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3,761 results for “phylogenetic relationship”
Figure 6 in A new specimen of Uruguaysuchus aznarezi (Crocodyliformes: Notosuchia) from the middle Cretaceous of Uruguay and its phylogenetic relationships
Figure 6. FC-DPV 2320. A, left pterygoid and ectopterygoid in laterodorsal view. B, detail of right ectopterygoid in ventral view. Scale bar = 2 cm.
Figure 2 in A new specimen of Uruguaysuchus aznarezi (Crocodyliformes: Notosuchia) from the middle Cretaceous of Uruguay and its phylogenetic relationships
Figure 2. FC-DPV 2320. Skull. A, dorsal view. B, ventral view. C, right lateral view (inverted). Scale bar = 1 cm.
Figure 1. A in A new specimen of Uruguaysuchus aznarezi (Crocodyliformes: Notosuchia) from the middle Cretaceous of Uruguay and its phylogenetic relationships
Figure 1. A, map of Uruguay illustrating exposed sequences of the Guichón Formation (black arrow = town of Guichón). B, location of Guichón, from where FC-DPV 2320 comes (it is also the type locality of Uruguaysuchus), about 90 km east of Paysandú (Paysandú province, north-west Uruguay).
Figure 10 in A new specimen of Uruguaysuchus aznarezi (Crocodyliformes: Notosuchia) from the middle Cretaceous of Uruguay and its phylogenetic relationships
Figure 10. FC-DPV 2320, symphyseal region of lower jaw. A, left lateral view. B, posterodorsal view. Scale bar = 2 cm.
Figure 16 in A new specimen of Uruguaysuchus aznarezi (Crocodyliformes: Notosuchia) from the middle Cretaceous of Uruguay and its phylogenetic relationships
Figure 16. Schematic diagram (not intended to reflect the real size or shape differences among teeth) depicting maxillary teeth in U. terrai and three specimens of U. aznarezi (the holotype being probably the only adult individual) drawn at the same size. Based on descriptions and drawings provided by Rusconi (1933) in all cases except for FC-DPV 2320. Question marks indicate the possibility of an additional tooth.
Figure 1. AMNH 3219 in Phylogenetic relationships of Necrosuchus ionensis Simpson, 1937 and the early history of caimanines
Figure 1. AMNH 3219, holotype, Necrosuchus ionensis Simpson, 1937, cranial fragments. A, basioccipital, posterior view. B, basioccipital, anterior view. C, right quadrate ramus, ventral view. D, right quadrate ramus, dorsal view. E, right quadrate ramus, condylar view. Abbreviations: exo, exoccipital; fae, foramen aereum; leu, lateral eustachian foramen; lhc, lateral hemicondyle of quadrate; meu, median eustachian foramen; mhc, medial hemicondyle of quadrate; n, notch on dorsal surface of quadrate ramus. Scale bar = 1 cm.
Figure 5 in Phylogenetic relationships of Necrosuchus ionensis Simpson, 1937 and the early history of caimanines
Figure 5. Left scapulocoracoid of AMNH 3219, holotype, Necrosuchus ionensis Simpson 1937, in lateral (A) and medial (B) view. C, UF 39062, Caiman crocodilus, left scapulocoracoid, medial view. Abbreviations: cf, coracoid foramen; sc, scapula. Scale bars = 1 cm.
Figure 3. AMNH 3219 in Phylogenetic relationships of Necrosuchus ionensis Simpson, 1937 and the early history of caimanines
Figure 3. AMNH 3219, holotype, Necrosuchus ionensis Simpson, 1937, axial skeletal elements. A, anterior dorsal vertebrae, right lateral view; B, close-up of neurocentral suture of 'D-7,' left lateral view; C, posterior-most two dorsal and sacral vertebrae, dorsal view (anterior to right); D, posterior sacral vertebra and rib, left lateral view. Abbreviations: h, base of hypapophysis; if, iliac facet on sacral rib; ncs, neurocentral suture; sr, sacral rib. Scale bars = 1 cm.
Figure 9 in A new specimen of Uruguaysuchus aznarezi (Crocodyliformes: Notosuchia) from the middle Cretaceous of Uruguay and its phylogenetic relationships
Figure 9. FC-DPV 2320, mandible. A, dorsal view. B, ventral view. C, lateral view. Scale bar = 1 cm.
Figure 12 in A new specimen of Uruguaysuchus aznarezi (Crocodyliformes: Notosuchia) from the middle Cretaceous of Uruguay and its phylogenetic relationships
Figure 12. FC-DPV 2320, A, posterior maxillary teeth in lateral view. B, detail of anterior maxillary alveoli in occlusal view. C, anterior incisiviform tooth. D, detail of distal carina in anterior incisiviform tooth (see box in C). E, cheek tooth. F, detail of marginal denticles of tooth shown in E. G, posterior cheek teeth. H, apical denticle of tooth shown in Fig. 11H.
Figure 8 in Phylogenetic relationships in the tribe Oxyptilini (Lepidoptera, Pterophoridae, Pterophorinae) based on morphological data of adults
Figure 8. Stylized drawings of selected character states of the eighth abdominal segment in males. A, tergite. B, overview of the arrangement of scales covering the posterior margin of the eighth tergite. C, sternite. Dark grey areas refer to the saccus. The numbers indicate the character and its state (character: character state) and arrows show the location of characters.
Figure 17 in Phylogenetic relationships in the tribe Oxyptilini (Lepidoptera, Pterophoridae, Pterophorinae) based on morphological data of adults
Figure 17. Strict consensus trees of six equally most parsimonious trees obtained in the equally weighted analysis (left), and that of 380 most parsimonious trees obtained from successive approximation weighting based on maximum retention index values (right). Numbers above and below (underlined) the branches show bootstrap and jackknife values, respectively.
Figure 7. A–D in Phylogenetic relationships in the tribe Oxyptilini (Lepidoptera, Pterophoridae, Pterophorinae) based on morphological data of adults
Figure 7. A–D, first and second abdominal segments. E–J, anterior half of sternite II. The numbers indicate the character and its state (character: character state) and arrows show the location of characters. A & F, Capperia raptor. B, Crombrugghia laetus. C, Hellinsia pectodactylus. D, Agdistis adactyla. E, Emmelina monodactyla. G, Tabulaephorus parthicus. H, Wheeleria phlomidis. I, Gillmeria pallidactyla. J, Agdistis huemeri.
Figure 9 in Phylogenetic relationships in the tribe Oxyptilini (Lepidoptera, Pterophoridae, Pterophorinae) based on morphological data of adults
Figure 9. Male genitalia in Pterophorinae, ventral view (aedeagus removed). The numbers indicate the character and its state (character: character state) and arrows show the location of characters. A, Intercapperia scindia. B, Stangeia siceliota. C, Oxyptilus ericetorum. D, Marasmarcha asiatica. E, Dejongia lobidactylus. F, Sphenarches anisodactyla.
Figure 3 in Phylogenetic relationships in the tribe Oxyptilini (Lepidoptera, Pterophoridae, Pterophorinae) based on morphological data of adults
Figure 3. Fore and hind wing. The numbers indicate the character and its state (character: character state) and arrows show the location of characters. A, Geina didactyla. B, Antarches aguessei. C, Platyptilia calodactyla. D, Dejongia lobidactylus. E, Oxyptilus variegatus (here considered as a junior synonym of Oxyptilus secutor). F, Sphenarches nanellus.
Figure 1. Wing areas and wing venation defined for the morphological analyses. A in Phylogenetic relationships in the tribe Oxyptilini (Lepidoptera, Pterophoridae, Pterophorinae) based on morphological data of adults
Figure 1. Wing areas and wing venation defined for the morphological analyses. A, fore and hind wings. B, fore wing. C, hind wing in Geina didactyla.
Figure 11 in Phylogenetic relationships in the tribe Oxyptilini (Lepidoptera, Pterophoridae, Pterophorinae) based on morphological data of adults
Figure 11. Stylized drawings of selected characters of the male genitalia with inset details of some characters in the aedeagus. A, uncus-tegumen complex (102:1 & 102:2); each lobe of tegumen (103:0–103:2); aedeagus (104:0). B, aedeagus. C, anellus (114:0–114:8, 115:0–115:2, 116:0–116:1); saccus (144:3, 144:5–144:6, 144:8–144:9). Dark grey areas refer to the uncus. vent., ventral side; I, first curve of the S-shaped aedeagus; II, second curve of the S-shaped aedeagus; III, third curve of the S-shaped aedeagus. The numbers indicate the character and its state (character: character state) and arrows show the location of characters.
Figure 4 in Phylogenetic relationships in the tribe Oxyptilini (Lepidoptera, Pterophoridae, Pterophorinae) based on morphological data of adults
Figure 4. Fore and hind wing. The numbers indicate the character and its state (character: character state) and arrows show the location of characters. A, Stangeia siceliota. B, Diacrotricha fasciola. C, Marasmarcha asiatica. D, Eucapperia bullifera. E, Intercapperia scindia. F, Buckleria paludum.
Figure 13 in Phylogenetic relationships in the tribe Oxyptilini (Lepidoptera, Pterophoridae, Pterophorinae) based on morphological data of adults
Figure 13. Signa in Pterophorinae. A, mixed signa (146:2); single signum (147:0–147:3). B, asymmetrical double signa (148:1); symmetrical double signa (149:0–149:8). The numbers indicate the character and its state (character: character state) and arrows show the location of characters.
Figure 10 in Phylogenetic relationships in the tribe Oxyptilini (Lepidoptera, Pterophoridae, Pterophorinae) based on morphological data of adults
Figure 10. Stylized drawings of selected characters of the male genitalia. A, uncus. B, uncus–tegumen complex. Dark and light grey areas refer to the uncus and gnathos arms, respectively. The numbers indicate the character and its state (character: character state) and arrows show the location of characters.
ScienceDex guides
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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.