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Figure 10 in New specimens of Baurutitan britoi and a taxonomic reassessment of the titanosaur dinosaur fauna (Sauropoda) from the Serra da Galga Formation (Late Cretaceous) of Brazil
Figure 10 Most anterior caudal vertebra of the BR-262 specimens. CPPLIP-102 in (A) anterior; (B) left lateral; (C) dorsal; (D) posterior; (E) right lateraland (F) ventral views. Abbreviations: posl, postspinal lamina; poz, postzygapophyses; prdl, prezygodiapophyseal lamina; prsdf, prezygapophyseal spinodiapophyseal fossa; prsl, prespinal lamina; prz, prezygapophyses; spof, spinopostzygapophyseal fossa; spol, spinopostzygapophyseal lamina; sprl, spinoprezygapophyseal lamina; tp, transverse process. Full-size DOI: 10.7717/peerj.14333/fig-10
Figure 2 in New specimens of Baurutitan britoi and a taxonomic reassessment of the titanosaur dinosaur fauna (Sauropoda) from the Serra da Galga Formation (Late Cretaceous) of Brazil
Figure 2 (A) Map of the Bauru Basin detailing the Uberaba region. (B) Map of "Ponto 1" quarry made by Price, detailing positions of Series B (Purple) and C (Yellow). Itisnoteworthythat MCT 1719-Rcannotbelocatedonthemap (Fromthearchivesof CPPLIP). Full-size DOI: 10.7717/peerj.14333/fig-2
FIGURE 5 in A new ornithopod dinosaur, <i>Transylvanosaurus platycephalus</i> gen. et sp. nov. (Dinosauria: Ornithischia), from the Upper Cretaceous of the Haţeg Basin, Romania
FIGURE 5. Transylvanosaurus platycephalus gen. et sp. nov., holotype basicranium, FGGUB (LPB) R.2070, in dorsal and ventral view. A, photo and B, drawing of the basicranium in dorsal view. C, photo and D, drawing of the basicranium in ventral view. Abbreviations: boc, basioccipital; bpt, basipterygoid process; bsp, basisphenoid; btu, basal tubera; cn, cranial nerve; exo, exoccipital; fov, foramen ovalis; mri, midline ridge on the basal tubera; lsp, laterosphenoid; opi, opisthotic; pap, paroccipital process; pit, pituitary fossa; pro, prootic; prp, prootic process.
FIGURE 3 in A new ornithopod dinosaur, <i>Transylvanosaurus platycephalus</i> gen. et sp. nov. (Dinosauria: Ornithischia), from the Upper Cretaceous of the Haţeg Basin, Romania
FIGURE 3. Transylvanosaurus platycephalus gen. et sp. nov., holotype basicranium, FGGUB (LPB) R.2070, in lateral view. A, photo and B, drawing of the basicranium in left lateral view. C, photo and D, drawing of the basicranium in right lateral view. Abbreviations: alp, alar process; boc, basioccipital; bpt, basipterygoid process; bsp, basisphenoid; btu, basal tubera; cn, cranial nerve; ctr, crista transversalis; ctu, crista tuberalis; exo, exoccipital; fov, foramen ovalis; ica, opening for the internal carotid artery; lgr, lateral groove; lsp, laterosphenoid; opi, opisthotic; pap, paroccipital process; pro, prootic; prp, prootic process.
Fig. 2 in A new diplodocoid sauropod dinosaur from the Upper Jurassic Morrison Formation of Montana, USA
Fig. 2. Axial elements of Suuwassea emilieae ANS 21122. A. Atlas in left lateral view. B. Fifth cervical vertebra in right lateral view. C. Sixth cervical vertebra in cranial view. D.?Fourth dorsal vertebra in right lateral (D1) and cranial (D2) views. E. Distal caudal vertebra in lateral (E1) and end (E2) views. F. "Whiplash" caudal vertebra in lateral (F1) and end (F2) views. Scale bars 5 cm; scales do not apply to close−ups E2 and F2.
Fig. 21 in The lambeosaurine dinosaur Amurosaurus riabinini, from the Maastrichtian of Far Eastern Russia
Fig. 21. Stratigraphically−calibrated cladogram of phylogenetic relationships of Lambeosaurinae, including Amurosaurus. Solid symbols indicate stratigraphical occurrence of a taxon, whereas hatched symbols indicate ghost lineages. Asian taxa are underlined. Dates are millions of years before present.
Fig. 16. Amurosaurus riabinini. A in The lambeosaurine dinosaur Amurosaurus riabinini, from the Maastrichtian of Far Eastern Russia
Fig. 16. Amurosaurus riabinini. A. Left tibia (AEHM 1/969) in lateral (A1), cranial (A2), medial (A3) and caudal (A4) views. B. Left fibula (AEHM 1/266) in medial (B1) and lateral (B2) views.
Fig. 11 in The lambeosaurine dinosaur Amurosaurus riabinini, from the Maastrichtian of Far Eastern Russia
Fig. 11. Left dentary of Amurosaurus riabininini (AEHM 1/12) in medial (A, C) and lateral (B, D) views.
Fig. 2 in The lambeosaurine dinosaur Amurosaurus riabinini, from the Maastrichtian of Far Eastern Russia
Fig. 2. Stratigraphic section of the dinosaur locality at Blagoveschensk. Abbreviation: K2Maa2, Udurchukan Formation (Maastrichtian).
Fig. 13. Amurosaurus riabinini. A in The lambeosaurine dinosaur Amurosaurus riabinini, from the Maastrichtian of Far Eastern Russia
Fig. 13. Amurosaurus riabinini. A. Right coracoid (AEHM 1/271) in cranial view. B. Right sternum (AEHM 1/272) in caudal view. C. Left scapula (AEHM 1/273) in ventral (C1) and lateral (C2) views.
Fig. 18 in The lambeosaurine dinosaur Amurosaurus riabinini, from the Maastrichtian of Far Eastern Russia
Fig. 18. Skeletal reconstruction of Amurosaurus riabinini Bolotsky and Kurzanov, 1991. Black elements are not preserved in the available material.
Fig. 17. Amurosaurus riabinini. A in The lambeosaurine dinosaur Amurosaurus riabinini, from the Maastrichtian of Far Eastern Russia
Fig. 17. Amurosaurus riabinini. A. Left astragalus (AEHM 1/274) in dorsal (A1) and cranial (A2) views. B. Right metatarsal IV (AEHM 1/286) in dorsal (B1) and medial (B2) views. C. Right metatarsal III (AEHM 1/285) in dorsal (C1) and medial (C2) views. D. Left metatarsal II (AEHM 1/284; mirror image) in dorsal (D) and medial (D) views. E. Right 4th proximal phalanx (AEHM 1/294) in lateral (E) and dorsal (E) views. F. Right 3rd proximal phalanx 1 2 1 2 (AEHM 1/283) in dorsal (F) and medial (F) views. G. Right 2nd proximal phalanx (AEHM 1/292) in dorsal (G) ans medial (G) views.
Fig. 2. Ingenia yanshini Barsbold, 1983. GIN 100 in Evidence on relation of brain to endocranial cavity in oviraptorid dinosaurs
Fig. 2. Ingenia yanshini Barsbold, 1983. GIN 100/31. Stereophotograph of latex cast of the frontoparietal fragment; transverse ridges across central region of the cast mark edges of bone lamellae; ridges on right hemisphere are due to abrasion of bone. Scale bar 10 mm.
Fig. 4 in First Cenomanian dinosaur from Central Europe (Czech Republic)
Fig. 4. Details of the surface of the left femur of cf. Iguanodontidae gen. et sp. indet. showing bite marks probably caused by sharks.
Fig. 1 in First Cenomanian dinosaur from Central Europe (Czech Republic)
Fig. 1. Late Cenomanian Central European palaeogeography. Modified after Malkovský et al. (1974), Diedrich (2001), Čech and Valečka (1991).
Fig. 3 in Wear facets and enamel spalling in tyrannosaurid dinosaurs
Fig. 3. Tyrannosaurid lateral tooth with parallel striations on wear facet (A, B) compared to wear striations on the P4 carnassial facet of an African lion, Panthera leo (C). A, B. Opposite sides of TMP 80.16.864. C. SAM 36975.
Fig. 1 in Wear facets and enamel spalling in tyrannosaurid dinosaurs
Fig. 1. Lateral view of Daspletosaurus torosus maxilla TMP 97.12.223 (A) and expanded view of a tooth with a spalled surface (B).
Figure 3 in How has our knowledge of dinosaur diversity through geologic time changed through research history?
Figure 3 The number of invalidated or revised dinosaur taxa between 1991 and 2015.
Data from: Morphological innovation and the evolution of hadrosaurid dinosaurs
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Testing size-frequency distributions as a method of ontogenetic aging: a life history assessment of hadrosaurid dinosaurs from the Dinosaur Park Formation of Alberta, Canada, with implications for hadrosaurid paleoecology
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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.