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.
686
datasets available to search
ShareScore release 0.9.0
Dataset results
686 results for “Lima”
Fig. 32 in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 32. Transverse CT scan slices of the Egertonodus braincase, BM(NH) P60110. Otic and occipital regions. No scale.
Fig. 34 in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 34. Medial view of the Egertonodus braincase (NHM P60110), sliced through the sagittal plane, anterior to the left (surface rendering). No scale.
Fig. 28. Tribodus limae cephalic spines. A–C, AMNH 13957, left cephalic spine. A in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 28. Tribodus limae cephalic spines. A–C, AMNH 13957, left cephalic spine. A, lateral; B, dorsal; C, mesial views. D–E, AMNH 13959, right cephalic spine. D, mesial; E, lateral views. Scale bar is 1 cm.
Fig. 29 in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 29. Braincase of Egertonodus basanus BM(NH) P60110, which was CT scanned for the present study. A, dorsal; B, ventral, and C, left lateral views. After Maisey, 1983. Features labeled according to Maisey's (1983) original description; an alternative interpretation is presented in figs. 29–33 and in the text of the present paper. Scale bar is 2 cm.
Fig. 30 in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 30. Transverse CT scan slices of the Egertonodus braincase, BM(NH) P60110. Ethmoidal and orbital regions. No scale.
Fig. 26 in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 26. (A) top, (B) bottom, and (C) lateral views of left cephalic spine of Tribodus limae (UERJ-PMB-
Fig. 36. A–C in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 36. A–C, Skeletal labyrinth of Egertonodus basanus (surface renderings), A, lateral; B, dorsal; C, medial views. D–F, Skeletal labyrinth of Tribodus limae, reconstructed by Maisey (2005), D, lateral; E, dorsal; F, medial views. No scale.
Fig. 23 in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 23. Close-up of posterior basicranial foramina in Tribodus limae (UERJ-PMB-40). Scale bar is 1 cm.
Fig. 22 in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 22. Lateral view of the Tribodus endocast and skeletal labyrinth, anterior to the right (surface rendering). No scale.
Fig. 31 in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 31. Transverse CT scan slices of the Egertonodus braincase, BM(NH) P60110. Orbital and otic regions. No scale.
Fig. 35. A in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 35. A, dorsal; B, ventral; and C, lateral views of the Egertonodus endocast (surface renderings). No scale.
Fig. 21 in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 21. Anterior (A) and posterior (B) views of the Tribodus endocast and skeletal labyrinth (surface renderings). No scale.
Fig. 20 in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 20. Ventral view of the Tribodus endocast and skeletal labyrinth, anterior at top (surface rendering). No scale.
Fig. 19 in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 19. Dorsal view of the Tribodus endocast and skeletal labyrinth, anterior at top (surface rendering). No scale.
Fig. 25 in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 25. Close-up of the head region of Tribodus limae (AMNH 13959) showing right cephalic spine in situ, after acid preparation. Anterior to the left. Scale bar is 1.5 cm.
Fig. 18 in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 18. Lateral view of the Tribodus limae endocast with otic labyrinth removed, anterior to the right
Fig. 15 in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 15. Dorsal view of the Tribodus limae endocast with otic labyrinth removed, anterior at top (surface rendering). No scale.
Fig. 38 in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 38. Reconstructions of the basicranial circulation in Tribodus limae. A, ventral (external) view of the braincase showing the basicranial arterial circuit; solid lines represent vessels visible on the surface or external to the cartilage, and dashed lines represent those internal to the cartilage or endocranial space; B, dorsal cutaway (interior) view of the floor of the cranial cavity, showing the same vessels as seen from above; note the internal carotid arteries emerging from the basicranial cartilage through paired foramina in the floor of the braincase anterior to the dorsum sellae, and then diverging to form the optic artery anteriorly and the efferent pseudobranchial/ophthalmic artery posteriorly (the latter divides after exiting the braincase). Solid lines represent vessels visible on the surface of the cutaway (on the floor of the cranial cavity), and dashed lines represent vessels internal to the cartilage or ventral to the basicranium (compare with A). No scale.
Fig. 41. A in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 41. A, Composite reconstruction showing probable extent of embryonic cartilages in Tribodus limae; the postorbital process, otic capsule, and antorbital process have been cut away to show the foramina. B, Reconstruction showing probable extent of embryonic cartilages in Egertonodus basanus. Color scheme based on Maisey (2005), for easier comparison with his reconstructions of the embryonic cartilages in other elasmobranchs. No scale.
Fig. 16 in Morphology of the Braincase in the Cretaceous Hybodont Shark Tribodus limae (Chondrichthyes: Elasmobranchii), Based on CT Scanning
Fig. 16. Ventral view of the Tribodus limae endocast with otic labyrinth removed, anterior at top (surface rendering). No scale.
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.