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285 results for “biogeographic implications”
Figure 8 in Genets and 'genet-like' taxa (Carnivora, Viverrinae): phylogenetic analysis, systematics and biogeographic implications
Figure 8. Phylogenetic relationships within the Genetta spp. clade (intrageneric analysis).
Figure 7. Tree 4 in Genets and 'genet-like' taxa (Carnivora, Viverrinae): phylogenetic analysis, systematics and biogeographic implications
Figure 7. Tree 4 rooted both with the Felidae and the Canidae (intergeneric analysis).
Figure 6. Tree 3 in Genets and 'genet-like' taxa (Carnivora, Viverrinae): phylogenetic analysis, systematics and biogeographic implications
Figure 6. Tree 3 rooted with the Felidae (intergeneric analysis).
Figure 11 in Genets and 'genet-like' taxa (Carnivora, Viverrinae): phylogenetic analysis, systematics and biogeographic implications
Figure 11. Phylogenetic relationships within the genus Genetta, illustrating biotope distribution.
Figure 10 in Genets and 'genet-like' taxa (Carnivora, Viverrinae): phylogenetic analysis, systematics and biogeographic implications
Figure 10. Evolution of the metatarsal pads within the Genetta johnstoni + Prionodon clade.
Chemical variations in Quercus pollen as a tool for taxonomic identification: implications for long-term ecological and biogeographical research
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Data from: The European Paromomyidae (Primates, Mammalia): taxonomy, phylogeny, and biogeographic implications
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Fossil snakes from the Eocene of India: New material with comments on phylogenetic relations and biogeographic and palaeoecological implications
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FIGURE 18 in A molecular phylogenetic hypothesis for the Asian agamid lizard genus Phrynocephalus reveals discrete biogeographic clades implicated by plate tectonics
FIGURE 18. Highest maximum-likelihood tree (-ln = 8673.71) from the 2760 aligned nuclear RAG-1 DNA positions. The maximum-likelihood analysis chose one of the 62 equally parsimonious trees. Bootstrap values are presented above branches and comparative parsimony decay indices are presented below branches in bold (Macey 2005). Branches that appear in parsimony analyses have the parsimony decay index plotted. Branches with no parsimony cost but are not present in strict consensus trees are listed as a "0" decay value. Branches that conflict with the parsimony analysis have a negative decay value representing the number of parsimony steps cost to obtain the maximum-likelihood branch. Bold italic bootstraps are those that differ from parsimony analysis. A dash above a branch is one that had a bootstrap value above 50% in the parsimony analysis but does not in this analysis. Outgroups (Laudakia, Bufoniceps, and Trapelus), and Phrynocephalus clades and lineages previously identified are labeled to the right as A–M (clades that are broken are numbered).
PLATE VIII. Outgroup taxa and Phrynocephalus mimicry adaptations. (A) Laudakia caucasia; (B) habitat of A, Big Balkan Mountains, Turkmenistan; (C) Trapelus sanguinolentus; (D) habitat of C, Repetek, Karakum Desert, Turkmenistan; (E) P. turcomanus illustrating false large head with eyes on body-back; and (F) P. mystaceus illustrating false enlarged mouth with red capillary-beds. in A molecular phylogenetic hypothesis for the Asian agamid lizard genus Phrynocephalus reveals discrete biogeographic clades implicated by plate tectonics
PLATE VIII. Outgroup taxa and Phrynocephalus mimicry adaptations. (A) Laudakia caucasia; (B) habitat of A, Big Balkan Mountains, Turkmenistan; (C) Trapelus sanguinolentus; (D) habitat of C, Repetek, Karakum Desert, Turkmenistan; (E) P. turcomanus illustrating false large head with eyes on body-back; and (F) P. mystaceus illustrating false enlarged mouth with red capillary-beds.
PLATE VI in A molecular phylogenetic hypothesis for the Asian agamid lizard genus Phrynocephalus reveals discrete biogeographic clades implicated by plate tectonics
PLATE VI. Species of the northern Tibetan Plateau. (A) P. hongyuanensis; (B) habitat of A, near Waqên, northeastern Tibet in Sichuan Province; (C) P. roborowskii-1; (D) habitat of C, Chaka Depression, Qinghai Province; (E) P. vlangalii-1; and (F) habitat of E, near Heimahe, south side of Qinghai Lake, Qinghai Province.
FIGURE 4 in A molecular phylogenetic hypothesis for the Asian agamid lizard genus Phrynocephalus reveals discrete biogeographic clades implicated by plate tectonics
FIGURE 4. Strict consensus of three equally parsimonious trees of 4425 steps from the 1595 included (839 informative) aligned mitochondrial DNA positions. Bootstrap values are presented above branches and decay indices are presented below branches in bold. Outgroups (Laudakia, Bufoniceps, and Trapelus), and well-supported Phrynocephalus clades and lineages are identified to the right as A–M.
PLATE VII. Species of the low elevation deserts in China (A-D) and northern Caspian Basin in Russia (E-F). (A) P. przewalskii-3; (B) habitat of A, Shapatou (foreground), Yellow River, Gobi Desert, Ningxia; (C) P. salenskyi-1; (D) habitat of C, near Jimsar, Junggar Depression, Xinjiang; (E) P. guttatus; and (F) habitat of E, west side of Caspian Sea in Dagestan. in A molecular phylogenetic hypothesis for the Asian agamid lizard genus Phrynocephalus reveals discrete biogeographic clades implicated by plate tectonics
PLATE VII. Species of the low elevation deserts in China (A-D) and northern Caspian Basin in Russia (E-F). (A) P. przewalskii-3; (B) habitat of A, Shapatou (foreground), Yellow River, Gobi Desert, Ningxia; (C) P. salenskyi-1; (D) habitat of C, near Jimsar, Junggar Depression, Xinjiang; (E) P. guttatus; and (F) habitat of E, west side of Caspian Sea in Dagestan.
PLATE IV in A molecular phylogenetic hypothesis for the Asian agamid lizard genus Phrynocephalus reveals discrete biogeographic clades implicated by plate tectonics
PLATE IV. Small species inhabiting hard substrates in the Caspian Basin of Turkmenistan. (A) P. rossikowi; (B) habitat of A, along the Amu-Darya River; (C) P. raddei; (D) habitat of C, Karakum Desert, north of Ashkhabad; (E) P. bannikovi; and (F) habitat of E, Big Balkan Mountains.
PLATE III. Species of southern Tibet and soft substrate habitats in the Caspian Basin. (A) P. theobaldi; (B) habitat of A, near Yangbajain, north of Lhasa, southern Tibet; (C) P. sogdianus; (D) P. interscapularis; (E) P. mystaceus; and (F) habitat of D and E, Karakum Desert. north of Ashkhabad, Turkmenistan. in A molecular phylogenetic hypothesis for the Asian agamid lizard genus Phrynocephalus reveals discrete biogeographic clades implicated by plate tectonics
PLATE III. Species of southern Tibet and soft substrate habitats in the Caspian Basin. (A) P. theobaldi; (B) habitat of A, near Yangbajain, north of Lhasa, southern Tibet; (C) P. sogdianus; (D) P. interscapularis; (E) P. mystaceus; and (F) habitat of D and E, Karakum Desert. north of Ashkhabad, Turkmenistan.
PLATE V in A molecular phylogenetic hypothesis for the Asian agamid lizard genus Phrynocephalus reveals discrete biogeographic clades implicated by plate tectonics
PLATE V. Large species inhabiting hard substrates in the Caspian Basin of Turkmenistan (A-D) and Kazakhstan (E-F). (A) P. golubewii; (B) habitat of A, near Bami, southern edge of Karakum Desert; (C) P. turcomanus; (D) habitat of C, southern edge of Karakum Desert; (E) P. helioscopus; and (F) habitat of E, Barsakel'mes Island, Aral Sea.
PLATE II in A molecular phylogenetic hypothesis for the Asian agamid lizard genus Phrynocephalus reveals discrete biogeographic clades implicated by plate tectonics
PLATE II. Species of the Helmand Basin in Afghanistan and Iranian Plateau. (A) P. luteoguttatus; (B) P. clarkorum; (C) P. ornatus; (D) habitat of A and B, Registan Desert, Afghanistan; (E) P. scutulatus; and (F) habitat of E, near Khabr, southern Iran.
PLATE I in A molecular phylogenetic hypothesis for the Asian agamid lizard genus Phrynocephalus reveals discrete biogeographic clades implicated by plate tectonics
PLATE I. Species of the Arabian Peninsula and Iranian Plateau. (A) P. arabicus-2; (B) habitat of A, near Al Ashkhara, Oman; (C) P. longicaudatus; (D) habitat of C, near Al Hij, Bar Al Hikman Peninsula, Oman; (E) P. maculatus-2; and (F) habitat of E, near Sirjan, southern Iran.
FIGURE 1. A in Tyrannosaurus rex from the Upper Cretaceous (Maastrichtian) North Horn Formation of Utah: biogeographic and paleoecologic implications
FIGURE 1. A. Skeletal restoration of UMNH 11000, Tyrannosaurus rex, with preserved elements highlighted. Right postorbital and squamosal of UMNH 11000 are shown separately in right lateral view. Abbreviations: co, cornual ossification; ltf, lateral temporal fenestra; o, orbit; PO, postorbital; qjp, quadratojugal process of squamosal; sp, suborbital process; SQ, squamosal. Scale bar equals 10 cm. B. Postorbitals and squamosals of various tyrannosaurids viewed in right lateral view: Gorgosaurus, TMP 91.36.500 (reflected and modified after Currie, 2003a); Albertosaurus, TMP 81.10.1 (reflected and modified after Currie 2003b); Daspletosaurus, combination of NMC 8506 and TMP 2001.36.1 (reflected and modified after Currie 2003b); Tarbosaurus, ZPAL MgD-1/4 (reflected and modified after Hurum and Sabath, 2003); Tyrannosaurus, FMNH PR 2081 (reflected and modified after Brochu, 2003) and UMNH VP 11000.
FIGURES 17–20 in A new species of Alhajarmyia Stuckenberg (Diptera: Vermileonidae), the first wormlion fly described from East Africa and its biogeographical implications
FIGURES 17–20. Male terminalia of Alhajarmyia spp. 17. Tergite 9 of A. umbraticola (Stuckenberg & Fisher), dorsal view (HT, Oman, NMSA). 18. Same, diagrammatic. 19. Tergite 9 of A. stuckenbergi sp. n. dorsal view (HT, Kenya, NMKE). 20. Same, diagrammatic. Not to scale.
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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.