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1,183 results for “Skeleton”
FIGURE 40 in Osteology of Tyrannosaurus rex: insights from a nearly complete skeleton and high-resolution computed tomographic analysis of the skull
FIGURE 40. FMNH PR2081, Tyrannosaurus rex, lower jaw. A and B, Left ramus in lateral (A) and medial (B) view. C and D, Right ramus in lateral (C) and medial (D) view. Scale = 30 cm. Abbreviations in Appendix 1. Photographs by J. Weinstein.
Low Poly Skeleton
Source: Objaverse 1.0 / Sketchfab
FIGURE 4 in Intraspecific variation of the caudal fin skeleton in Osteoglossum bicirrhosum Cuvier 1829 (Teleostei: Osteoglossomorpha: Osteoglossidae)
FIGURE 4. Caudal skeleton of Osteoglossum bicirrhosum. Specimens: a) UERJ-PMB 2; b) UERJ-PMB 3; c) UERJ- PMB 4; d) UERJ-PMB 5. Bone is shown in white, and cartilage in black. Anterior faces left.
FIGURE 7 in Intraspecific variation of the caudal fin skeleton in Osteoglossum bicirrhosum Cuvier 1829 (Teleostei: Osteoglossomorpha: Osteoglossidae)
FIGURE 7. Caudal skeleton of Osteoglossum bicirrhosum. Specimens: a) UERJ-PMB 50; b) UERJ-PMB 51; c) UERJ- PMB 45; d) MZUSP 18175-02. Anterior faces left.
FIGURE 11 in Intraspecific variation of the caudal fin skeleton in Osteoglossum bicirrhosum Cuvier 1829 (Teleostei: Osteoglossomorpha: Osteoglossidae)
FIGURE 11. Caudal skeleton of Arapaima gigas: a) INPA uncatalogued specimen; b) UERJ-PMB 128; caudal skeleton of Osteoglossum bicirrhosum: c) UERJ-PMB 100. Anterior faces left.
Mounted Parrot Skeleton
This specimen was documented with a Faro Arm scanner and processed in Geomagic, including the reconstruction of the inner areas. Documentation was done as part of a collaborative project between the Muséum national d'histoire naturelle, Paris, France and Global Digital Heritage, St. Petersburg, Florida, USA. High resolution model Source: Objaverse 1.0 / Sketchfab
Figure 1. A in Anatomical study of two previously undescribed specimens of Clevosaurus hudsoni (Lepidosauria: Rhynchocephalia) from Cromhall Quarry, UK, aided by computed tomography, yields additional information on the skeleton and hitherto undescribed bones
Figure 1. A, palaeogeographical map showing the principal Late Triassic/Early Jurassic tetrapod-bearing fissure deposits near Bristol, with current coastline superimposed (modified from Whiteside & Marshall, 2008). B, simplified geology map of the area around Cromhall Quarry. Mercia Mudstone Group is Triassic, Old Red Sandstone is Devonian and the other labelled strata are Carboniferous (geology map and legend derived from BGS website Open Science data, last accessed 29 October 2017).
Figure 11 in Anatomical study of two previously undescribed specimens of Clevosaurus hudsoni (Lepidosauria: Rhynchocephalia) from Cromhall Quarry, UK, aided by computed tomography, yields additional information on the skeleton and hitherto undescribed bones
Figure 11. Photographs and surface models of Clevosaurus hudsoni specimen NHMUK PV R36832. Left humerus in (A) anterodorsal, (B) dorsal and (C) ventral views. Left ulna in (D) dorsolateral, (E) anterior and (F) posterior views. G, left distal forelimb bones in lateral view. H, isolated distal left forelimb bones in lateral view.
RESTORATION OF TYRANNOSAURUS REX. From the type skeleton, Amer. Mus. No. 973. Many of the vertebrae belong to No. 5866. in Tyrannosaurus, upper Cretaceous carnivorous dinosaur. (Second communication.)
RESTORATION OF TYRANNOSAURUS REX. From the type skeleton, Amer. Mus. No. 973. Many of the vertebrae belong to No. 5866.
FIGURE 57. Axial skeletons. A in Significance of the sexual openings and supplementary structures on the phylogeny of brachyuran crabs (Crustacea, Decapoda, Brachyura), with new nomina for higher-ranked podotreme taxa
FIGURE 57. Axial skeletons. A, Ocypode sp. (Ocypodidae), male (MNHN): median plate continuous; B, Ucides cordatus (Linnaeus, 1763) (Ucididae), female (MNHN): discontinuous median plate along sternites 5–7. e, epimere; m, median plate; p, pleurites; s, sella turcica. Skeletons prepared by S. Secretan.
Figure 1 in Phylogenetic signal in the evolution of body colour and spicule skeleton in calcareous sponges
Figure 1. Maximum-likelihood (ML) tree based on a concatenated sequence of ITS1, 5.8S, ITS2 and the D2 region of 28S using the GTR model with six gamma categories. Bootstrap values for ML and maximum-parsimony (MP), respectively, are given on interior branches. An asterisk indicates ML interior branches that were not present on the MP topology. Thick branches specify those on which listed character changes were inferred.
Figure 19 in Ontogeny of the skeleton of Moenkhausia pittieri (Ostariophysi: Characiformes) with discussion on functional demands and ossification patterns in the Characidae
Figure 19. Sequence of ossification of Moenkhausia pittieri, highlighting the following complexes: (1) neurocranium: olfactory region (yellow), orbital region (orange), otic region (red) and occipital region (burgundy red); (2) splancnocranium: jaws (pink), hyopalatine arch (violet), hyoid arch (dark purple) and branchial arch (purple); (3) axial skeleton: post-Weberian (light blue) and Weberian bones (dark blue); (4) paired fins: dark green (pectoral) and light green (pelvic); (5) unpaired fins: caudal (brown), anal (light brown) and dorsal (beige); and (6) opercular series (light grey), orbital series (medium grey) and sclerotic (dark grey). A, early stages, showing bones that start to ossify from 3.4 mm notocord length (NL) to 6.2 mm standard length (SL). B, later stages, showing bones that start to ossify from 6.6 mm SL onwards.
Figure 16 in Ontogeny of the skeleton of Moenkhausia pittieri (Ostariophysi: Characiformes) with discussion on functional demands and ossification patterns in the Characidae
Figure 16. Anal fin of Moenkhausia pittieri. A, 6.8 mm standard length (SL), 34 days post-hatching (dph), with image horizontally inverted. B, 15.4 mm SL, 70 dph. C, adult, 28.8 mm SL. Abbreviations are explained in Table 1. Scale bars: 1 mm.
Figure 14 in Ontogeny of the skeleton of Moenkhausia pittieri (Ostariophysi: Characiformes) with discussion on functional demands and ossification patterns in the Characidae
Figure 14. Pelvic fin of Moenkhausia pittieri. A, 15.4 mm standard length (SL), 70 days post-hatching (dph). B, adult, 28.8 mm SL. Abbreviations are explained in Table 1. Scale bars: 0.5 mm.
Figure 8 in Ontogeny of the skeleton of Moenkhausia pittieri (Ostariophysi: Characiformes) with discussion on functional demands and ossification patterns in the Characidae
Figure 8. Hyopalatine arch and opercular series of Moenkhausia pittieri, in lateral view (A, B, D) and autopalatine dorsal view (C). A, 9.1 mm standard length (SL), 37 days post-hatching (dph), with subopercle removed. B, 10.9 mm SL, 61 dph, with image horizontally inverted. C, D, adult, 28.8 mm SL. Arrows indicate autogenous cartilages. Abbreviations are explained in Table 1. Scale bars: 0.5 mm.
Figure 5 in Ontogeny of the skeleton of Moenkhausia pittieri (Ostariophysi: Characiformes) with discussion on functional demands and ossification patterns in the Characidae
Figure 5. Posterior portion of neurocranium of Moenkhausia pittieri, showing the shift in the position of the intercalar over the horizontal semicircular canal during development. A, 9.5 mm standard length (SL), 49 days post-hatching (dph), with image horizontally inverted, lateral view. B, 11.6 mm SL, 58 dph, with image horizontally inverted, lateral view. C, adult, 28.8 mm SL, lateroventral view. Arrows indicate the intercalar. Abbreviations are explained in Table 1. Scale bars: 0.5 mm.
Fig 1 in The oldest known bat skeletons and their implications for Eocene chiropteran diversification
Fig 1. Skeleton of Holotype of Icaronycteris gunnelli (FM.145747A) A) Dorsal view; B) Counterpart (FM.145747B). https://doi.org/10.1371/journal.pone.0283505.g001
Fig 6 in The oldest known bat skeletons and their implications for Eocene chiropteran diversification
Fig 6. Phylogentic position of Icaronycteris gunnelli and other Eocene bat fossils with respect to extant bat lineages. A) Strict consensus of three most parsimonious trees of 1511 steps resulting from analyses including all taxa; B) Strict consensus of two most parsimonious trees of 1455 steps for analyses excluding Icaronycteris? menui and Icaronycteris sigei. Bootstrap values from 10,000 bootstrap replicates are shown above and to the left of nodes. Fossil taxa are represented by a dagger (†). https://doi.org/10.1371/journal.pone.0283505.g006
Fig. 3 in Bond reactivity indices approach analysis of the [2+2] cycloaddition of jatrophane skeleton diterpenoids from Euphorbia gaditana Coss to tetracyclic gaditanone
Fig. 3. Selected NOESY correlations exhibited by 3. β-face correlations in red and α-face correlations in blue. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 5 in Sesquiterpenes with diverse skeletons from histone deacetylase inhibitor modified cultures of the basidiomycete Cyathus stercoreus (Schwein.) De Toni HFG134
Fig. 5. Comparison of the experimental CD and calculated ECD of (A) (+)-5 and ()-5, and (B) (+)-8 and ()-8.
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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.