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547 results for “New South Wales”
FIGURE 11 in A new Candonopsini (Ostracoda) genus from subterranean waters of New South Wales (Australia)
FIGURE 11. Line drawings of Hancockcandonopsis sp. 2. Female (P.100303): A—LV, inside view; B—RV, outside view; C, D—A2; E—L7 (basal segment not illustrated); F—UR; G—UR attachment. Scales = 0.1 mm.
FIGURE 1 in A new Candonopsini (Ostracoda) genus from subterranean waters of New South Wales (Australia)
FIGURE 1. SEM of Hancockcandonopsis inachos gen. nov. sp. nov. Male: A—whole animal inside LV; B—RV, lateral view from the outside; C—hemipenis; D—right prehensile palp.
FIGURE 4 in A new Candonopsini (Ostracoda) genus from subterranean waters of New South Wales (Australia)
FIGURE 4. Line drawings of Hancockcandonopsis inachos gen. nov. sp. nov. A-F, male (P.100296); G, H, female (P.100297): A—L6; B—Zenker organ; C—UR attachment; D—UR; E—hemipenis; F—L7; G—UR; H—UR attachment. Scales = 0.1 mm.
FIGURE 3 in A new Candonopsini (Ostracoda) genus from subterranean waters of New South Wales (Australia)
FIGURE 3. Line drawings of Hancockcandonopsis inachos gen. nov. sp. nov. A, C-I, male (P. 100296); B, J, female (P.100297): A—RV, lateral view from the outside; B, LV, lateral view from the inside; C, A1 (not all setae illustrated on the terminal segment); D, left prehensile palp, E, right prehensile palp; F, Mxl-palp; G—Md-palp; H—A2; I—Rake-like organ; J— A2. Scales = 0.1 mm.
FIGURE 8 in A new Candonopsini (Ostracoda) genus from subterranean waters of New South Wales (Australia)
FIGURE 8. Line drawings of Hancockcandonopsis tamworthi gen. nov. sp. nov. A–C, F–I, L–O, male (P.100300); D, E, J, K, female (P.100301): A—LV, inside view; B—LV, outside view; C—RV, inside view; D—whole carapace viewed form the right side; E—RV, inside view; F—A1 (not all setae on the terminal segment illustrated); G, A2; H—Md-palp; I—Mxl-palp; J—A2; K—L5; L—L6; M—right prehensile palp, N—left prehensile palps; O—L7. Scales = 0.1 mm.
FIGURE 7 in A new Candonopsini (Ostracoda) genus from subterranean waters of New South Wales (Australia)
FIGURE 7. SEM of Hancockcandonopsis tamworthi gen. nov. sp. nov. Female: A—whole animal viewed from the right side (tilted); B—detail of the posterior end; C—detail of the anterior end; D—cuticular pore with seta on the surface.
FIGURE 10 in A new Candonopsini (Ostracoda) genus from subterranean waters of New South Wales (Australia)
FIGURE 10. Line drawings of Hancockcandonopsis sp. 1. Female (P.100302): A—RV, viewed from the inside; B—LV, viewed from the outside; C—A1 (not all setae on the terminal segment illustrated); D—Rake-like organ; E—A2; F—Mxl-palp; G—Md-palp; H—L5; I—L6; J—L7; K—UT and genital segment. Scales = 0.1 mm.
FIGURE 9 in A new Candonopsini (Ostracoda) genus from subterranean waters of New South Wales (Australia)
FIGURE 9. Line drawings of Hancockcandonopsis tamworthi gen. nov. sp. nov. A, B, E, male (P.100300); C, D, female (P.100301): A—UR; B—UR attachment; C—UR and genital field; D—UR attachment; E—hemipenis. Scale = 0.1 mm.
FIGURES 2–7 in A new species of Dinotoperla Tillyard, 1921 from the Shoalhaven Catchment, New South Wales, Australia (Plecoptera: Gripopterygidae)
FIGURES 2–7. Dinotoperla spp., ♂: (2–5) D. cherylae sp. nov.: (2) habitus (hind wings shrivelled); (3, 4) terminalia, lateral, two different specimens; (5) tip of abdomen, dorsal; (6, 7) terminalia, lateral, from Theischinger & Cardale (1987): (6) D. evansi Kimmins; (7) D. uniformis Kimmins.
Rates of expansion of invasive cane toads in New South Wales
<p><span>Geographical variation in abiotic and biotic conditions can significantly affect the rate that an invasive species expands its range. The colonisation of Australia by cane toads (<i>Rhinella marina</i>) has attracted extensive research, but mostly in tropical regions rather than cooler climatic zones. We assembled multiple datasets to characterise the historical spread of toads at their southern (cool-climate) invasion front in north-eastern New South Wales (NSW). Perhaps because toads are relatively easy to find, visual and acoustic surveys appear to be as effective as eDNA-based surveys in detecting the species' presence. Expansion of the toads' range in NSW has occurred through the establishment of satellite populations as well as by growth of the range-core. Overall rates of spread have been more than tenfold lower than on the tropical front (means of <5 km vs. >50 km per year), and in some decades, the toads' southern range has declined rather than expanded. Overall rates of spread since 1970 have accelerated to the south (through coastal habitats), but not to the west (into montane areas). The toads' range has expanded most rapidly in decades with dry, warm weather conditions, but predicted future changes to climate are likely to have only minor effects on rates of toad spread. Understanding historical patterns of toad invasion in NSW can clarify probable future spread, and hence identify priority areas for control programs.</span></p>
Figure 3 in Maratus fimbriatus, a new peacock spider from the Darling Riverine Plains of New South Wales, with a review of the Maratus chrysomelas group (Araneae: Salticidae: Euophryini)
Figure 3. Two views of the underside of a male Maratus fimbriatus. From below, the fringes of
FIGURE 27 in A new species of Cribrarula (Gastropoda: Cypraeidae) from New South Wales, Australia
FIGURE 27. Map of Eastern Australia showing the type locality of Cribrarula gravida sp. nov., Smoky Cape, NSW, 030°56.4'S, 153°5.9'E (N), as well as locality records of C. cribraria cribraria and C. cribraria melwardi (x) used in the multivariate analysis (Fig. 26) of shell characters to compare with the new species.
Figure 28 in A new species of Cribrarula (Gastropoda: Cypraeidae) from New South Wales, Australia
Figure 28. Holotype of C. gravida sp. nov. and its cast made of clear nail polish, used to protect the glossy exterior surface of the shell against the slightly etching buffer used during in situ digestion of the dried tissue in the shell (Moretzsohn and de Couet, in prep.). After the digestion is complete, the polish coat is peeled away, and if done carefully, a perfect cast of the shell can be obtained. Note that the polish removed the China ink used to write the catalog number on the shell labrum. The cast was also returned to the Australian Museum, and now is part of the lot AMS C. 91000.
Figure 13 in Maratus elephans, a new member of the volans group from New South Wales (Araneae: Salticidae: Euophryinae)
Figure 13. Sequential but not consecutive frames (25FPS, exposure 20 msec/frame) from a video
FIGURE 3 in Could this be Australia's rarest Banksia? Banksia vincentia (Proteaceae), a new species known from fourteen plants from south-eastern New South Wales, Australia
FIGURE 3. Abaxial surface of common bracts in the Banksia spinulosa complex. A. B. neoanglica (M.L. Stimpson 98); B. B. cunninghamii (M.L. Stimpson 122); C. B. collina (M.L. Stimpson 25A); D. B. spinulosa (M.L. Stimpson 120); E. B. sp. Jervis Bay (M.L. Stimpson 47A, NE). F. B. sp. Jervis Bay (S. Harris s.n., NE 99429) adaxial surface of common bract and floral bract. Scale bar A–E and F = 1 mm.
FIGURE 6 in Could this be Australia's rarest Banksia? Banksia vincentia (Proteaceae), a new species known from fourteen plants from south-eastern New South Wales, Australia
FIGURE 6. Banksia vincentia in its natural habitat. A. Habitat and habit of B. vincentia with MLS; B. Branch with developing conflorescence; perianth yellow; C. plant with developing conflorescences; perianth orange, styles turning red; D. Developing conflorescence: perianth yellow, styles turning purple–black; E. Lignotuber and spreading base of branches; F. Signs of herbivory on green leaves and terminal bud. Photos by G. Dryden, S. Harris, M.L. Stimpson and A. Bauman.
FIGURE. 4 in Could this be Australia's rarest Banksia? Banksia vincentia (Proteaceae), a new species known from fourteen plants from south-eastern New South Wales, Australia
FIGURE. 4. Representative adaxial and abaxial leaf surface of all known putative taxa in the B. spinulosa complex. A. Adaxial leaf surface. B. Abaxial leaf surface. From left to right in both images B. sp. Jervis Bay (M.L. Stimpson 124); B. neoanglica (M.L. Stimpson 28b); B. spinulosa (M.L. Stimpson 120); B. cunninghamii (M.L. Stimpson 117); B. collina (M.L. Stimpson 60c). Scale bar =5 mm.
FIGURE 2 in Could this be Australia's rarest Banksia? Banksia vincentia (Proteaceae), a new species known from fourteen plants from south-eastern New South Wales, Australia
FIGURE 2. Phenograms resulting from flexible UPGMA cluster analysis of individuals of the Banksia spinulosa complex. Bcu = B. cunninghamii, Bn = B. neoanglica, Bsp = B. spinulosa, Bco = B. collina, Bv = B. sp. Jervis Bay. The numbers allocated to each OTU are collector numbers and are vouchered at NSW or NE.
FIGURE 1 in Could this be Australia's rarest Banksia? Banksia vincentia (Proteaceae), a new species known from fourteen plants from south-eastern New South Wales, Australia
FIGURE 1. Ordination plot of the results of semi-strong multidimensional scaling for the B. spinulosa group, including putative new species. Stress = 0.0629. Bottom left: B. cunninghamii (turquoise), top left: B. neoanglica (light green), bottom middle: B. sp. Jervis Bay (blue), top right: B. spinulosa (brown), bottom right: B. collina (purple).
Figure 7 in Two new species of the genus Chilibathynella Noodt, 1963 and Onychobathynella bifurcata gen. et sp. nov (Crustacea: Syncarida: Parabathynellidae) from New South Wales, Australia
Figure 7. Onychobathynella bifurcata gen. nov. sp. nov. (A–H) female holotype. (A) Antennule (dorsal view); (B) antenna (dorsal view); (C) labrum; (D) mandible; (E) maxillule; (F) maxilla; (G) pars incisiva of mandible; (H) detail of the segments five and six of antennule with special setae like curved claws and aesthetascs. Scale bar in mm.
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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.
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.