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Figure 15 in The anatomy of the basal ornithischian dinosaur Eocursor parvus from the lower Elliot Formation (Late Triassic) of South Africa
Figure 15. Eocursor parvus, holotype (SAM-PK-K8025). Right femur in medial (A), caudal (B), lateral (C), cranial (D), proximal (E), and distal (F), views. Abbreviations: crt, cranial trochanter; cflf, depression for M. caudofemoralis longus; dlt, 'dorsolateral' trochanter; faa, facies articularis antitrochanterica; fcf, fibular condyle of femur; fhls, ligament sulcus on femoral head; fhmt, medial tubercle of femoral head; fost, fossa trochanteris; ft, fourth trochanter; lcf, lateral condyle of femur; mcf, medial condyle of femur; nt, notch separating cranial and 'dorsolateral' trochanters; cicg, caudal intercondylar groove. Scale bar = 10 mm.
Figure 5 in A juvenile skull of Dysalotosaurus lettowvorbecki (Ornithischia: Iguanodontia), and implications for cranial ontogeny, phylogeny, and taxonomy in ornithopod dinosaurs
Figure 5. Comparison of two preserved jugals of Dysalotosaurus in lateral view. A, left jugal of the juvenile skull BSPG AS I 834. B, left jugal of the relatively older individual dyB (MB.R.1333). Note the ontogenetic differences of the lacrimal facet (lf) and the postorbital facet (pof). Scale bar: 1 cm.
Figure 3 in A juvenile skull of Dysalotosaurus lettowvorbecki (Ornithischia: Iguanodontia), and implications for cranial ontogeny, phylogeny, and taxonomy in ornithopod dinosaurs
Figure 3. Stereo pairs of the skull BSPG AS I 834 and explanatory sketches. The sketches are relatively enlarged for better resolution. Dark grey illustrates sediment, light grey illustrates inner views of, e.g. the frontals or the dentaries, and hatched areas illustrate broken or corroded surfaces. The label affixes -r and -l stand for right and left of the respective element, where the distinction of each side is difficult to see. A, right lateral view. B, outline drawing of the ventral view. C, outline drawing of the right lateral view. D, ventral view. See Material and methods for a list of the abbreviations. Scale bars: 1 cm.
Figure 7 in A juvenile skull of Dysalotosaurus lettowvorbecki (Ornithischia: Iguanodontia), and implications for cranial ontogeny, phylogeny, and taxonomy in ornithopod dinosaurs
Figure 7. Comparison of the cranial base of two individuals of Dysalotosaurus. Small arrows indicate the location of the suture between the basioccipital and the basisphenoid. Larger arrows indicate the location of the tuberi basioccipitalia. Note also the shape of the ventral lip of the occipital condyle. A, the large cranial base of dyA (MB.R.1373) consists of the basioccipital, the basisphenoid with the long ventral basipterygoid processes, and the anteriorly incomplete parasphenoid; left lateral view. B, the smallest known cranial base (MB.R.3536) consists of the basioccipital and the posterior half of the basisphenoid; left lateral view. C, same as (B); ventral view. D, Same as (A), ventral view. Scale bar: 1 cm.
Figure 5 in Reappraisal and new material of the holotype of Draconyx loureiroi (Ornithischia: Iguanodontia) provide insights on the tempo and modo of evolution of thumb-spiked dinosaurs
Figure 5. Manual elements of Draconyx loureiroi holotype ML 357 (ML 357 1-5, 20-26), including articulated partial carpus, manual phalanges and unguals (A–L). Articulated partial carpus (ML 357 – 5) in extensor view (A), right phalanx n.1(ML 357 – 4) in dorsal view (B), lateral view (B1), proximal view (B2) and distal view (B3), left phalanx n.2 (ML 357 – 22) in dorsal view (C), lateral view (C1), proximal view (C2) and distal view (C3), left phalanx n.3 (ML 357 – 21) in dorsal view (D), lateral view (D1), proximal view (D2) and distal view (D3), left phalanx n.4 (ML 357 – 24) in dorsal view (E), lateral view (E1), proximal view (E2) and distal view (E3), isolated distal ends of tarsals (ML 357 – 25,26) in extensor view (F, G), left ungual phalanx n.1 in dorsal view (D), mediolateral view (D1) and proximal view (D2), left ungual phalanx n.1 (ML 357- 1) in dorsal view (H), mediolateral view (H1) and proximal view (H2), right ungual phalanx n.2 (ML 357 – 2) in dorsal view (I), mediolateral view (I1) and proximal view (I2), right ungual phalanx n.3 (ML 357 – 3) in dorsal view (J), mediolateral view (J1) and proximal view (J2), left ungual phalanx n.4 in dorsal view (K), mediolateral view (K1) and proximal view (K2), ungual phalanx n.5 (ML 357 – 20) in dorsal view (L), mediolateral view (L1) and proximal view (L2).
Figure 3 in Reappraisal and new material of the holotype of Draconyx loureiroi (Ornithischia: Iguanodontia) provide insights on the tempo and modo of evolution of thumb-spiked dinosaurs
Figure 3. General overview of Draconyx loureiroi holotype ML 357 post-cranial skeleton. Caudal vertebrae (K-M) in left lateral view. Right femur (A–E) in frontal (A), medial (B), caudal (C), lateral (D) and distal (E) views. Right tibia in medial (F) and lateral (G) views. Proximal end of the fibula in medial (I) and lateral (J) views. Right articulated pes in dorsal (N) and medial (Q) view. Pedal digit III (O) and pedal digit II (P) in dorsal view.
Plate i in A new carnivorous dinosaur from the Lance Formation of Montana
Plate i Skull and jaws of Gorgosaurtis lancensis viewed from the left side. Type. C.M.N.H. No. 7541. p, palatine; v, vomer. About \ natural size
Extended Data Fig. 7 in A new Jurassic scansoriopterygid and the loss of membranous wings in theropod dinosaurs
Extended Data Fig. 7 | Time-scaled recovered strict-consensus tree of Mesozoic coelurosaurians. Bremer and bootstrap values are labelled near the corresponding node in bold italic and upright non-bold font, respectively.
Fig. 3 in A new Jurassic scansoriopterygid and the loss of membranous wings in theropod dinosaurs
Fig. 3 | Phylogeny and phylomorphospace of Mesozoic coelurosaurians. a, Simplified phylogeny showing the position of Ambopteryx (see Extended Data Fig. 7 for complete results, and full names for age and stage abbreviations). Myr, million years. b, c, Phylomorphospace based on principal component (PC)1 and PC2 (57 taxa) when both fore- and hindlimbs are included (b), and on PC1 and PC2 when only the forelimb is considered (c). Non-avian coelurosaurians are shown in grey, Oviraptorosauria in purple, Scansoriopterygidae in red, Deinonychosauria in green and Aves in blue. Silhouette of Archaeopteryx was from http:// phylopic.org/. Line drawings of the forelimbs of Deinocheirus, Microraptor, Ambopteryx and Dapingfangensis highlight the fact that, uniquely, scansoriopterygids have an elongate forelimb but short metacarpals.
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.
Fig. I in Tyrannosaurus, upper Cretaceous carnivorous dinosaur. (Second communication.)
Fig. I. Skull of Tryrannosaurus. d, dentary; sur, surangular; sq, squamosal; ir,prefrontal; o, orbit; nba, anterior nares; I, 2, 3, antorbital openings. Dotted outlines arefrom A Iosaucrus.
FIGURE 3. A in Oology And The Evolution Of Thermophysiology In Saurischian Dinosaurs: Homeotherm And Endotherm Deinonychosaurians?
FIGURE 3. A. SEM of an oviraptorid egg (IGM 100/979). Note the bi-layered eggshell structure, with layer 1 consisting of acicular calcitic crystals and where the contact between layers 1 and 2 is aprismatic (dotted line). B and C. SEMs of troodontids T. formosus and B. jaffei. Note the similarity of the microstructure of the eggshells among these two troodontids and the Chinese egg, clutch LX09XLOZLX0001-2156. Also note the significant difference of crystallization in layer 1 between oviraptorids and troodontids as well as the type of contact between structural layers 1 and 2. The dotted lines denote the border between layers 1 and 2 and arrows the voids in all figures. Arrows in layer two points to voids that are more numerous in this second structural layer than in layer 1. These voids are the mold of protein matter that normally composed 2% of eggshell and were destroyed during the process of fossilization.
text-fig. 41. Articulated pubes of two theropods in anterior view, illustrating different states of character 182. A, Herrerasaurus ischigualastensis', redrawn from Novas (1993). B, unnamed compsognathine from the Lower Cretaceous of Brazil; SMNK 2349 Pal. Scale bars represent 50 mm (a) and 10 mm (b). in The interrelationships and evolution of basal theropod dinosaurs
text-fig. 41. Articulated pubes of two theropods in anterior view, illustrating different states of character 182. A, Herrerasaurus ischigualastensis', redrawn from Novas (1993). B, unnamed compsognathine from the Lower Cretaceous of Brazil; SMNK 2349 Pal. Scale bars represent 50 mm (a) and 10 mm (b).
FIGURE 1. MPC-D 100 in A new name for the oviraptorid dinosaur "Ingenia" yanshini (Barsbold, 1981; preoccupied by Gerlach, 1957)
FIGURE 1. MPC-D 100/30, holotype of Ajancingenia yanshini gen. nov. a, right manus, dorsal view; b, right pes, anterior view.
Figure 1 in Reassessment of cf. Halticosaurus orbitoangulatus from the Upper Triassic (Norian) of Germany - a pseudosuchian, not a dinosaur
Figure 1. Simplified map of south-western Germany with exposures of Keuper strata (shown in light grey) and with locations of the Stromberg plateau and the town of Pfaffenhofen.
Figure 1 in The osteology of the early-diverging dinosaur Daemonosaurus chauliodus (Archosauria: Dinosauria) from the Coelophysis Quarry (Triassic: Rhaetian) of New Mexico and its relationships to other early dinosaurs
Figure 1. Cladograms showing previous hypotheses of relationships of Daemonosaurus chauliodus: A, Sues et al. (2011); B, Cabreira et al. (2016); C, Langer et al. (2017); D, Baron et al. (2017b). The cladograms have been simplified for comparative purposes; see original publications for the complete list of taxa.
Figure 3 in The osteology of the early-diverging dinosaur Daemonosaurus chauliodus (Archosauria: Dinosauria) from the Coelophysis Quarry (Triassic: Rhaetian) of New Mexico and its relationships to other early dinosaurs
Figure 3. The holotype of Daemonosaurus chauliodus (CM 76821) in left lateral view as an interpretive line drawing with individual bones (e.g. maxilla) or sets of bones (e.g. cervical series, palatal bones) coloured (A) and right lateral view as an interpretive line drawing (B). Light grey = rock matrix. White bones = unidentified fragments or cervical ribs. Scale = 1 cm. Abbreviations: an, angular; aof, antorbital fenestra; anfo, antorbital fossa; at, atlas component; ax, axis; bo, basioccipital; cer#, cervical vertebra number; cp, cultriform process of the parasphenoid; cr, cervical rib; d, dentary; ec, ectopterygoid; en, external naris; ex, exoccipital; f, frontal; j, jugal; l., left; la, lacrimal; mf, external mandibular fenestra; mx, maxilla; n, nasal; op, opisthotic; or, orbit; pa, parietal; pal, palatine; pf, prefrontal; pmx, premaxilla; pmxt, premaxillary tooth; po, postorbital; pra, proatlas; pro, prootic; pt, pterygoid; qj, quadratojugal; qu, quadrate; r., right; sc, scleral plate; sp, splenial; sq, squamosal; su, surangular; vo, vomer. [2 columns]
Figure 15 in The osteology of the early-diverging dinosaur Daemonosaurus chauliodus (Archosauria: Dinosauria) from the Coelophysis Quarry (Triassic: Rhaetian) of New Mexico and its relationships to other early dinosaurs
Figure 15. Close-up view of the dentary of the right side of the skull of Daemonosaurus chauliodus (CM 76821) as a photograph (A) and as an interpretive line drawing (B). Light grey = rock matrix. Scale = 1 cm. Abbreviations: d, dentary; j, jugal; mf, external mandibular fenestra; mx, maxilla; pmx, premaxilla; pmxt, premaxillary tooth; r., right; sp, splenial; t, tooth.
Figure 7 in Dromaeosaurid crania demonstrate the progressive loss of facial pneumaticity in coelurosaurian dinosaurs
Figure 7. Ancestral state reconstruction of the presence of the promaxillary fenestra in coelurosaurs. Likelihood estimates for nodes represented by pie charts (blue = present, yellow = absent).
Figure 10 in Dromaeosaurid crania demonstrate the progressive loss of facial pneumaticity in coelurosaurian dinosaurs
Figure 10. Ancestral state reconstruction of the presence of the lacrimal fenestra in coelurosaurs. Likelihood estimates for nodes represented by pie charts (blue = small, yellow = large).
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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.