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360 results for “Artiodactyla”
Figure 5. Anoplotherium latipes. Ham 3 in Bipedal browsing adaptations of the unusual Late Eocene-earliest Oligocene tylopod Anoplotherium (Artiodactyla, Mammalia)
Figure 5. Anoplotherium latipes. Ham 3 skeleton, thoracic vertebrae (IWCMS. 1999.128). A–C, T1 embedded in pyrite slab. D, T3?. E–H, T4?. I–J, T11?. K–N, T12?. Views are anterior (A, D, E, K), left lateral (B, J, N), right lateral reversed (H), posterior (C, F, I, L) and dorsal (G, M). Coated with ammonium chloride. Scale bar = 50 mm.
Figure 9. Anoplotherium latipes. Ham 3 in Bipedal browsing adaptations of the unusual Late Eocene-earliest Oligocene tylopod Anoplotherium (Artiodactyla, Mammalia)
Figure 9. Anoplotherium latipes. Ham 3 skeleton, left scapula (SMNS.42098), in distal (A), ventral (B) and dorsal (C) views. Coated with ammonium chloride. Scale bar = 50 mm.
Figure 4 in Bipedal browsing adaptations of the unusual Late Eocene-earliest Oligocene tylopod Anoplotherium (Artiodactyla, Mammalia)
Figure 4. Reconstructed series of cervical vertebrae of Anoplotherium, based on Ham 3 A. latipes (D, G) and Montmartre A. commune (A–C, E, F), in left lateral view. A, Atlas (MNHN.GY213). B, Axis (MNHN.GY215). C, C3 (MNHN.GY221). D, C4 (IWCMS. 1999.128). E, C5 (MNHN.GY194). F, C6? (MNHN.GY217). G, C7 (IWCMS. 1999.128). H, full series of cervical vertebrae articulated in normal pose according to the individual reconstructions in A–G, where restored areas are shown hatched. Transverse processes in C–F have not been reconstructed, for lack of information. Scale bar = 50 mm.
Figure 12. Anoplotherium latipes. Ham 3 in Bipedal browsing adaptations of the unusual Late Eocene-earliest Oligocene tylopod Anoplotherium (Artiodactyla, Mammalia)
Figure 12. Anoplotherium latipes. Ham 3 skeleton, left proximal ulna (SMNS.42098) and left proximal radius (SMNS.41960a). Views are anterior (A, B), posterior (C, H), lateral (D, E) and medial (F, G). Coated with ammonium chloride. Scale bar = 50 mm.
Figure 3. Anoplotherium latipes. Ham 3 in Bipedal browsing adaptations of the unusual Late Eocene-earliest Oligocene tylopod Anoplotherium (Artiodactyla, Mammalia)
Figure 3. Anoplotherium latipes. Ham 3 skeleton, cervical vertebrae (IWCMS. 1999.128). A and B, right half fragment of atlas. C–G, C3. H–L, C7. Views are dorsal (A, C, I), ventral (B, F, L), anterior (D, J), posterior (E, K) and right lateral reversed (G, H). Coated with ammonium chloride. Scale bar = 50 mm.
Figure 13. Anoplotherium latipes. Ham 3 in Bipedal browsing adaptations of the unusual Late Eocene-earliest Oligocene tylopod Anoplotherium (Artiodactyla, Mammalia)
Figure 13. Anoplotherium latipes. Ham 3 skeleton, right ulna lacking epiphyses (reversed) (A, D, G, H) and right proximal radius (B, C, E, F) (IWCMS. 1999.128). Views are anterior (A, C), posterior (B, H), lateral (D, E) and medial (F, G). Coated with ammonium chloride. Scale bar = 50 mm.
Figure 7. Anoplotherium latipes. Ham 3 in Bipedal browsing adaptations of the unusual Late Eocene-earliest Oligocene tylopod Anoplotherium (Artiodactyla, Mammalia)
Figure 7. Anoplotherium latipes. Ham 3 skeleton, ribs (IWCMS. 1999.128). A–C, left 4th? head. D–F, left 5th? head. G–I, left 8th or 9th? head. J, K, right 8th or 9th head. L, M, right shaft that may belong to right 8th or 9th? head. N, shaft of more posterior rib. Views are dorsal (A, D, G), anterior (B, E, H, J, L), posterior (C, F, I, K, M) and lateral (N). Coated with ammonium chloride. Scale bar = 50 mm.
Figure 2. Anoplotherium latipes. Ham 3 in Bipedal browsing adaptations of the unusual Late Eocene-earliest Oligocene tylopod Anoplotherium (Artiodactyla, Mammalia)
Figure 2. Anoplotherium latipes. Ham 3 skeleton, teeth and jaws (IWCMS. 1999.128). A, right M1. B, anterior part of palate with alveoli for canines, crowns of left P3−4 and right P1−3. C, right I1. D–F, right dentary fragment in two parts with P2–4, M1 and trigonid of M3. Views are crown (A, B, E), lingual (C, F) and buccal (D). Coated with ammonium chloride. Scale bar = 50 mm.
Figure 10. Anoplotherium latipes. Ham 3 in Bipedal browsing adaptations of the unusual Late Eocene-earliest Oligocene tylopod Anoplotherium (Artiodactyla, Mammalia)
Figure 10. Anoplotherium latipes. Ham 3 skeleton, humeri and radii. A–E, left humerus lacking proximal end (SMNS.42098). F, right humerus, proximal epiphysis (IWCMS. 1999.128). G, right proximal radius (IWCMS. 1999.128). H, left proximal radius (SMNS.41960a). Views are anterior (A), lateral (B, F), medial (C), posterior (D), distal (E) and proximal (G, H). Coated with ammonium chloride. Scale bar = 50 mm.
Figure 6. Anoplotherium latipes. Ham 3 in Bipedal browsing adaptations of the unusual Late Eocene-earliest Oligocene tylopod Anoplotherium (Artiodactyla, Mammalia)
Figure 6. Anoplotherium latipes. Ham 3 skeleton, lumbar and caudal vertebrae (IWCMS. 1999.128). A–D, L2?. E–H, L4?. I, posterior caudal. J, L, posterior lumbar. K, M–P, anterior caudal. Views are anterior (A, E, M), posterior (B, F, J, N), dorsal (C, G, I, O), left lateral (D, H, P) and right lateral reversed (L.). Coated with ammonium chloride. Scale bar = 50 mm.
Figure 1. Anoplotherium latipes. A–D, Ham 3 in Bipedal browsing adaptations of the unusual Late Eocene-earliest Oligocene tylopod Anoplotherium (Artiodactyla, Mammalia)
Figure 1. Anoplotherium latipes. A–D, Ham 3 skeleton, log bed, lower Hamstead Member, Bouldnor Formation, Bouldnor, Isle of Wight, UK (IWCMS. 1999.128). Bones showing tooth puncture marks, indicated by arrows. A, manual right first phalanx IV, distal end in dorsal view. B, anterior thoracic vertebra (3?) in left lateral view. C and D, mediodistal portion of left ischium in dorsal (C) and ventral (D) views. E–G, lectotype left metatarsal II, Late Eocene lignites, La Débruge, Vaucluse, France (BMNH.30600b) in anterior (E), posterior (F) and lateral (G) views. Coated with ammonium chloride. Scale bar = 50 mm.
T a b l e 4 in Changes In The Trophic Structure Of The Vertebrate Predator Community In The Cold Season In Belarussian Paazerje (Northern Belarus) With Emphasis On Depopulation Of The Wild Boar, Sus Scrofa (Artiodactyla, Suida)
T a b l e 4. Dietary overlaps (the Morisita's index) between vertebrate predators in the cold season in coniferous-small-leaved forests of Belarussian Paazerje, Northern Belarus, upper right corner — before a depopulation of the Wild Boar (1982–2011), bottom left corner — aft er a large-scale depopulation of the Wild Boar (2013–2019)
Fig. 2 in Changes In The Trophic Structure Of The Vertebrate Predator Community In The Cold Season In Belarussian Paazerje (Northern Belarus) With Emphasis On Depopulation Of The Wild Boar, Sus Scrofa (Artiodactyla, Suida)
Fig. 2. Th e Golden and White-tailed Eagles feed regularly on carrion and physical interference takes place quite often.
Fig. 1 in Changes In The Trophic Structure Of The Vertebrate Predator Community In The Cold Season In Belarussian Paazerje (Northern Belarus) With Emphasis On Depopulation Of The Wild Boar, Sus Scrofa (Artiodactyla, Suida)
Fig. 1. Dietary similarity of 17 vertebrate predators in the cold season in Belarussian Paazerje, 1972–2012.
Fig. 4 in Changes In The Trophic Structure Of The Vertebrate Predator Community In The Cold Season In Belarussian Paazerje (Northern Belarus) With Emphasis On Depopulation Of The Wild Boar, Sus Scrofa (Artiodactyla, Suida)
Fig. 4. Dietary similarity of 10 vertebrate predators in the cold season in Belarussian Paazerje, 2013–2019.
Fig. 1 in Helminths Of Exotic Even-Toed Ungulates (Artiodactyla) In The Askania-Nova Biosphere Reserve, Ukraine
Fig. 1. Number of helminth species found in various species of ungulates in the Askania-Nova Biosphere Reserve, Ukraine.
Fig. 3 in Fossil Ovibos Moschatus (Artiodactyla, Bovidae) From Buryn, With Reference To Muskox Dispersal In The Late Pleistocene Of Ukraine
Fig. 3. Last Glacial maximum distribution of Ovibos moschatus (after Kahlke, 2014, with modifications). Previously known localities with fossil muskox remains within the territory of Ukraine are indicated by circles. The find described herein is indicated by square.
Fig. 2 in Fossil Ovibos Moschatus (Artiodactyla, Bovidae) From Buryn, With Reference To Muskox Dispersal In The Late Pleistocene Of Ukraine
Fig. 2. Skull fragment of muskox from the Buryn district local history museum in dorsal (A), ventra (B), lateral (C), and posterior view (D). Scale bar equals 10 cm in A and B, 5 cm in C and D.
Fig. 4 in Helminths Of Exotic Even-Toed Ungulates (Artiodactyla) In The Askania-Nova Biosphere Reserve, Ukraine
Fig. 4. Bray-Curtis cluster analysis of the species diversity in 23 species of ungulates from the Askania Nova Reserve, Ukraine.
Text-fig. 16. WUSC 4C 33, snout of Kubwachoerus khinzikebirus from Gebel Zelten, Libya. a: palatal view; b: anterior view; c: left lateral view. in New Suoid Fossils (Mammalia, Artiodactyla) From The Miocene Of Moghara, Egypt, And Gebel Zelten, Libya: Biochronological Implications
Text-fig. 16. WUSC 4C 33, snout of Kubwachoerus khinzikebirus from Gebel Zelten, Libya. a: palatal view; b: anterior view; c: left lateral view.
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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.