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666 results for “Wales”
Figure 5 in The Tumbarumba Basaltic Gem Field, New South Wales: In Relation to Sapphire-Ruby Deposits of Eastern Australia
Figure 5. Chemical ratio variation diagram, Tumbarumba corundums. Types as for Fig. 3. TiO2/Ga2O3 against Fe2O3/Cr2O3.
Fig. 2 in New Crayfishes (Decapoda: Parastacidae: Euastacus) from Northeastern New South Wales, Australia
Fig. 2. Collection localities of Euastacus girurmulayn in northeastern New South Wales. The previous Whian Whian State Forest has been designated as National Park since collection.
Fig. 3 in New Crayfishes (Decapoda: Parastacidae: Euastacus) from Northeastern New South Wales, Australia
Fig. 3. Collection localities of Euastacus guruhgi in northeastern New South Wales. The previous Wollumbin State Forest has been designated as National Park and State Conservation Area since collection.
Fig. 5 in New Crayfishes (Decapoda: Parastacidae: Euastacus) from Northeastern New South Wales, Australia
Fig. 5. Euastacus girurmulayn. Dorsal view, holotype, AM P67914. Photograph: Max Egan. Scale bar is 10 mm.
Fig. 4 in New Crayfishes (Decapoda: Parastacidae: Euastacus) from Northeastern New South Wales, Australia
Fig. 4. Euastacus dalagarbe. Dorsal view, holotype, AM P67884. Photograph: Max Egan. Scale bar is 10 mm.
Figure 4 in A New Species of the Freshwater Crayfish Genus Euastacus (Decapoda: Parastacidae) from Northeastern New South Wales, Australia
Figure 4. Distinguishing features of the chela of Euastacus mirangudjin n.sp. Dorsal view (A, B) and ventral view (C, D) of chela of holotype (A, C) and paratype (B, D). ad, apical mesial dactylar spine (1 spine); ap, dorsal apical propodal spine row (3–4 spin es); dce, spine row above dactylar cutting edge (3–4 spines); ldb, bumps and protuberances lateral to dactylar base; mc, mesial carpal sp ines (usually 3, paratype with 4); mp, mesial propodal spines (5); pce, spine row above propodal cutting edge (4–7 spines, extending to base of chela gape); v, ventral carpal spine (large); vm, ventromesal carpal spine (1 spine, smaller than or as large as ventral carpal spine). Photographs by Max Egan.
Figure 3. Euastacus mirangudjin n in A New Species of the Freshwater Crayfish Genus Euastacus (Decapoda: Parastacidae) from Northeastern New South Wales, Australia
Figure 3. Euastacus mirangudjin n.sp. Dorsal view of chela (paratype) showing 4 mesial carpal spines. All other specimens examined bore 3 mesial carpal spines. Photograph by Max Egan.
Figure 7. Log10 in Pendraig milnerae , a new small-sized coelophysoid theropod from the Late Triassic of Wales
Figure 7. Log10-transformed bivariate plot of the longitudinal width of proximal head of the femur versus the femoral length of early theropods. The solid black line represents the linear regression described by the formula, and the red dotted lines represent the 95% confidence intervals.
Figure 6 in Pendraig milnerae , a new small-sized coelophysoid theropod from the Late Triassic of Wales
Figure 6. Strict consensus of six most parsimonious trees of the phylogenetic analysis. Bremer support, absolute bootstrap frequency and GC bootstrap frequency values are indicated at each branch in that order.
Figure 5 in Pendraig milnerae , a new small-sized coelophysoid theropod from the Late Triassic of Wales
Figure 5. Isolated partial left ischium NHMUK PV R 37597 of P. milnerae gen. et sp. nov. in (a) medial and (b) dorsal view. asil, articulation surface with the ilium; atr, antitrochanter; ipis, iliac peduncle of the ischium.
Figure 8 in Pendraig milnerae , a new small-sized coelophysoid theropod from the Late Triassic of Wales
Figure 8. Results of the ancestral state reconstruction for Saurischia using the first of the three MPTs used to perform the analyses (the nonsaurischian region of the tree was omitted for simplicity). For the analysis figured here, all sampled taxa were included and the minimum branch length was set at 1.0 Myr. (a) Time-calibrated heatmap of the log10-transformed femoral lengths and (b) the same part of the tree with the ancestral estimates for each node plotted above the branch in bold and the upper and lower 95% confidence intervals plotted below it in italics. The complete analysis, as well as the analyses performed under different parameters can be found in the electronic supplementary material.
Figure 1 in Pendraig milnerae , a new small-sized coelophysoid theropod from the Late Triassic of Wales
Figure 1. Holotype NHMUK PV R 37591 pelvis and vertebrae of P. milnerae gen. et sp. nov. in (a) left lateral view and (b) right lateral view. atr, antitrochanter; bf, brevis fossa; bfr, brevis fossa rim; bs, brevis shelf; dv, dorsal vertebra; iss, ischial shaft; nc, neural canal; no, notch; obf, obturator foramen; poap, postacetabular process; prap, preacetabular process; puf, pubic fenestra; pus, pubic shaft; ras, rib attachment scar; ri, rim; sac, supra-acetabular crest; sv, sacral vertebra.
Figure 3 in Pendraig milnerae , a new small-sized coelophysoid theropod from the Late Triassic of Wales
Figure 3. Holotype NHMUK PV R 37591 left femur of P. milnerae gen. et sp. nov. in (a) posteromedial, (b) anterolateral, (c) anteromedial, (d) posterolateral, (e) proximal and (f) distal view. amt, anteromedial tuber; at, anterior trochanter; icfl, depression associated with the insertion of the M. caudofemoralis longus; dlt, dorsolateral trochanter; lica, linea intermuscularis caudalis; lincr, linea intermuscularis cranialis; obr, 'obturator ridge'; pmt, posteromedial tuber; ts, trochanteric shelf; 4th t, fourth trochanter.
Figure 2 in Pendraig milnerae , a new small-sized coelophysoid theropod from the Late Triassic of Wales
Figure 2. Holotype NHMUK PV R 37591 pelvis and vertebrae of P. milnerae gen. et sp. nov. in (a) dorsal view, (b) ventral view, (c) anterior view and (d) posterior view. bf, brevis fossa; bfr, brevis fossa rim; diap, diapophysis; dv, dorsal vertebra; gr, groove; il, ilium; ipis, iliac peduncle of the ischium; iss, ischiadic shaft; obf, obturator foramen; poap, postacetabular process; ppdl, paradiapophyseal lamina; prap, preacetabular process; puf, pubic fenestra; pus, pubic shaft; sac, supra-acetabular crest; sv, sacral vertebra; tp, transverse process; vl, ventral lamina.
Figure 4 in Pendraig milnerae , a new small-sized coelophysoid theropod from the Late Triassic of Wales
Figure 4. Isolated mid to posterior dorsal vertebra NHMUK PV 37596 of P. milnerae gen. et sp. nov. in (a) right lateral view, (b) left lateral view, (c) ventral view, (d) dorsal view, (e) anterior view and (f) posterior view. aas, anterior articular surface; acpl, anterior centroparapophyseal lamina; ce, centrum; diap, diapophysis; nf, nutrient foramen; ns, neural spine; pacdf, parapophyseal centrodiapophyseal fossa; pacprf, parapophyseal centroprezygapophyseal fossa; pap, parapophysis; pas, posterior articular surface; pcdl, posterior centrodiapophyseal; pocdf, postzygapophyseal centrodiapophyseal fossa; podl, postzygodiapophyseal lamina; poz, postzygapophysis; ppdl, paradiapophyseal lamina; prpl, prezygaparapohyseal lamina; prz, prezygapophysis; spozf, spinopostzygapophyseal fossa; sprzf, spinoprezygapophyseal fossa.
Text-fig. 2. Dichotomising terminal shoots of Lepidodendron ophiurus BRONGN. from Brymbo (bed C4). No 2013.43G.147 (National Museum of Wales) (from Thomas et al. 2019). in Why Lycospora Dominated Many Pennsylvanian Spore Assemblages
Text-fig. 2. Dichotomising terminal shoots of Lepidodendron ophiurus BRONGN. from Brymbo (bed C4). No 2013.43G.147 (National Museum of Wales) (from Thomas et al. 2019).
Text-fig. 3. Terminal cone attached to Lepidodendron ophiurus BRONGN., leafy shoot. No. 2013.43G.120 (National Museum of Wales). in Why Lycospora Dominated Many Pennsylvanian Spore Assemblages
Text-fig. 3. Terminal cone attached to Lepidodendron ophiurus BRONGN., leafy shoot. No. 2013.43G.120 (National Museum of Wales).
Text-fig. 7. Fossil and living examples of leaves of Acer. a: Acer sp. (fossil), Pleistocene diatomaceous deposits near Faufouille, France (scale bar = 10 mm); National Museum Wales specimen 86.54G.1a; b: Leaf from living Acer growing near Machynlleth, mid-Wales, UK; photo by B. A. Thomas. in Naming Of Parts: The Use Of Fossil-Taxa In Palaeobotany
Text-fig. 7. Fossil and living examples of leaves of Acer. a: Acer sp. (fossil), Pleistocene diatomaceous deposits near Faufouille, France (scale bar = 10 mm); National Museum Wales specimen 86.54G.1a; b: Leaf from living Acer growing near Machynlleth, mid-Wales, UK; photo by B. A. Thomas.
Text-fig. 5. Fossil remains of a leafy Lepidodendron ophiurus BRONGN. shoot bearing a Flemingites strobilus produced by a tree similar to that shown in Text-fig. 2a; Middle Coal Measures Formation (Duckmantian – upper Bashkirian), Brymbo, near Wrexham, UK (see Thomas et al. 2020: fig. 16b); National Museum Wales specimen 2013.43G.120. in Naming Of Parts: The Use Of Fossil-Taxa In Palaeobotany
Text-fig. 5. Fossil remains of a leafy Lepidodendron ophiurus BRONGN. shoot bearing a Flemingites strobilus produced by a tree similar to that shown in Text-fig. 2a; Middle Coal Measures Formation (Duckmantian – upper Bashkirian), Brymbo, near Wrexham, UK (see Thomas et al. 2020: fig. 16b); National Museum Wales specimen 2013.43G.120.
Text-fig. 2. The distinction between fossil plants (a) and plant fossils (b). a: Reconstruction of a late Carboniferous arborescent lycopsid, often referred to as the Lepidodendron-tree; artwork by A. Townsend (formerly of National Museum Wales, Cardiff, UK; see Townsend et al. 1998); b: Lepidodendron aculeatum STERNB.; Middle Coal Measures Formation (Duckmantian – upper Bashkirian), Brymbo, near Wrexham, UK (see Thomas et al. 2020: fig. 16b); National Museum Wales specimen 2013.43G.88. in Naming Of Parts: The Use Of Fossil-Taxa In Palaeobotany
Text-fig. 2. The distinction between fossil plants (a) and plant fossils (b). a: Reconstruction of a late Carboniferous arborescent lycopsid, often referred to as the Lepidodendron-tree; artwork by A. Townsend (formerly of National Museum Wales, Cardiff, UK; see Townsend et al. 1998); b: Lepidodendron aculeatum STERNB.; Middle Coal Measures Formation (Duckmantian – upper Bashkirian), Brymbo, near Wrexham, UK (see Thomas et al. 2020: fig. 16b); National Museum Wales specimen 2013.43G.88.
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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OpenNeuro
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