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Fig. 8 in A Reassessment of Saltuarius swaini (Lacertilia: Diplodactylidae) in Southeastern Queensland and New South Wales; Two New Taxa, Phylogeny, Biogeography and Conservation
Fig. 8. (A) Rostral scale excluded from nostril, Saltuarius kateae n.sp. QM J83583; (B) rostral scale contacts nostril, S. swaini QM J51637. Condition (B) also applies for S. moritzi n.sp. and S. wyberba.
Fig. 12 in A Reassessment of Saltuarius swaini (Lacertilia: Diplodactylidae) in Southeastern Queensland and New South Wales; Two New Taxa, Phylogeny, Biogeography and Conservation
Fig. 12. Variation of colour and pattern in Saltuarius moritzi n.sp. (A) AM R160420, Bruxner Park, near Coffs Harbour (30°14'30"S 153°05'36"E) NSW (photograph—Jeff Wright, QM); (B) Ebor Falls (30°24'19"S 152°20'20"E) NSW (photograph—Glenn Shea); (C) QM J83588, Blue Hole, SE Armidale on upper reaches of Gara River (30°36'00"S 151°48'09"E) NSW (photograph—Ross Sadlier, AM).
Fig. 11 in A Reassessment of Saltuarius swaini (Lacertilia: Diplodactylidae) in Southeastern Queensland and New South Wales; Two New Taxa, Phylogeny, Biogeography and Conservation
Fig. 11. Distribution for "Saltuarius swaini" lineage in southeastern Queensland and northeastern New South Wales. P = S. swaini; Q = S. kateae n.sp.; N = S. wyberba; D = S. moritzi n.sp.; × = Saltuarius records, presumably S. moritzi n.sp., from the NSW National Parks and Wildlife Service database;?1,?2,?3 = QM J72343, AM R143592 and AM R43870 respectively—see Results and Future directions for further discussion. The species' symbols correspond with those used in Figs 2–4.
Fig. 10 in A Reassessment of Saltuarius swaini (Lacertilia: Diplodactylidae) in Southeastern Queensland and New South Wales; Two New Taxa, Phylogeny, Biogeography and Conservation
Fig. 10. Dorsal surface of toes. (A) Without enlarged spinose tubercules, Saltuarius kateae n.sp. AM R164161; (B) with enlarged spinose tubercules, S. swaini QM J54846. Condition (B) also
Fig. 2 in A Reassessment of Saltuarius swaini (Lacertilia: Diplodactylidae) in Southeastern Queensland and New South Wales; Two New Taxa, Phylogeny, Biogeography and Conservation
Fig. 2. Scatterplot of scores from discriminant functions 1 and 2 for female Saltuarius. Q S. kateae n.sp., D S. moritzi n.sp., P S. swaini, N S. wyberba. Open symbols are individuals assigned to each species on other criteria (locality, genetic identity, coloration) that were considered by the discriminant functions to belong to other species.
Fig. 15 in A Reassessment of Saltuarius swaini (Lacertilia: Diplodactylidae) in Southeastern Queensland and New South Wales; Two New Taxa, Phylogeny, Biogeography and Conservation
Fig. 15. Saltuarius wyberba (A) Girraween NP (28°51'S 151°55'E) SEQ (photograph—Jeff Wright, QM); (B) AM R164152, Gibraltar Range NP, Gwydir Hwy, 4.2 km W rangers station
Fig. 7. V in A Reassessment of Saltuarius swaini (Lacertilia: Diplodactylidae) in Southeastern Queensland and New South Wales; Two New Taxa, Phylogeny, Biogeography and Conservation
Fig. 7. V-shaped pattern between eyes in (A) Saltuarius kateae n.sp. AM R164166; (B) S. moritzi n.sp. AM R160420; (C) S. moritzi n.sp. AM R158990; (D) S. swaini QM J51640; (E, facing page) S. wyberba QM J28648.
Fig. 1 in A Reassessment of Saltuarius swaini (Lacertilia: Diplodactylidae) in Southeastern Queensland and New South Wales; Two New Taxa, Phylogeny, Biogeography and Conservation
Fig. 1. Phylogeny of Saltuarius spp. based on cytochrome b sequence data. Some branches may be represented by multiple individuals with identical sequences. Numbers on the branches represent Bayesian Posterior Probabilities. Branches with <50% support were collapsed.
Fig. 6. Saltuarius kateae n in A Reassessment of Saltuarius swaini (Lacertilia: Diplodactylidae) in Southeastern Queensland and New South Wales; Two New Taxa, Phylogeny, Biogeography and Conservation
Fig. 6. Saltuarius kateae n.sp. (AM R164163—holotype), Wyans Creek Road, 11.4 km W of Old Tenterfield Road (29°08'31"S 152°47'06"E) NSW (photograph—R. Sadlier, AM).
FIGURE 16 in Total-evidence Phylogeny of the New World Polistes Lepeletier, 1836, Paper Wasps (Vespidae, Polistinae, Polistini)
FIGURE 16. Peduncle: A, lateral peduncle in Polistes instabilis; B, central peduncle in Polistes carolina.
FIGURE 10 in Total-evidence Phylogeny of the New World Polistes Lepeletier, 1836, Paper Wasps (Vespidae, Polistinae, Polistini)
FIGURE 10. Propodeum and propodeal orifice: A, propodeal striae absent, and propodeal orifice rounded in Polistes torresae; B, propodeal striae weak all over and propodeal orifice rounded in Polistes apachus; and C, propodeal striae strong all over and propodeal orifice elongate in Polistes versicolor.
FIGURE 15 in Total-evidence Phylogeny of the New World Polistes Lepeletier, 1836, Paper Wasps (Vespidae, Polistinae, Polistini)
FIGURE 15. Comb shape: A, circular in Polistes fuscatus; B, subcircular in Polistes instabilis; C, leaf shaped in Polistes versicolor; D, narrow in Polistes crinitus; and E, long and vertical in Polistes goeldii.
FIGURE 9 in Total-evidence Phylogeny of the New World Polistes Lepeletier, 1836, Paper Wasps (Vespidae, Polistinae, Polistini)
FIGURE 9. Mesepisternum: dorsal groove complete and epicnemial carina absent in A, Polistes cavapytiformis; and B, dorsal groove incomplete and epicnemial carina complete in Polistes thoracicus.
FIGURE 2 in Total-evidence Phylogeny of the New World Polistes Lepeletier, 1836, Paper Wasps (Vespidae, Polistinae, Polistini)
FIGURE 2. Single most parsimonious tree obtained in the analysis of morphological, behavioral and molecular data for 101 species of Polistes (opposite page and continued above). Node numbers represent support values from symmetrical resampling, reported as absolute frequencies.
FIGURE 6 in Total-evidence Phylogeny of the New World Polistes Lepeletier, 1836, Paper Wasps (Vespidae, Polistinae, Polistini)
FIGURE 6. Gena width at midlength, lateral view: A, equal to or slightly wider than eye in Polistes pacificus; and B, distinctly wider than eye in Polistes rufiventris.
FIGURE 14. Mesosoma, terga I and II in Total-evidence Phylogeny of the New World Polistes Lepeletier, 1836, Paper Wasps (Vespidae, Polistinae, Polistini)
FIGURE 14. Mesosoma, terga I and II shape and dimensions: A, Vespula squamosa (outgroup); B, Polistes apachus; C, Polistes bicolor; D, Polistes fuscatus; E, Polistes terresae; and F, Polistes versicolor.
FIGURE 8 in Total-evidence Phylogeny of the New World Polistes Lepeletier, 1836, Paper Wasps (Vespidae, Polistinae, Polistini)
FIGURE 8. Occipital carina and pronotal carina of A, Polistes cavapytiformes and B, Polistes penai. Extension of occipital carina and shape and extension of pronotal carina.
FIGURE 13. Tergum I in Total-evidence Phylogeny of the New World Polistes Lepeletier, 1836, Paper Wasps (Vespidae, Polistinae, Polistini)
FIGURE 13. Tergum I shape, lateral view: A, abruptly widened in Polistes huristicornis, and B, gradually widened in Polistes occipitalis.
FIGURE 7 in Total-evidence Phylogeny of the New World Polistes Lepeletier, 1836, Paper Wasps (Vespidae, Polistinae, Polistini)
FIGURE 7. Head and pronotum, in dorsal view: A, occiput strongly convex, anterior region of pronotum rounded and humeri outline not projecting in Polistes cavapytiformis; B, occiput almost straight or weakly convex and humeri outline slightly projecting in Polistes occipitalis; C, anterior region of pronotum with a central projection and humeri outline strongly projecting in Polistes testaceicolor.
FIGURE 12. Terga I and II in Total-evidence Phylogeny of the New World Polistes Lepeletier, 1836, Paper Wasps (Vespidae, Polistinae, Polistini)
FIGURE 12. Terga I and II, dorsal view: A, tergum I conical, as wide as long, and tergum II as wide as long in Polistes aurifer; and B, tergum I conical, longer than wide and tergum II longer than wide in Polistes exclamans.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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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.