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73 results for “Oligo-Miocene”
Fig. 2 in Pheidole praehistorica sp. nov., a new addition to spiny ants of the genus Pheidole Westwood, 1839 (Formicidae, Myrmicinae) from Oligo-Miocene Mexican amber
Fig. 2. Pheidole praehistorica sp. nov., holotype (CPAL.464), schematic drawing. A. Profile view. B. Frontal view.
Figure 7 in New Material of Barawertornis tedfordi, a Dromornithid Bird from the Oligo-Miocene of Australia, and its Phylogenetic Implications
Figure 7. Phylogenetic hypothesis of dromornithid relationships resulting from analysis of femoral characters only. Bootstrap values are indicated above branches; Bremer support values are indicated below branches. Support values to the left are from unordered analysis; values to the right are from ordered analysis.
Figure 4 in New Material of Barawertornis tedfordi, a Dromornithid Bird from the Oligo-Miocene of Australia, and its Phylogenetic Implications
Figure 4. Specimens of Barawertornis tedfordi. (A) QM F45420, shaft of right femur, cranial view; (B–C) QM F45419, right tarsometatarsus; (B) caudal view of proximal end; (C) caudal view of distal third. Scale = 10 mm.
Figure 5 in New Material of Barawertornis tedfordi, a Dromornithid Bird from the Oligo-Miocene of Australia, and its Phylogenetic Implications
Figure 5. Phylogenetic hypotheses of intrafamilial relationships within the Dromornithidae. (A) Single most parsimonious tree resulting from unordered analysis. Bootstrap values are indicated above branches; Bremer support values are indicated below branches. This tree topology was also derived in ordered analysis. (B) One of two equally parsimonious trees resulting from ordered analysis. Bootstrap values are indicated above branches.
Figure 3 in New Material of Barawertornis tedfordi, a Dromornithid Bird from the Oligo-Miocene of Australia, and its Phylogenetic Implications
Figure 3. Tarsometatarsus of Barawertornis tedfordi. (A–D) QM F45419, right tarsometatarsus broken into proximal and distal ends; (A) dorsal view; (B) plantar view; (C) proximal view; (D) distal view. Scale = 20 mm.
Figure 1 in New Material of Barawertornis tedfordi, a Dromornithid Bird from the Oligo-Miocene of Australia, and its Phylogenetic Implications
Figure 1. Specimens of Barawertornis tedfordi. (A–B) QM F45056, right femur missing distal third; (A) cranial view; (B) caudal view; (C–E) QM F39901, proximal end of right femur; (C) cranial view; (D) caudal view; (E) proximal view. Abbreviations: ra ridge A; rb ridge B; obt impressiones obturatoriae. Scale = 20 mm.
Figure 6 in New Material of Barawertornis tedfordi, a Dromornithid Bird from the Oligo-Miocene of Australia, and its Phylogenetic Implications
Figure 6. Strict consensus tree of two equally parsimonious trees resulting from ordered analysis. Bremer support values are indicated below branches.
Figure 2 in New Material of Barawertornis tedfordi, a Dromornithid Bird from the Oligo-Miocene of Australia, and its Phylogenetic Implications
Figure 2. Specimens of Barawertornis tedfordi. (A) QM F45417, proximal end of left tibiotarsus, cranial view; (B) QM F30828, proximal end of left tibiotarsus, proximal view; (C) QM F30802, proximal end of right tibiotarsus, proximal view; (D–H) QM F45416, left tibiotarsus; (D) cranial view; (E) caudal view; (F) lateral view; (G) medial view; (H) distal view. Scale = 20 mm.
Figure 7. The strict consensus tree obtained from the parsimony analysis with 35 in Descriptions and phylogenetic relationships of two new genera and four new species of Oligo-Miocene waterfowl (Aves: Anatidae) from Australia
Figure 7. The strict consensus tree obtained from the parsimony analysis with 35 characters ordered. Support values above lines at each node show bootstrap> 50% and Bayesian credibility values> 70% (100% = *). Values below lines are numbers of unambiguous synapomorphies for each node. Clades A, B, and C are referred to in text and Table 4.
Figure 5 in Descriptions and phylogenetic relationships of two new genera and four new species of Oligo-Miocene waterfowl (Aves: Anatidae) from Australia
Figure 5. Left humeri of tadornines in caudal (A, B), cranial (C, D) and ventral (E, F) views: A, C, E, modern T. tadornoides SAM B.39591; and B, D, F, Australotadorna alecwilsoni (SAM P.43141). The arrow points to the planar caudoventral margin of the bicipital crest compared to the angled margin in Tadorna. Scale bar = 10 mm. See main text for abbreviations.
Figure 2 in Descriptions and phylogenetic relationships of two new genera and four new species of Oligo-Miocene waterfowl (Aves: Anatidae) from Australia
Figure 2. Referred elements of Pinpanetta tedfordi: A–C, right coracoid SAM P.23477 in A, ventral; B, dorsal; and C, medial aspect; D, left tibiotarsus UCMP 56999 in anterior view; and E, left tarsometatarsus SAM P.24004 in dorsal aspect. Scale bars = 10 mm. See main text for abbreviations.
Figure 6. Fossil tadornine bones compared with modern Tadorna tadornoides SAM B.39591 in Descriptions and phylogenetic relationships of two new genera and four new species of Oligo-Miocene waterfowl (Aves: Anatidae) from Australia
Figure 6. Fossil tadornine bones compared with modern Tadorna tadornoides SAM B.39591. Tadorna tadornoides: A,C. proximal right carpometacarpus; and H, dorsal view cranial half coracoid. Fossils referred to Australotadorna alecwilsoni: B, D, E, proximal right carpometacarpus; F, distal right tibiotarsus SAM P.36762 in anterior view; G, cranial part right coracoid (SAM P.24531) in dorsal aspect; I, cranial part right coracoid (SAM P.43137) in dorsal aspect. Fossils referred to an undetermined tadornine from Alcoota: J, left radius UCMP 65985 in dorsal aspect; and right carpometacarpus NT P.2913 in K, ventral; L, dorsal; and M, caudal views. Scale bars = 10 mm. See main text for abbreviations.
Figure 4 in Descriptions and phylogenetic relationships of two new genera and four new species of Oligo-Miocene waterfowl (Aves: Anatidae) from Australia
Figure 4. Referred elements of Pinpanetta fromensis: left carpometacarpus SAM P.42700 in: A, ventral; B, caudal; and C, dorsal aspects; D, right coracoid SAM P.41301 in dorsal aspect; and E, cranial part left coracoid MV P.222424 in dorsal aspect. Scale bars = 10 mm. See main text for abbreviations.
Figure 1 in Descriptions and phylogenetic relationships of two new genera and four new species of Oligo-Miocene waterfowl (Aves: Anatidae) from Australia
Figure 1. Right humeri of Pinpanetta species, A–E, cranial view, and F–J, caudal view. A, F, Pinpanetta tedfordi SAM P.41257, holotype; B, G, Pi. tedfordi UCMP 56998, paratype; C, D, H, I, Pi. vickersrichae SAM P.42703, holotype two nonarticulating fragments of one bone; and E, J, Pi. fromensis SAM P.43128, holotype. Scale bars = 10 mm. See main text for abbreviations.
Figure 3 in Descriptions and phylogenetic relationships of two new genera and four new species of Oligo-Miocene waterfowl (Aves: Anatidae) from Australia
Figure 3. Referred elements of Pinpanetta vickersrichae: A, left coracoid MV P.222418 in dorsal aspect; proximal left carpometacarpus AMNH 10770 in: B, ventral; C, caudal; and D, dorsal aspects; E, distal right tibiotarsus SAM P.24529, in anterior aspect. Scale bars = 10 mm. See main text for abbreviations.
Figure 5 in The first Stylogaster Macquart, 1835 (Diptera: Conopidae) fossil, from Oligo-Miocene Dominican amber, and some phylogenetic and biogeographic considerations
Figure 5. Illustration of male Stylogaster grimaldii sp. n., dorsal view. Scale bar = 1 mm.
FIGURE 18 in A new Oligo-Miocene dolphin from New Zealand: Otekaikea huata expands diversity of the early Platanistoide
FIGURE 18. The type sternum. OU 22306, Otekaikea huata. 1, ventral. 2, left lateral. 3, dorsal.
FIGURE 6 in A new Oligo-Miocene dolphin from New Zealand: Otekaikea huata expands diversity of the early Platanistoide
FIGURE 6. Right lateral views of the type skull, OU 22306, Otekaikea huata.
FIGURE 5 in A new Oligo-Miocene dolphin from New Zealand: Otekaikea huata expands diversity of the early Platanistoide
FIGURE 5. Posterior views of the type skull, OU 22306, Otekaikea huata.
FIGURE 4 in A new Oligo-Miocene dolphin from New Zealand: Otekaikea huata expands diversity of the early Platanistoide
FIGURE 4. Anterior views of the type skull, OU 22306, Otekaikea huata.
ScienceDex guides
Understand access before you commit
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.