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1,817 results for “Late Cretaceous”
Fig. 1 in The appendicular skeleton of Neuquensaurus, a Late Cretaceous saltasaurine sauropod from Patagonia, Argentina
Fig. 1. The saltasaurine sauropod Neuquensaurus australis, from the Anacleto Formation (Upper Cretaceous), Patagonia, Argentina. A. Site map showing the Cinco Saltos area where specimens of Neuquensaurus have been recovered. B. Restoration of the skeleton mounted at the Museo de La Plata, Argentina. C. Skeletal reconstruction and body shape of Neuquensaurus showing preserved appendicular elements in dashed zones; adapted from Opisthocoelicaudia silhouette in Wilson and Sereno (1998).
Fig. 4 in The appendicular skeleton of Neuquensaurus, a Late Cretaceous saltasaurine sauropod from Patagonia, Argentina
Fig. 4. The saltasaurine sauropod Neuquensaurus, from the Anacleto Formation (Upper Cretaceous), Patagonia, Argentina. Ulna. A. Left ulna of Neuquensaurus australis (Lydekker, 1893) (MLP−CS 1306) in lateral (A1, A2), anterior (A3), posterior (A4), proximal, anterior towards top (A5), and distal (A6) views; photographs (A1, A3–A6) and explanatory drawing (A2). B. Lectotype of Neuquensaurus robustus (Huene, 1929) nomen dubium (MLP−CS 1094) as specified by Bonaparte and Gasparini (1978); left ulna in lateral (B1, B2), posterolateral (B3), medial (B4), proximal, anterior towards top (B5), and distal (B6) views; photographs (B1, B3–B6) and explanatory drawing (B2). C. Lectotype of N. robustus nomen dubium (MLP−CS 1095) as specified by Bonaparte and Gasparini (1978); right ulna in lateral (C1), posteromedial (C2), proximal, anterior towards top (C3), and distal (C4) views. D. Left ulna of N. robustus nomen dubium (MLP−CS 2004) as proposed in this contribution, in lateral (D1), medial (D2), and proximal, anterior towards top (D3) views.
Fig. 1 in Mammalian distal humeri from the Late Cretaceous of Uzbekistan
Fig. 1. Anterior view of right distal humerus of extant Echinosorex gymnurus Raffles, 1822 to illustrate humeral features discussed in the text (modified from Salton and Sargis 2008).
Fig. 6 in Mammalian distal humeri from the Late Cretaceous of Uzbekistan
Fig. 6. Right distal humerus of eutherian group 1 (URBAC 06−062, Bissekty Formation, Upper Cretaceous: Turonian, Kyzylkum Desert, Uzbekistan), in anterior (A), distal (B), and posterior (C) views.
Fig. 10 in Mammalian distal humeri from the Late Cretaceous of Uzbekistan
Fig. 10. Right distal humerus of zhelestid group 1 (URBAC 03−187, Bissekty Formation, Upper Cretaceous: Turonian, Kyzylkum Desert, Uzbekistan), in anterior (A), distal (B), and posterior (C) views.
Fig. 8 in Mammalian distal humeri from the Late Cretaceous of Uzbekistan
Fig. 8. Right distal humerus of zhelestid group 1 (URBAC 06−057, Bissekty Formation, Upper Cretaceous: Turonian, Kyzylkum Desert, Uzbekistan), in anterior (A), distal (B), and posterior (C) views.
Fig. 7 in Mammalian distal humeri from the Late Cretaceous of Uzbekistan
Fig. 7. Right distal humerus of zalambdalestid (ZIN C 85309, Bissekty Formation, Upper Cretaceous: Turonian, Kyzylkum Desert, Uzbekistan), in anterior (A), distal (B), and posterior (C) views.
Fig. 13 in Mammalian distal humeri from the Late Cretaceous of Uzbekistan
Fig. 13. Right distal humerus of zhelestid group 3 (URBAC 06−072, Bissekty Formation, Upper Cretaceous: Turonian, Kyzylkum Desert, Uzbekistan), in anterior (A), distal (B), and posterior (C) views.
Fig. 12 in Mammalian distal humeri from the Late Cretaceous of Uzbekistan
Fig. 12. Left distal humerus of zhelestid group 2 (URBAC 03−099, Bissekty Formation, Upper Cretaceous: Turonian, Kyzylkum Desert, Uzbekistan), in anterior (A), distal (B), and posterior (C) views.
Fig. 4 in Mammalian distal humeri from the Late Cretaceous of Uzbekistan
Fig. 4. Right distal humerus of metatherian group 2 (URBAC 06−103, Bissekty Formation, Upper Cretaceous: Turonian, Kyzylkum Desert, Uzbekistan), in anterior (A), distal (B), and posterior (C) views.
Fig. 2 in Mammalian distal humeri from the Late Cretaceous of Uzbekistan
Fig. 2. Left distal humerus of multituberculate (URBAC 03−076, Bissekty Formation, Upper Cretaceous: Turonian, Kyzylkum Desert, Uzbekistan), in anterior (A), distal (B), and posterior (C) views.
Fig. 14 in Mammalian distal humeri from the Late Cretaceous of Uzbekistan
Fig. 14. Left distal humerus of zhelestid group 4 (URBAC 03−126, Bissekty Formation, Upper Cretaceous: Turonian, Kyzylkum Desert, Uzbekistan), in anterior (A), distal (B), and posterior (C) views.
Fig. 4. A in A new troodontid theropod from the Late Cretaceous of central China, and the radiation of Asian troodontids
Fig. 4. A troodontid theropod Xixiasaurus henanensis gen. et sp. nov. (HGM 41HIII−0201; holotype), lower–middle Majiacun Formation (Upper Cretaceous: Coniacian–Campanian), Henan Province, China; partial right forelimb. A. First digit and partial ulna and radius. B. Distal ends of metacarpals II and III, first phalanx and proximal end of the second phalanx.
Fig. 3. A in A new troodontid theropod from the Late Cretaceous of central China, and the radiation of Asian troodontids
Fig. 3. A troodontid theropod Xixiasaurus henanensis gen. et sp. nov. (HGM 41HIII−0201; holotype), lower–middle Majiacun Formation (Upper Cretaceous: Coniacian–Campanian), Henan Province, China. A. Rostrum of skull in palatal (A1) and right lateral (A2) views. B. Anterior part of left dentary in lateral (B1) and medial (B2) views.
Fig. 2 in A new troodontid theropod from the Late Cretaceous of central China, and the radiation of Asian troodontids
Fig. 2. Skull of troodontid theropod Xixiasaurus henanensis gen. et sp. nov. (HGM 41HIII−0201; holotype), lower– middle Majiacun Formation (Upper Cretaceous: Coniacian–Campanian), Henan Province, China; in dorsal (A); lateral (B), and ventral (C) views. doi: 10.4202/app.2009.0047
Fig. 3 in Cranial osteology and ontogeny of Saurolophus angustirostris from the Late Cretaceous of Mongolia with comments on Saurolophus osborni from Canada
Fig. 3. Posterior view of the proximal crest in hadrosaurid dinosaur Saurolophus angustirostris Rozhdestvensky, 1952, MPC 100/764, late Campanian–?Maastrichtian Nemegt Formation, Mongolia; right side. Shading indicates matrix. Cross−hatching indicates broken cross−section of nasal. Dorsal is up. Photograph (A) and explanatory drawing (B).
Fig. 7 in Cranial osteology and ontogeny of Saurolophus angustirostris from the Late Cretaceous of Mongolia with comments on Saurolophus osborni from Canada
Fig. 7. Partial braincase of adult hadrosaurid dinosaur Saurolophus angustirostris Rozhdestvensky, 1952, KID 476, late Campanian–?Maastrichtian Nemegt Formation, Mongolia. A. Left lateral view of otoccipital, basioccipital, prootic, and basisphenoid. B. Ventral view of left otoccipital and prootic across broken surface denoted by arrowheads in A1. C. Anterior view of braincase showing the paired presphenoids. The inter−presphenoid suture is indicated by arrowheads. Grey regions indicate broken surfaces. Cranial nerves are indicated with roman numerals. Photographs (A1, B1, C1) and explanatory drawings (A2, B2, C2).
Fig. 8. Hadrosaurid dinosaur Saurolophus angustirostris Rozhdestvensky, 1952, PIN 551 in Cranial osteology and ontogeny of Saurolophus angustirostris from the Late Cretaceous of Mongolia with comments on Saurolophus osborni from Canada
Fig. 8. Hadrosaurid dinosaur Saurolophus angustirostris Rozhdestvensky, 1952, PIN 551/359, late Campanian–?Maastrichtian Nemegt Formation, Mongolia. Right lateral view of juvenile braincase with postorbital and jugal processes removed (cross hatching). Enlarged area demarcated by boxed area on inset. Grey regions denote neurovascular openings.
Fig. 4 in Cranial osteology and ontogeny of Saurolophus angustirostris from the Late Cretaceous of Mongolia with comments on Saurolophus osborni from Canada
Fig. 4. Jugals of Saurolophus. A–C. Saurolophus angustirostris Rozhdestvensky, 1952, late Campanian–?Maastrichtian Nemegt Formation, Mongolia. D–F. Saurolophus osborni Brown, 1912, Maastrichtian Horseshoe Canyon Formation, Alberta, Canada. A. ZPAL MgD−1/159 juvenile. B. MPC 100/706 adult. C. MPC 100/764 adult. D. AMNH 5221 adult, reversed. E. AMNH 5220 adult, reversed. F. CMN 8796 adult, reversed. Note the anteriorly−directed spur on the anterior process in S. angustirostris (arrow) is prominent in even the juvenile. This process is reduced in S. osborni. White represents reconstructed areas. Anterior is left.
Fig. 2 in Cranial osteology and ontogeny of Saurolophus angustirostris from the Late Cretaceous of Mongolia with comments on Saurolophus osborni from Canada
Fig. 2. Details of the left narial region in an adult Saurolophus angustirostris Rozhdestvensky, 1952, MPC 100/764; late Campanian–?Maastrichtian Nemegt Formation, Mongolia, as demarcated by the boxed area on inset. Photograph (A) and explanatory drawing (B). Note the elongate anterodorsal process of the maxilla. Grey indicates matrix.
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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.