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.
965
datasets available to search
ShareScore release 0.9.0
Dataset results
965 results for “Theropods”
Fig. 16 in The Perinate Skull of Byronosaurus (Troodontidae) with Observations on the Cranial Ontogeny of Paravian Theropods
Fig. 16. Lateral (A) and medial (B) views of an articulated prootic and exoccipital/opisthotic in a perinate Struthio camelus. Note the medial opening of the metotic fissure is divided—in contrast to the undivided metotic foramen of IGM 100/974.
Fig. 18 in The Perinate Skull of Byronosaurus (Troodontidae) with Observations on the Cranial Ontogeny of Paravian Theropods
Fig. 18. Parabasisphenoid of IGM 100/974 in left lateral (A, A9), right lateral (B, B9), and rostrodorsal
Fig. 15 in The Perinate Skull of Byronosaurus (Troodontidae) with Observations on the Cranial Ontogeny of Paravian Theropods
Fig. 15. Horizontal slice (A) through the braincase of the holotype of Byronosaurus jaffei (IGM 100/983) (B) showing the presence of pneumatic cavity in the base of the paroccipital process. The cavity is associated with a pair of rostral foramina and is inferred to result from invasion of the paroccipital process by diverticula of a posterior tympanic sinus residing in the posterior tympanic recess. The pneumatic cavity in the paroccipital process is largely infilled with a mineral inclusion that renders as a bright white in the figure. The white, horizontal line through the braincase (B) shows the position of the slice (A). Rostral is to the left, dorsal to the top.
Fig. 12 in The Perinate Skull of Byronosaurus (Troodontidae) with Observations on the Cranial Ontogeny of Paravian Theropods
Fig. 12. Left dorsolateral view of IGM 100/972. Note the broad lacrimal shelf and well-preserved left palatine.
Fig. 11 in The Perinate Skull of Byronosaurus (Troodontidae) with Observations on the Cranial Ontogeny of Paravian Theropods
Fig. 11. Right dorsolateral view of the caudal half of IGM 100/972 showing the right ectopterygoid and jugal, the caudal ends of both pterygoids, and the rostral end of the parasphenoid process of the parabasisphenoid.
Fig. 13 in The Perinate Skull of Byronosaurus (Troodontidae) with Observations on the Cranial Ontogeny of Paravian Theropods
Fig. 13. Left caudolateral view of the rostrum of IGM 100/972 showing the rostral walls of the antorbital fossa and maxillary antrum.
Fig. 5 in The Perinate Skull of Byronosaurus (Troodontidae) with Observations on the Cranial Ontogeny of Paravian Theropods
Fig. 5. Map of Mongolia showing the geographic position of Ukhaa Tolgod (Late Cretaceous, Djadoktha Formation).
Fig. 9 in The Perinate Skull of Byronosaurus (Troodontidae) with Observations on the Cranial Ontogeny of Paravian Theropods
Fig. 9. Lacrimal and surrounding region of IGM 100/972 (A, A9 right; B, B9 left) and IGM 100/974 (C, C9, right).
Fig. 1 in The Perinate Skull of Byronosaurus (Troodontidae) with Observations on the Cranial Ontogeny of Paravian Theropods
Fig. 1. Right (A, A9) and left lateral (B, B9) views of IGM 100/972, a Late Cretaceous perinate troodontid from Ukhaa Tolgod, Mongolia.
Fig. 3 in The Perinate Skull of Byronosaurus (Troodontidae) with Observations on the Cranial Ontogeny of Paravian Theropods
Fig. 3. Right (A, A9) and left lateral (B, B9) views of IGM 100/974, a Late Cretaceous perinate troodontid from Ukhaa Tolgod, Mongolia. The partial braincase preserved with this specimen was removed and prepared separately.
Fig. 7 in The Perinate Skull of Byronosaurus (Troodontidae) with Observations on the Cranial Ontogeny of Paravian Theropods
Fig. 7. Left lateral views of the rostrum in IGM 100/972 (A) and IGM 100/974 (B) and a dorsolateral view of the right side of the rostrum in IGM 100/974 (C).
Fig. 17 in Cranial Osteology of the Theropod Dinosaur Incisivosaurus gauthieri (Theropoda: Oviraptorosauria)
Fig. 17. Anterior and posterior views of the endocranial cast of the holotype of Incisivosaurus gauthieri
Fig. 16 in Cranial Osteology of the Theropod Dinosaur Incisivosaurus gauthieri (Theropoda: Oviraptorosauria)
Fig. 16. Dorsal and ventral views of the endocranial cast of the holotype of Incisivosaurus gauthieri
Fig. 12 in Cranial Osteology of the Theropod Dinosaur Incisivosaurus gauthieri (Theropoda: Oviraptorosauria)
Fig. 12. Ventrolateral view of the left side of the braincase of the holotype of Incisivosaurus gauthieri
Fig. 10 in Cranial Osteology of the Theropod Dinosaur Incisivosaurus gauthieri (Theropoda: Oviraptorosauria)
Fig. 10. Axial CT slices through the skull of the holotype of Incisivosaurus gauthieri (IVPP V 13326) showing the pneumatic recesses within the facial region. Abbreviations in appendix 1.
Fig. 8 in Cranial Osteology of the Theropod Dinosaur Incisivosaurus gauthieri (Theropoda: Oviraptorosauria)
Fig. 8. Ventrolateral view of the skull of the holotype of Incisivosaurus gauthieri (IVPP V 13326). Abbreviations in appendix 1.
Fig. 7 in Cranial Osteology of the Theropod Dinosaur Incisivosaurus gauthieri (Theropoda: Oviraptorosauria)
Fig. 7. The mandible of the holotype of Incisivosaurus gauthieri (IVPP V 13326) in (A) ventral and (B) dorsal views. View (C) shows magnified dorsal view of dentary teeth.
Fig. 5 in Cranial Osteology of the Theropod Dinosaur Incisivosaurus gauthieri (Theropoda: Oviraptorosauria)
Fig. 5. The skull of the holotype of Incisivosaurus gauthieri (IVPP V 13326) in (A) anterior and (B) posterior views. Abbreviations in appendix 1.
Fig. 15 in Cranial Osteology of the Theropod Dinosaur Incisivosaurus gauthieri (Theropoda: Oviraptorosauria)
Fig. 15. Lateral views of the endocranial cast of the holotype of Incisivosaurus gauthieri (IVPP V 13326). Abbreviations in appendix 1.
Fig. 14 in Cranial Osteology of the Theropod Dinosaur Incisivosaurus gauthieri (Theropoda: Oviraptorosauria)
Fig. 14. Lateral, dorsal, and anterior views (respectively) of the endocasts of the inner ear of Incisivosaurus gauthieri (IVPP V 13326). Abbreviations in appendix 1.
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.