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Fig. 13 in Cranial Osteology of the Theropod Dinosaur Incisivosaurus gauthieri (Theropoda: Oviraptorosauria)
Fig. 13. Sagittal cutaway of a virtual rendering of the skull of the holotype of Incisivosaurus gauthieri
Fig. 3 in Cranial Osteology of the Theropod Dinosaur Incisivosaurus gauthieri (Theropoda: Oviraptorosauria)
Fig. 3. The skull of the holotype of Incisivosaurus gauthieri (IVPP V 13326) in (A) right lateral and (B) left lateral views. Abbreviations in appendix 1.
FIG. 10 in A new specimen of the ornithischian dinosaur Haya griva, cross-Gobi geologic correlation, and the age of the Zos Canyon beds
FIG. 10. Looking south from the base of the Zos Canyon section. The arrow indicates the Red Rum sublocality.
FIG. 9. B in A new specimen of the ornithischian dinosaur Haya griva, cross-Gobi geologic correlation, and the age of the Zos Canyon beds
FIG. 9. B. Shared diagnostic character (6) a shallow depression along the midline nasal suture anterior to the orbits on the dorsal surface of the skull.
FIG. 9. A in A new specimen of the ornithischian dinosaur Haya griva, cross-Gobi geologic correlation, and the age of the Zos Canyon beds
FIG. 9. A. Comparison of IGM 100/3181 (top) with the holotype of Haya griva (IGM 100/2017, bottom). Shared diagnostic characters (Makovicky et al., 2011) are: (1) homodont unserrated premaxillary teeth, (2) the lack of a rugose rhamphothecal pad on the anterior surface of the premaxilla, (3) the presence of a triangular maxillary fenestra, (4) a jugal with a bifurcated (forklike) posterior ramus where it abuts the quadratojugal, (5) the presence of a quadratojugal foramen.
FIG. 4. A in A new specimen of the ornithischian dinosaur Haya griva, cross-Gobi geologic correlation, and the age of the Zos Canyon beds
FIG. 4. A. Premaxillary tooth of IGM 100/3181 in mesial and distal views. Its precise orientation cannot be determined as it was found as float during preparation. B. Cheek tooth of IGM 100/3181. Its precise orientation cannot be determined as it was found as float during preparation, and is compatible with the morphology of both upper and lower teeth of referred Haya specimens.
FIG. 3 in A new specimen of the ornithischian dinosaur Haya griva, cross-Gobi geologic correlation, and the age of the Zos Canyon beds
FIG. 3. The left side of the cranium of IGM 100/3181, with interpretive drawing. Abbreviations are listed in appendix 1.
FIG. 1 in A new specimen of the ornithischian dinosaur Haya griva, cross-Gobi geologic correlation, and the age of the Zos Canyon beds
FIG. 1. Map of Mongolia showing the relative positions of the Javkhlant Formation exposures and Zos Canyon beds (near Ukhaa Tolgod). Zos Canyon is 7 km northwest of the Ukhaa Tolgod locality. See Pol and Norell (2004a: fig. 1) for detail.
FIGURE 12 in The cranial pneumatic sinuses of the tyrannosaurid Alioramus (Dinosauria: Theropoda) and the evolution of cranial pneumaticity in theropod dinosaurs
FIGURE 12. Surangular pocket shown in sagittal slices from most lateral (A) to most medial (D). Arrow points to pneumatic pocket. Pocket can be seen dissipating into the trabecular bone of the surangular. Scale bar = 40 mm.
FIGURE 10 in The cranial pneumatic sinuses of the tyrannosaurid Alioramus (Dinosauria: Theropoda) and the evolution of cranial pneumaticity in theropod dinosaurs
FIGURE 10. Right ectopterygoid in ventral (A), dorsal (B), lateral (C), and medial (D) views. Left column shows renders the bone semitransparent, right column shows the isolated sinus. Scale bar = 10 mm.
FIGURE 7 in The cranial pneumatic sinuses of the tyrannosaurid Alioramus (Dinosauria: Theropoda) and the evolution of cranial pneumaticity in theropod dinosaurs
FIGURE 7. Right quadrate in lateral (A), medial (B), dorsal (C), and ventral (D) views. Left column shows renders the bone semitransparent, right column shows the isolated sinus. Scale bar = 20 mm.
FIGURE 5 in The cranial pneumatic sinuses of the tyrannosaurid Alioramus (Dinosauria: Theropoda) and the evolution of cranial pneumaticity in theropod dinosaurs
FIGURE 5. Left jugal in lateral (A), medial (B), dorsal (C), and ventral (D) views. Left column shows renders the bone semitransparent, right column shows the isolated sinus. Scale bar = 25 mm.
FIGURE 4 in The cranial pneumatic sinuses of the tyrannosaurid Alioramus (Dinosauria: Theropoda) and the evolution of cranial pneumaticity in theropod dinosaurs
FIGURE 4. Left lacrimal (A), medial (B), dorsal (C), and ventral (D) views. Left column shows renders the bone semitransparent, right column shows the isolated sinus. Scale bar = 25 mm.
FIGURE 8 in The cranial pneumatic sinuses of the tyrannosaurid Alioramus (Dinosauria: Theropoda) and the evolution of cranial pneumaticity in theropod dinosaurs
FIGURE 8. Left palatine in lateral (A), medial (B), dorsal (C), and ventral (D) views. Left column shows renders the bone semitransparent, right column shows the isolated sinus. Scale bar = 15 mm.
FIGURE 15 in The cranial pneumatic sinuses of the tyrannosaurid Alioramus (Dinosauria: Theropoda) and the evolution of cranial pneumaticity in theropod dinosaurs
FIGURE 15. Pneumatic features on selected cranial bones of Tarbosaurus bataar (ZPAL collection). Main body of left lacrimal ZPAL MgD-I/4 in lateral view (A), anterior ramus of left lacrimal ZPAL MgD-I/4 in lateral view (B); left palatine ZPAL MgD-I/4 in lateral view (C), right squamosal ZPAL MgD-I/4 in ventral view (D), right ectopterygoid ZPAL MgD-I/34 in ventral view (E); left surangular ZPAL MgD-I/3 in lateral view (F). Scale bars = 3 cm. Arrows denote external pneumatic features (foramina and fenestrae).
FIGURE 11 in The cranial pneumatic sinuses of the tyrannosaurid Alioramus (Dinosauria: Theropoda) and the evolution of cranial pneumaticity in theropod dinosaurs
FIGURE 11. Left surangular in lateral (A), medial (B), dorsal (C), and ventral (D) view. Scale bar = 30 mm.
FIGURE 1 in The cranial pneumatic sinuses of the tyrannosaurid Alioramus (Dinosauria: Theropoda) and the evolution of cranial pneumaticity in theropod dinosaurs
FIGURE 1. Left maxilla in lateral (A), medial (B), dorsal (C), and ventral (D) views. Left column shows antorbital sinus in approximate life position, with maxilla semitransparent. Middle column shows maxilla semitransparent without the antorbital sinus. Right column shows isolated maxillary sinus. Scale bar = 45 mm.
FIGURE 3 in The cranial pneumatic sinuses of the tyrannosaurid Alioramus (Dinosauria: Theropoda) and the evolution of cranial pneumaticity in theropod dinosaurs
FIGURE 3. Right lacrimal in lateral (A), medial (B), dorsal (C), and ventral (D) views. Left column shows renders the bone semitransparent, right column shows the isolated sinus. Scale bar = 25 mm.
FIGURE 13 in The cranial pneumatic sinuses of the tyrannosaurid Alioramus (Dinosauria: Theropoda) and the evolution of cranial pneumaticity in theropod dinosaurs
FIGURE 13. Right angular in lateral (A), medial (B), dorsal (C), and ventral (D) views. Scale bar = 20 mm.
FIGURE 6 in The cranial pneumatic sinuses of the tyrannosaurid Alioramus (Dinosauria: Theropoda) and the evolution of cranial pneumaticity in theropod dinosaurs
FIGURE 6. Squamosal and postorbital in lateral (A), medial (B), dorsal (C), and ventral (D) views. Red box in (A) shows location of images in (B), (C), and (D). Left column shows renders the bone semitransparent, right column shows the isolated sinus. Scale bar = 15 mm.
ScienceDex guides
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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.