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1,817 results for “Late Cretaceous”
FIGURE 1 in Revised diagnoses of Hadrosaurus foulkii Leidy, 1858 (the type genus and species of Hadrosauridae Cope, 1869) and Claosaurus agilis Marsh, 1872 (Dinosauria: Ornithopoda) from the Late Cretaceous of North America
FIGURE 1. Simplified strict consensus tree of the phylogenetic relationships of hadrosauroid dinosaurs presented by Prieto- Márquez (2010), showing the position of Hadrosaurus foulkii and Claosaurus agilis.
FIGURE 3 in Revised diagnoses of Hadrosaurus foulkii Leidy, 1858 (the type genus and species of Hadrosauridae Cope, 1869) and Claosaurus agilis Marsh, 1872 (Dinosauria: Ornithopoda) from the Late Cretaceous of North America
FIGURE 3. Distribution, in a phylogenetic context, of the relative length and profile of the laterodistal corner of the deltopectoral crest of the humerus, and the anteroposterior width of the supraacetabular crest and position of its apex relative to the ischial peduncle of the ilium in Hadrosaurus foulkii and selected major groups of iguanodontian dinosaurs. The cladogram has been simplified from the strict reduced consensus tree presented by Prieto-Márquez (2010). From left to right, specimens used as clade or taxon representatives are as follows. Non-hadrosauroid Iguanodontia: skull of Iguanodon bernissartensis (IRSNB 1731), and right humerus (NHMUK R6616; reversed) and left ilium (NHMUK 11521) of Mantellisaurus atherfieldensis. Nonhadrosaurid Hadrosauroidea: skull of Equijubus normani (IVPP V12534), and right humerus (AMNH 30728; reversed) and right ilium (AMNH 30735; reversed) of Gilmoreosaurus mongoliensis. Hadrosaurus foulkii: line drawing of the historical skull model sculpted by Waterhouse Hawkins, and left humerus and left ilium of ANSP 10005. Saurolophinae: skull of Edmontosaurus annectens (SM R4036) and left humerus of Gryposaurus latidens (AMNH 5465). Lambeosaurinae: skull of Parasaurolophus walkeri (ROM 768) and left humerus of P. cyrtocristatus (FMNH P27393). The right ilium (reversed) representing both saurolophines and lambeosaurines (i.e., Saurolophidae) is that of Brachylophosaurus canadensis (MOR 794). Skulls and ilia are shown in left lateral view; humeri are displayed in anteromedial view.
Figure 8 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 8. Mistralestes arcensis gen. et sp. nov. from La Cairanne Highway, holotype MHNAix-PV.2008.1.1, right dentary fragment with p5 to m3 and roots of p4. A, lingual; B, labial; C, occlusal (stereoscopic) views; mental foramina are highlighted by black dotted lines; D, p5; E, m1 in occlusal view.
Figure 7 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 7. Valentinella vitrollense from Vitrolles-La Plaine. UM-VLP-3, probable right?P3 or?P4; A, occlusal; B, labial stereoviews. UP-VLP-07-04, fragment of a left upper molar; C, occlusal; D, distal stereoviews. Yellow, white, and red dotted lines indicate, respectively, the broken parts of the crown, the slope of the protocone, and the lingual slope of the hypocone on the postcingulum.
Figure 3 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 3. Valentinella vitrollense from Vitrolles-La Plaine, UP-VLP-10-01, left dentary fragment with roots of m1−m3. A, occlusal; B, labial views. Note the posteriorly inclined distal root of m3, mesially indented by a thin bony lamina.
Figure 2 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 2. Lithological logs and biochronological/magnetostratigraphical correlations of the Vitrolles-La Plaine and La Cairanne Highway sections. MAAST., Maastrichtian.
Figure 4 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 4. Valentinella vitrollense from Vitrolles-La Plaine, holotype UM-VLP-2, right dentary with p4−m3. A, twodimensional virtual slice images acquired by X-ray computed microtomography (μCT); three-dimensional reconstruction using μCT scan images; B, labial; C, mesial views.
Figure 10 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 10. Mistralestes arcensis gen. et sp. nov. from La Cairanne Highway, reconstruction of the holotype MHNAix- PV.2008.1.1, using three-dimensional X-ray computed microtomography scan images, in occlusal view showing the main structures of the molars, notably the gradual compression of the trigonid from m1 to m3.
Figure 9 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 9. Mistralestes arcensis gen. et sp. nov. from La Cairanne Highway, reconstruction of the holotype MHNAix-PV.2008.1.1, using three-dimensional X-ray computed microtomography scan images. A, occlusal (stereoscopic); B, lingual; C, labial views; mental foramina are highlighted by black dotted lines and yellow circles.
Figure 6 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 6. Valentinella vitrollense from Vitrolles-La Plaine, holotype UM-VLP-2, occlusal stereoview of p4−m1.
Figure 5 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 5. Valentinella vitrollense from Vitrolles-La Plaine, holotype UM-VLP-2, right dentary with p4−m3. A, labial; B, occlusal views; C, interpretative drawing in occlusal view, salmon-coloured areas indicate preserved patches of enamel.
Figure 1 in New eutherian mammals from the Late Cretaceous of Aix-en-Provence Basin, south-eastern France
Figure 1. Geological map and location of the Late Cretaceous sites Vitrolles-La Plaine (VLP), Vitrolles Couperigne (VCO) and La Cairanne Highway (LCH) in the Aix-en-Provence Basin.
Figure 3 in Second specimen of the Late Cretaceous Australian sauropod dinosaur Diamantinasaurus matildae provides new anatomical information on the skull and neck of early titanosaurs
Figure 3. Diamantinasaurus matildae referred left squamosal and right parietal (AODF 836). A–D, left squamosal in anterior (A), lateral (B), posterior (C) and medial (D) views. E–I, right parietal in anterior (E), posterior (F), medial (G), dorsal (H) and ventral (I) views. Dorsal is towards top of page in E–G; anterior is towards bottom of page in H–I. Scale bar: 100 mm.
Figure 2 in Second specimen of the Late Cretaceous Australian sauropod dinosaur Diamantinasaurus matildae provides new anatomical information on the skull and neck of early titanosaurs
Figure 2. Theropod tooth (AODF 894), found in association with Diamantinasaurus matildae referred cranial elements (AODF 836), in basal (A), lingual (B), distal (C), apical (D), labial (E) and mesial (F) views. Scale bar: 10 mm.
Figure 1 in Second specimen of the Late Cretaceous Australian sauropod dinosaur Diamantinasaurus matildae provides new anatomical information on the skull and neck of early titanosaurs
Figure 1. Locality maps for the referred specimen (AODF 836) of Diamantinasaurus matildae (modified from Poropat et al., 2016; Pentland et al., 2019) and skeletal reconstructions of D. matildae. A, map of Australia, showing the location of Queensland. B, map of Queensland, showing the distribution of Winton Formation outcrop. C, map of the Winton area, showing Winton Formation outcrop, the location of Belmont Station and other stations on which sauropod body fossils have been recovered, and museums in the region. This map incorporates geological information from Vine (1964) and Vine & Casey (1967) [© Commonwealth of Australia (Geoscience Australia) 2019. This product is released under the Creative Commons Attribution 4.0 International Licence. http://creativecommons.org/licenses/by/4.0/legalcode]. D, photograph from the September 2004 dig, showing one of the authors (D.A.E., right, seated) with the braincase in situ (circled). E, skeletal reconstruction of the D. matildae holotype and paratype specimens (AODF 603), incorporating data from Klinkhamer et al. (2018, 2019). F, skeletal reconstruction of the referred specimen of D. matildae (AODF 836). Scale bar: 1 m in E, F.
Figure 5 in Second specimen of the Late Cretaceous Australian sauropod dinosaur Diamantinasaurus matildae provides new anatomical information on the skull and neck of early titanosaurs
Figure 5. Diamantinasaurus matildae referred braincase (AODF 836) in dorsal (A, B) and left lateral (C, D) views. Scale bar: 100 mm.
Figure 6 in Second specimen of the Late Cretaceous Australian sauropod dinosaur Diamantinasaurus matildae provides new anatomical information on the skull and neck of early titanosaurs
Figure 6. Diamantinasaurus matildae referred braincase (AODF 836) in right ventrolateral (A, B) and anteroventral (C, D) views. Scale bar: 100 mm.
Figure 4 in Second specimen of the Late Cretaceous Australian sauropod dinosaur Diamantinasaurus matildae provides new anatomical information on the skull and neck of early titanosaurs
Figure 4. Diamantinasaurus matildae referred left and right quadrates (AODF 836). A–E, left quadrate in anterior (A), lateral (B), ventral (C), posterior (D) and medial (E) views. F–I, right quadrate in anterior (F), lateral (G), posterior (H) and medial (I) views. Scale bar: 100 mm.
Figure 28 in Second specimen of the Late Cretaceous Australian sauropod dinosaur Diamantinasaurus matildae provides new anatomical information on the skull and neck of early titanosaurs
Figure 28. Time-calibrated agreement subtree showing the relationships within Somphospondyli based on the results of the extended implied weights phylogenetic analysis. Euhelopodidae has been collapsed into a single lineage, and Sarmientosaurus has been restored to the position it occupied before pruning. Note that the overall topology is consistent with that produced by the equal weights analysis.
Figure 27 in Second specimen of the Late Cretaceous Australian sauropod dinosaur Diamantinasaurus matildae provides new anatomical information on the skull and neck of early titanosaurs
Figure 27. Diamantinasaurus matildae referred right scapula (AODF 836) in lateral view. Scale bar: 100 mm.
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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OpenNeuro
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