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Fig. 3 in Phylogeny of the family Characidae (Teleostei: Characiformes): from characters to taxonomy
Fig. 3. Neurocranium of Bario steindachneri, MHNG 2184.46, 62.0 mm SL, dorsal view, anterior to left. BOC: basioccipital, EXO: exoccipital, INT: intercalar, PTO: pterotic. Scale bar = 1 mm.
Fig. 16 in Phylogeny of the family Characidae (Teleostei: Characiformes): from characters to taxonomy
Fig. 16. Anterior region of cranium of Roeboexodon geryi, MHNG 2188.14, 41.0 mm SL, dorsal view, anterior to left. LET: lateral ethmoid, PMX: premaxilla. Scale bar = 1 mm.
Fig. 28 in Phylogeny of the family Characidae (Teleostei: Characiformes): from characters to taxonomy
Fig. 28. Mesethmoid of Bryconamericus cf. rubropictus, CI-FML 3902, 47.3 mm SL, ventral view, anterior to left. Scale bar = 0.5 mm.
Fig. 13 in Phylogeny of the family Characidae (Teleostei: Characiformes): from characters to taxonomy
Fig. 13. Anterior region of cranium of Triportheus pantanensis, CI-FML 3949, 77.4 mm SL, lateral view, anterior to left. AOR: antorbital, IO1: first infraorbital, IO6: sixth infraorbital, LET: lateral ethmoid, MES: mesethmoid, SOR: supraorbital. Scale bar = 1 mm.
Fig. 1 in Phylogeny of the family Characidae (Teleostei: Characiformes): from characters to taxonomy
Fig. 1. Neurocranium of Bario steindachneri, MHNG 2184.46, 62.0 mm SL, dorsal view, anterior to left. EPB: epiphyseal bar, FRO: frontal, MES: mesethmoid. Scale bar = 1 mm.
Fig. 11 in Phylogeny of the family Characidae (Teleostei: Characiformes): from characters to taxonomy
Fig. 11. Posterior region of neurocranium of Moenkhausia cf. intermedia, CI-FML 3417, 33.7 mm SL, lateral view, anterior to left. PRO: prootic, PTO: pterotic, PTS: pterosphenoid, SPH: sphenotic. Scale bar = 0.5 mm.
Fig. 15 in Phylogeny of the family Characidae (Teleostei: Characiformes): from characters to taxonomy
Fig. 15. Anterior portion of cranium of Bryconops melanurus, MCP 15807, 83.4 mm SL, dorsal view, anterior to left. ETC: ethmoid cartilage, LET: lateral ethmoid. Scale bar = 1 mm.
Fig. 8 in Phylogeny of the family Characidae (Teleostei: Characiformes): from characters to taxonomy
Fig. 8. Posterior region of neurocranium and anterior vertebrae of Oligosarcus bolivianus, CI-FML 3366, 83.4 mm SL, lateral view, anterior to left. EPO: epioccipital, NA4: neural arch of fourth vertebra, NCO: neural complex of Weberian apparatus, NP3: neural pedicle of third vertebra, SOC: supraoccipital. Scale bar = 1 mm.
Fig. 7 in Phylogeny of the family Characidae (Teleostei: Characiformes): from characters to taxonomy
Fig. 7. Posterior region of neurocranium and anterior vertebrae of Triportheus nematurus, CI-FML 3948, 82.1 mm SL, lateral view, anterior to left. BOC: basioccipital, EPO: epioccipital, HYL: hyomandibular ligament insertion site, NP3: neural pedicle of third vertebra, NS4: neural spine of fourth vertebra, NCO: neural complex of Weberian apparatus, PSP: parasphenoid, SN1: first supraneural, TP3: transversal process of third neural arch, TRI: tripus. Scale bar = 1 mm.
Fig. 29 in Phylogeny of the family Characidae (Teleostei: Characiformes): from characters to taxonomy
Fig. 29. Cranium of Aphyocharax dentatus, CI-FML 3035, 53.2 mm SL, ventrolateral view, anterior to left. IO2-4: second to fourth infraorbitals, LET: lateral ethmoid, MAX: maxilla, OSP: orbitosphenoid, POP: Preopercle. Scale bar = 1 mm.
Figure 4 in The shape of the mandibular corpus in large fissiped carnivores: allometry, function and phylogeny
Figure 4. Box plot of Ln centroid size (A) and tan(a/2) (B) across families. Black string: median, grey box: first interquartile, bar: second interquartile. B, outlier 63 Speothos venaticus, 60 Pseudocyonopsis quercensis, circle below 60 Ictiocyon socialis.
Figure 1 in The shape of the mandibular corpus in large fissiped carnivores: allometry, function and phylogeny
Figure 1. The position of landmarks on a mandible outline of Canis lupus NHM 34.6.28.47. Scale bar: 1.0 cm.
Figure 7 in Comparative anatomy of the mesosomal organs of scorpions (Chelicerata, Scorpiones), with implications for the phylogeny of the order
Figure 7. Lateral lymphoid organs of selected scorpion species. A, Hadrurus a. arizonensis Ewing, 1928: seminal receptacle, coxal glands, and tubes arising from diaphragm. B, Urodacus planimanus Pocock, 1893: enlarged tubes and planar ovariuterus. Abbreviations: cg, coxal glands; d, diaphragm; lo, lymphoid organs; sr, seminal receptacle (spermathecae); o, ovariuterus.
Figure 3 in The shape of the mandibular corpus in large fissiped carnivores: allometry, function and phylogeny
Figure 3. Scatter plot of the first vs. the third relative warp. A polygon uniting all landmarks ordinally is superimposed on deformation grids. The orientation of grids and superimposed polygons is the same as in Figure 1.
Figure 5 in Comparative anatomy of the mesosomal organs of scorpions (Chelicerata, Scorpiones), with implications for the phylogeny of the order
Figure 5. Ovariuterine follicles, depicting variation in shape: round follicles of apoikogenic scorpions (A–C); more elongated, thumb-like follicles of katoikogenic scorpions (D). A, Hadruroides charcasus (Karsch, 1879). B, Timogenes elegans (Mello-Leitão, 1931): ventral view showing small immature follicles and larger maturing follicles. C, Smeringurus mesaensis (Stahnke, 1961): showing the trophic network attached to ovariuterine tubule and completely covering the maturing follicle with the trophic lobe. D, Urodacus sp.: mature follicles. Abbreviations: f, maturing follicles; i, immature follicles; ot, ovariuterine tubule; p, pedicel; t, trophic network; tl, trophic lobe. Scale bars: 1 mm.
Figure 6 in Comparative anatomy of the mesosomal organs of scorpions (Chelicerata, Scorpiones), with implications for the phylogeny of the order
Figure 6. Variation in digestive gland: compact digestive gland (A); digitiform digestive gland (B); hemidigitiform digestive gland, showing compact dorsal part (C), and with compact dorsal part removed, showing ovariuterus lying over lobate ventral portion of gland (D). Developmental types: apoikogenic development (A); katoikogenic development (B–D). A, Smeringurus mesaensis (Stahnke, 1957): with part of digestive gland removed to expose ovariuterus. B, Opistophthalmus cavimanus Lawrence, 1928. C, D, Urodacus sp. Abbreviations: f, follicles; l, lobules of digestive gland; ot, ovariuterine tubule. Scale bars: 2 mm.
Figure 19 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 19. Bootstrap consensus tree with uniform weights and no constraints from phylogenetic analyses of larval data. Number below branches indicate bootstrap support values above 50%.
Figure 5 in The shape of the mandibular corpus in large fissiped carnivores: allometry, function and phylogeny
Figure 5. Deformation grids of the predicted shape from the minimum (left), medium (centre) and maximum (right) value of lnCS (A) and tan(a/2) (B). Polygons and grids as in previous figures. A, the minimum ln CS is exhibited by Nyctereutes procyonoides (1.50), the medium value is for Canis etruscus (2.27) and the maximum value (2.98) is for Euramphicyon olisiponensis. B, the minimum tan(a/2) (0.18) is for Ursus spelaeus, the medium value 0.56 for Belbus beaumonti and the largest 1.01 for Megantereon cultridens.
Figure 16 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 16. Mandibles of terminal-instar larvae of Torymidae. A, Torymus nobilis (anterior left). B, Torymus nobilis (anterior right). C, Torymus notatus (anterior left). D, Torymus notatus (anterior right). E, Torymus rubi (anterior left). F, Torymus rubi (anterior right).
Figure 13 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)
Figure 13. Terminal-instar larvae of Torymidae (anterior view of mouth parts). A, Torymus geranii. B, Torymus nobilis. C, Torymus notatus. D, Torymus rubi.
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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)
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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.