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676 results for “Manis”
FIGURE 4 in How many species of Sturisoma (Siluriformes: Loricariinae) inhabit the La Plata Basin?
FIGURE 4. Distribution map with individuals of Sturisoma reisi (squares, all coordinates localities were taken from LondoñoBurbano & Britto (2022)) and S. barbatum (circles) used in this study. Red star indicates the type locality of S. barbatum. Black symbols indicate specimens with genetic data, white with morphological data, and grey with both data sources.
FIGURE 3. Oxyloricaria robusta Regan, 1904 in How many species of Sturisoma (Siluriformes: Loricariinae) inhabit the La Plata Basin?
FIGURE 3. Oxyloricaria robusta Regan, 1904: 300, pl. 19 (fig. 1). Type locality: Paraguay River. Left lateral views of A: Lectotype: BMNH 1895.5.17.89; B: Paralectotype: BMNH 1895.5.17.90 Lectotype; Paralectotype of O. robusta. C: S. robustum BMNH 1934.8.20.389–391. In this study, all are considered S. barbatum. Arrows indicate plates' series and order number of each one.
FIGURE 6 in How many species of Sturisoma (Siluriformes: Loricariinae) inhabit the La Plata Basin?
FIGURE 6. Anatomical and pigmentation details of Sturisoma barbatum (CFA-IC-5103): A: dorsal view; and B: ventral view.
FIGURE 7 in How many species of Sturisoma (Siluriformes: Loricariinae) inhabit the La Plata Basin?
FIGURE 7. Details of Sturisoma barbatum mature males registered in Argentina. A: lateral view of specimen CFA-IC-3396, Bermejo River basin, in Formosa: B–C: CFA-IC-6380, Pilcomayo River basin, Formosa, in B: lateral view; and C: dorsal view.
FIGURE 1 in Early Land Plants Today (ELPT): How many liverwort species are there?
FIGURE 1. Number of novel liverwort species, excluding new combinations, which have been described over the last 250 years, with an inset of the number described from 2001–2009.
FIGURE 3 in Early Land Plants Today (ELPT): How many liverwort species are there?
FIGURE 3. The relationship between synonymy rate and number of species. Synonymy rates for individual monographs from Table 4 are displayed as dots. The current best estimate for the number of liverwort species, 7,486, is indicated by the arrow. Upper and lower estimates (the 95% confidence interval) of 5,536 and 9,432, respectively are shown by dashed lines.
FIGURE 2 in Early Land Plants Today (ELPT): How many liverwort species are there?
FIGURE 2. The geographical distribution of the almost 670 new species that have been described from 1990 to 2009. Dot size represents the number of new species in each area (maximum 81 in New Zealand).
Fig. 38 in There's gold in them thar hills! Morphology and molecules delimit species in Xerochrysum (Asteraceae; Gnaphalieae) and reveal many new taxa
Fig. 38. Isotype of Xerochrysum neoanglicum (L.M. Copeland 3468, J.J. Bruhl & I.R. Telford, NE 80118).
Fig. 17 in There's gold in them thar hills! Morphology and molecules delimit species in Xerochrysum (Asteraceae; Gnaphalieae) and reveal many new taxa
Fig. 17. Lectotype of Xerochrysum banksii (G-DC G00328465). Image: © Conservatoire et Jardin botaniques de la Ville de Genève.
Fig. 12. STRUCTURE bar plots for Xerochrysum bicolor, X in There's gold in them thar hills! Morphology and molecules delimit species in Xerochrysum (Asteraceae; Gnaphalieae) and reveal many new taxa
Fig. 12. STRUCTURE bar plots for Xerochrysum bicolor, X. halmaturorum, and X. sp. Lofty Ranges major clustering modes K = 3. Bar plots show each individual as a horizontal bar divided into segments on the basis of the proportion of ancestry suggested for 1–10 subpopulations across all of the 10 runs; n = 51. Fine black lines delineate sampling locations.
Fig. 14 in There's gold in them thar hills! Morphology and molecules delimit species in Xerochrysum (Asteraceae; Gnaphalieae) and reveal many new taxa
Fig. 14. STRUCTURE bar plots for Xerochrysum boreale and genetically similar putative species, major and minor clustering modes K = 6. Bar plots show each individual as a horizontal bar divided into segments on the basis of the proportion of ancestry suggested for 1–10 subpopulations across all of the 10 runs; n = 63. Fine black lines delineate sampling locations.
Fig. 9 in There's gold in them thar hills! Morphology and molecules delimit species in Xerochrysum (Asteraceae; Gnaphalieae) and reveal many new taxa
Fig. 9. Xerochrysum sp. North Kennedy and genetically similar entities principal coordinate analysis of 1342 single-nucleotide polymorphism loci. Each dot represents an individual sample, coloured by population. (a) Axes 1 and 2; (b) Axes 1 and 3.
Fig. 11 in There's gold in them thar hills! Morphology and molecules delimit species in Xerochrysum (Asteraceae; Gnaphalieae) and reveal many new taxa
Fig. 11. STRUCTURE bar plots for the putative species Xerochrysum sp. Barrington Tops (white, pale yellow and yellow phyllary colours), X. sp. Glencoe, X. sp. New England, and X. sp. Point Lookout, major clustering modes K = 5. Bar plots show each individual as a horizontal bar divided into segments on the basis of the proportion of ancestry suggested for 1–10 subpopulations across all of the 10 runs; n = 52. Fine black lines delineate sampling locations.
Fig. 15 in There's gold in them thar hills! Morphology and molecules delimit species in Xerochrysum (Asteraceae; Gnaphalieae) and reveal many new taxa
Fig. 15. STRUCTURE bar plots, for species of Xerochrysum associated with X. sp. Blackfellows Gap (marked with an asterisk, *), for major clustering modes K = 4–5. Bar plots show each individual as a horizontal bar divided into segments on the basis of the proportion of ancestry suggested for four or five ancestral populations across all runs at K = 4 and 9 of the 10 runs at K = 5; n = 114. Fine black lines delineate sampling locations, numbered as in Supplementary Table S14. Of the two samples collected from Namadgi National Park (Location 9), morphological characters indicated that one is clearly X. subundulatum, and the other is X. sp. Blackfellows Gap (N.T.Burbidge 6926).
Fig. 10 in There's gold in them thar hills! Morphology and molecules delimit species in Xerochrysum (Asteraceae; Gnaphalieae) and reveal many new taxa
Fig. 10. STRUCTURE bar plots for 'Bracteatum' samples of Xerochrysum, major clustering modes K = 6. Bar plots show each individual as a horizontal bar divided into segments on the basis of the proportion of ancestry suggested for 1–16 subpopulations across 8 of the 16 runs; n = 246. Fine black lines delineate sampling locations.
Fig. 26 in There's gold in them thar hills! Morphology and molecules delimit species in Xerochrysum (Asteraceae; Gnaphalieae) and reveal many new taxa
Fig. 26. Isotype of Xerochrysum frutescens (I.R.Telford 12874, J.J.Bruhl & L.M.Copeland NE 85983).
Fig. 13 in There's gold in them thar hills! Morphology and molecules delimit species in Xerochrysum (Asteraceae; Gnaphalieae) and reveal many new taxa
Fig. 13. STRUCTURE bar plots for 'Boreale' sam-ples of Xerochrysum, major and minor clustering modes K = 6. Bar plots show each individual as a horizontal bar divided into segments on the basis of the proportion of ancestry suggested for 1–10 subpopulations across all of the 10 runs; n = 148. Fine black lines delineate sampling locations.
Fig. 8 in There's gold in them thar hills! Morphology and molecules delimit species in Xerochrysum (Asteraceae; Gnaphalieae) and reveal many new taxa
Fig. 8. 'Boreale' principal coordinate analysis of 4637 single-nucleotide polymorphism loci representing some species and putative entities of Xerochrysum. Each dot represents an individual sample, coloured by population. (a) Axes 1 and 2; (b) Axes 1 and 3.
Fig. 7 in There's gold in them thar hills! Morphology and molecules delimit species in Xerochrysum (Asteraceae; Gnaphalieae) and reveal many new taxa
Fig. 7. Principal coordinate analysis of 5637 single-nucleotide polymorphism loci representing species and putative entities of Xerochrysum in the 'Bracteatum' group. Each dot represents an individual sample, coloured by population. (a) Axes 1 and 2; (b) Axes 1 and 3.
Fig. 6 in There's gold in them thar hills! Morphology and molecules delimit species in Xerochrysum (Asteraceae; Gnaphalieae) and reveal many new taxa
Fig. 6. Comparative morphology of phyllary colour, cotyledon size and cauline leaf abaxial indumentum for Xerochrysum sp. Barrington Tops populations. (a, c, e) White phyllaries T.L.Collins 1043; (b, d, f) yellow phyllaries T.L.Collins 1046. Scale bars: 1 cm (d, for c and d); 100 μm (f, for e and f).
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.