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Figure 19 in Devonian actinopterygian phylogeny and evolution based on a redescription of Stegotrachelus finlayi
Figure 19. Dorsal fin and interpretive drawing of specimen NMS G 2002.26.1360. The fringing fulcra are not preserved in this specimen. Specimen in right lateral view. Scale bar = 5 mm.
Figure 7 in Devonian actinopterygian phylogeny and evolution based on a redescription of Stegotrachelus finlayi
Figure 7. Skull profile and interpretive drawing of specimen BMNH P.13407. Head in left lateral view. Diagonal hatching indicates damaged bone. Shaded regions in the inset match preserved regions in specimen. Scale bar = 10 mm.
Figure 28 in Devonian actinopterygian phylogeny and evolution based on a redescription of Stegotrachelus finlayi
Figure 28. Dorsal ridge scales posterior to the occiput in specimen BMNH P.13410. Specimen in left lateral view. Scale bar = 5 mm.
Figure 14 in Devonian actinopterygian phylogeny and evolution based on a redescription of Stegotrachelus finlayi
Figure 14. Nuchal hump: A, specimen BMNH P.13418; B, specimen NMS G 2002.26.1384. Scale bars = 10 mm.
Figure 11 in Devonian actinopterygian phylogeny and evolution based on a redescription of Stegotrachelus finlayi
Figure 11. The medial surface of the lower jaw and interpretive drawing of specimen BMNH P.20313. Specimen in left lateral view. Diagonal hatching indicates poorly preserved bone. Scale bar = 5 mm.
Figure 18 in Devonian actinopterygian phylogeny and evolution based on a redescription of Stegotrachelus finlayi
Figure 18. Pelvic fin and interpretive drawing of specimen NMS G 2002.26.1360. Specimen in right lateral view. Scale bar = 5 mm.
Figure 23 in Devonian actinopterygian phylogeny and evolution based on a redescription of Stegotrachelus finlayi
Figure 23. The hypochordal lobe of specimen BMNH P.13415. Note the transition between the two fulcral patterns (1 and 2) mentioned in text. Specimen in right lateral view. Diagonal hatching indicates damaged bone. Granulated surface represents matrix. Scale bar = 5 mm.
Figure 27 in Devonian actinopterygian phylogeny and evolution based on a redescription of Stegotrachelus finlayi
Figure 27. Caudal scale inversion and reorientation of chordal lobe scales posterior to the hinge line. Specimen NMS G 2002.26.1360 in right lateral view. Scale bar = 5 mm.
Figure 31 in Devonian actinopterygian phylogeny and evolution based on a redescription of Stegotrachelus finlayi
Figure 31. Ventral ridge scales between the anal and caudal fins in specimen BMNH P.13415. Specimen in right lateral view. Scale bar = 2 mm.
Figure 17 in Devonian actinopterygian phylogeny and evolution based on a redescription of Stegotrachelus finlayi
Figure 17. Radials, marginal fin-ray element, and interpretive drawing of the pectoral fin in specimen NMS G 2002.26.1384. Specimen in left lateral view. Diagonal hatching indicates damaged bone. Granulated surface represents matrix. Scale bar = 5 mm.
Figure 29 in Devonian actinopterygian phylogeny and evolution based on a redescription of Stegotrachelus finlayi
Figure 29. Dorsal ridge scales posterior to the dorsal fin in specimen NMS G 2002.26.1360. Specimen in right lateral view. Scale bar = 5 mm.
Figure 10 in Devonian actinopterygian phylogeny and evolution based on a redescription of Stegotrachelus finlayi
Figure 10. Modified reproduction of Gardiner's (1963) reconstruction. Changes include the addition of a single dentigerous infraorbital (thus three bones that form the upper biting margin of the jaw) and the insertion of a wedge-shaped dermohyal. After Gardiner & Schaeffer (1989). Skull in left lateral view. Scale bar = 5 mm.
Figure 1 in Phylogeny-based species delimitations and the evolution of host associations in symbiotic zoanthids (Anthozoa, Zoanthidea) of the wider Caribbean region
Figure 1. Phylogeny of Caribbean symbiotic zoanthids based on the internal transcribed spacer (ITS) region of the rRNA nuclear gene. Support values are 100 pseudoreplicate maximum likelihood (ML) bootstrap values followed by three million iteration Bayesian posterior probabilities. The clades of symbiotic species are colour coded according to their host associations. The information presented in parentheses after the specimens collected for this study includes: the colour of the zoanthid, presence of Symbiodinium, host taxa, and individual identifier (which includes the collection location).
Figure 2. Phylogenetic relationships among the 29 in Molecular phylogeny and phylogeography of the Greek populations of the genus Orthometopon (Isopoda, Oniscidea) based on mitochondrial DNA sequences
Figure 2. Phylogenetic relationships among the 29 specimens of Orthometopon species. Individuals from two other terrestrial isopod species were used as outgroup taxa: Ligidium sp. and Armadillidium vulgare. Phylogenetic analyses, maximum parsimony (MP), maximum likelihood (ML), and Bayesian inference (BI), all produced trees with the same topology. Only the BI tree is presented here. Numbers above the branches indicate bootstrap values in the MP and ML analyses, respectively (MP/ML). Numbers below the branches indicate the posterior probabilities of the Bayesian analysis (BI).
Figure 1 in Molecular phylogeny and phylogeography of the Greek populations of the genus Orthometopon (Isopoda, Oniscidea) based on mitochondrial DNA sequences
Figure 1. Map showing the sampling localities of the 29 specimens used for the DNA analysis. The numbers correspond to those listed in Table 1.
Figures 5–14 in Systematics and phylogeny of the tribe Paragini (Diptera: Syrphidae) based on molecular and morphological characters
Figures 5–14. Head, lateral view (Figs 5–7); head, anterior view (Figs 8–10); antenna (Figs 10–14). Paragus (Pandasyopthalmus) jozanus (Figs 5, 8); Paragus (Pandasyopthalmus) brachycerus (Fig. 13); Paragus (Pandasyopthalmus) atratus (Fig. 14); Paragus (Pandasyopthalmus) haemorrhous (Figs 7, 10); Paragus (Paragus) quadrifasciatus (Fig. 9); Paragus (Paragus) strigatus (Fig. 12); Paragus (Serratoparagus) auritus (Fig. 11); Paragus (Serratoparagus) capricorni (Fig. 6). Names of subgenera according classification proposed in this paper.
Figures 72–83 in Systematics and phylogeny of the tribe Paragini (Diptera: Syrphidae) based on molecular and morphological characters
Figures 72–83. Aedeagal apodeme, lateral view (Figs 72,74,76,78,80,82); aedeagal apodeme, dorsal view (Figs 73,75,77,79,81,83). Paragus (Afroparagus) borbonicus (Figs 74, 75); Paragus (Pandasyopthalmus) brachycerus (Figs 78, 79); Paragus (Pandasyopthalmus) jozanus (Figs 80, 81); Paragus (Pandasyopthalmus) haemorrhous (Figs 82, 83); Paragus (Paragus) variabilis (Figs 76, 77); Paragus (Serratoparagus) auritus (Figs 72, 73).
Figures 55–60 in Systematics and phylogeny of the tribe Paragini (Diptera: Syrphidae) based on molecular and morphological characters
Figures 55–60. Hypandrium, lateral view (Figs 55–57); hypandrium, ventral view (Figs 58–60). Paragus (Pandasyopthalmus) jozanus (Figs 57, 60); Paragus (Pandasyopthalmus) brachycerus (Figs 55, 58); Paragus (Pandasyopthalmus) manensis (Figs 56, 59).
Figures 49–54 in Systematics and phylogeny of the tribe Paragini (Diptera: Syrphidae) based on molecular and morphological characters
Figures 49–54. Hypandrium, lateral view (Figs 49–52); epandrium, ventral view (Fig. 43); epandrium, dorsal view (Fig. 54). Paragus (Paragus) absidatus (Figs 53, 54); Paragus (Paragus) pecchiolli (Fig. 51); Paragus (Paragus) punctulatus (Fig. 49); Paragus (Paragus) quadrifasciatus (Fig. 50); Paragus (Paragus) strigatus (Fig. 52).
Figures 35–42 in Systematics and phylogeny of the tribe Paragini (Diptera: Syrphidae) based on molecular and morphological characters
Figures 35–42. Epandrium, ventral view (Figs 35,37,39,41); epandrium, ventral view (Figs 36,38,40,42). Paragus (Pandasyopthalmus) brachycerus (Figs 41, 42); Paragus (Pandasyopthalmus) jozanus (Figs 37, 38); Paragus (Pandasyopthalmus) manensis (Figs 39, 40); Paragus (Serratoparagus) auritus (Figs 35, 36).
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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.
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DANDI Archive for NWB datasets
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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.