-14202, A-3, paratype, RLV and DV; J–K, ULVG-14203, A-4, paratype, RLV and DV; L–M, ULVG-14204, A-5, paratype, RLV and DV; N–O, ULVG-14205, A-6, paratype, RLV and DV. 2. Looneyellopsis? sagittensis sp. nov. ULVG-14212, adult. A—RLV, B—DV. 3. Theriosynoecum silvai (Silva, 1978). A—ULVG-13487, adult male, RLV, B–C, ULVG-13683, adult female, RLV and DV.
FIGURE 4 in Ostracods from the Barbalha and Crato formations, Aptian of the Araripe Basin, northeast Brazil
FIGURE 4. Plate illustrating the ostracod species recovered from the Barbalha and Crato formations, Araripe Basin. 1. Candonopsis? alagoensis Tomé, Lima Filho & Neumann, 2014. ULVG-13482, instar A-2. A—RLV, B—DV. 2. Cypridea araripensis Silva, 1978?. ULVG-13489, mold. 3. Brasacypris subovatum Do Carmo, Coimbra, Whatley, Antonietto & Citon, 2013. ULVG-13490, instar A2. A—RLV, B—DV. 4. Damonella medialtis sp. nov. ULVG-14195, adult. A—RLV, B—DV, C—LLV. 5. Pattersoncypris cf. angulata (Kr̂mmelbein & Weber, 1971). ULVG-13483, instar A-2. A—RLV, B—DV. 6. Pattersoncypris micropapillosa Bate, 1972. ULVG-13486, instar A-2. A—RLV, B—DV. 8. Pattersoncypris salitrensis (Kr̂mmelbein & Weber, 1971). ULVG-13484, instar A-3. A—RLV, B—DV.
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.