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Fish community data obtained from Antillean-Z fish trap deployment in the Eastern Gulf of Shark Bay, Australia from June 2013 to August 2013
This dataset consists of capture data of teleost communities caught in Antillean-Z fish traps deployed in 2013. Also included are anciliary environmental data as well as trap deployment information. This dataset will be used to determine changes in teleost community structure and abundance in response to an extreme temperature event and associated decline in seagrass cover in Shark Bay, Western Australia.
Fig. 12. Bennelongia cuensis sensu lato A-B, D-L in A review of Bennelongia De Deckker & McKenzie, 1981 (Crustacea, Ostracoda) species from eastern Australia with the description of three new species
Fig. 12. Bennelongia cuensis sensu lato A-B, D-L from unnamed pool near Kilcowera Station, QLD; C from island claypan on Bloodwood Station NSW. A. ♀, LVi (W40053). B. ♀, RVi (W40053). C. Ƌ, LVi (W40002). D. Ƌ, RVi (W40052). E. ♀, Cp dorsal (W40059). F. ♀, Cp ventral (W40058). G. Ƌ, Cp ventral (W40056). H. Ƌ, Cp dorsal (W40055). I. Ƌ, RVi detail anteriorly (W40052). J. Ƌ, RVi detail anteriorly (W40052). K. Ƌ, CpRl (W40054). L. ♀, CpRl (W40057). Scales: A-H, K-L = 1000 μm, J = 200 μm, I = 100 μm.
Fig. 13 in A review of Bennelongia De Deckker & McKenzie, 1981 (Crustacea, Ostracoda) species from eastern Australia with the description of three new species
Fig. 13. Bennelongia cuensis sensu lato, all from unnamed pool near Kilcowera Station, QLD, Ƌ (W40052). A. Right prehensile palp. B. Left prehensile palp. C. Hemipenis. D. Outline of other hemipenis. Scales: A-B = 89.3 μm, C-D = 104.2 μm.
Fig. 9 in A review of Bennelongia De Deckker & McKenzie, 1981 (Crustacea, Ostracoda) species from eastern Australia with the description of three new species
Fig. 9. Bennelongia pinpi De Deckker, 1981, all from Salt Lake, north of Hughenden, QLD. A. ♀, LVi (W40028). B. ♀, RVi (W40028). C. Ƌ, LVi (W40027). D. Ƌ, RVi (W40027). E. ♀, Cp dorsal (W40030). F. ♀, Cp ventral (W40031). G. Ƌ, Cp ventral (W40032). H. Ƌ, Cp dorsal (W40034). I. Ƌ, RVi detail anteriorly (W40027). J. Ƌ, RVi detail anteriorly (W40027). K. Ƌ, CpRl (W40033). L. ♀, CpRl (W40029). Scales: A-H, K-L = 1000 μm, J-I = 100 μm.
Fig. 3 in A review of Bennelongia De Deckker & McKenzie, 1981 (Crustacea, Ostracoda) species from eastern Australia with the description of three new species
Fig. 3. Parsimonious network constructed at the 95% probability limit with COI sequences from Bennelongia specimens. For each haplotype, sequence names are given. Squares indicate ancestral haplotypes, small circles missing haplotypes and dotted lines connection boundaries. Only seven of the 12 unconnected networks are shown here, the remaining five were clearly separated from the sequences investigated here and corresponded to the published networks in Martens et al. (2012). Six of the unconnected networks shown here are congruent with the newly described species. One network with previously published sequences (B. cuensis Martens et al., 2012) was included to illustrate its separation to the cryptic species B. cuensis sensu lato.
Fig. 6 in A review of Bennelongia De Deckker & McKenzie, 1981 (Crustacea, Ostracoda) species from eastern Australia with the description of three new species
Fig. 6. Bennelongia mckenziei sp. nov., all from Horseshoe Lagoon, QLD (Type locality). A. Holotype ♀, LVi (W40071). B. Holotype ♀, RVi (W40071). C. ♀, Cp dorsal (W40072). D. ♀, CpRl (W40073). E. Holotype ♀, Cp ventral (W40071). F. Holotype ♀, RVi detail anteriorly (W40071). G. Holotype ♀, RVi detail anteriorly (W40071). Scales: A-E = 500 μm, F-G = 100 μm.
Fig. 1 in A review of Bennelongia De Deckker & McKenzie, 1981 (Crustacea, Ostracoda) species from eastern Australia with the description of three new species
Fig. 1. Map of localities of Bennelongia species from eastern Australia recorded in the present study.
Fig. 5 in A review of Bennelongia De Deckker & McKenzie, 1981 (Crustacea, Ostracoda) species from eastern Australia with the description of three new species
Fig. 5. Bennelongia dedeckkeri sp. nov. (A = W40017 & B-D = W40016 Ƌ). A. Right prehensile palp. B. Left prehensile palp. C. Hemipenis showing inner anatomy. D. Outline of other hemipenis. Scales: A-B = 30.9 μm, C-D = 89.3 μm.
Fig. 4 in A review of Bennelongia De Deckker & McKenzie, 1981 (Crustacea, Ostracoda) species from eastern Australia with the description of three new species
Fig. 4. Bennelongia dedeckkeri sp. nov., all from Lake Galilee, QLD (Type locality). A. ♀, LVi (W40020). B. ♀, RVi (W40019). C. Ƌ, LVi (W40016). D. Holotype Ƌ, RVi (W40075). E. ♀, Cp dorsal (W40025). F. ♀, Cp ventral (W40026). G. Ƌ, Cp (ventral W40023). H. Ƌ, Cp dorsal (W40022). I. Holotype Ƌ, RVi detail anteriorly (W40075). J. Ƌ, RVi detail anteriorly (W40019). K. Ƌ, CpRl (W40021). L. ♀, CpRl (W40024). Scales: A-H, K-L = 500 μm, I-J = 100 μm.
Fig. 8 in A review of Bennelongia De Deckker & McKenzie, 1981 (Crustacea, Ostracoda) species from eastern Australia with the description of three new species
Fig. 8. Bennelongia regina sp. nov. (all from holotype Ƌ = W40060). A. Right prehensile palp. B. Left prehensile palp. C. Hemipenis. D. Outline of other hemipenis. Scales: A-B = 89.3 μm, C-D = 104.2 μm.
Fig. 11 in A review of Bennelongia De Deckker & McKenzie, 1981 (Crustacea, Ostracoda) species from eastern Australia with the description of three new species
Fig. 11. Bennelongia harpago De Deckker & Mckenzie, 1981, all from Lake Powlathanga, QLD. A. ♀, LVi (W40014). B. ♀, RVi (W40014). C. ♀, CpRl (W40015). D. ♀, Cp dorsal (RS35). E. ♀, RVi detail anteriorly (W40014). Scales: A-D = 500 μm, E = 100 μm.
Fig. 7 in A review of Bennelongia De Deckker & McKenzie, 1981 (Crustacea, Ostracoda) species from eastern Australia with the description of three new species
Fig. 7. Bennelongia regina sp. nov., all from Horseshoe Lagoon, QLD (Type locality). A. ♀, LVi (W40061). B. ♀, RVi (W40061). C. Holotype Ƌ, LVi (W40060). D. Holotype Ƌ, RVi (W40060). E. ♀, Cp dorsal (W40067). F. ♀, Cp ventral (W40066). G. Ƌ, Cp ventral (W40063). H. Ƌ, Cp dorsal (W40062). I. Holotype Ƌ, RVi detail anteriorly (W40060). J. Holotype Ƌ, RVi detail anteriorly (W40060). K. Ƌ, CpRl (W40064). L. Allotype ♀, CpRl (W40074). Scales: A-H, K-L = 1000 μm, J = 200 μm, I = 100 μm.
Fig. 10 in A review of Bennelongia De Deckker & McKenzie, 1981 (Crustacea, Ostracoda) species from eastern Australia with the description of three new species
Fig. 10. Bennelongia pinpi De Deckker, 1981. (A-D = W40043 from Pelican Lake QLD, E = W40035 from Lake Louisa QLD). A-B. Outlines of hemipenes. C. Left prehensile palp. D. Right prehensile palp. E. Left prehensile palp. Scales: A-B = 156.3 μm, C-D = 89.3 μm, E = 42.6 μm.
Fig. 2. Phylogenetic tree constructed with 57 in A review of Bennelongia De Deckker & McKenzie, 1981 (Crustacea, Ostracoda) species from eastern Australia with the description of three new species
Fig. 2. Phylogenetic tree constructed with 57 novel COI sequences of Bennelongia, 26 published Bennelongia sequences and one Heterocypris spec. as outgroup (sequence names are given in brackets at the end of species names). This tree represents two trees of identical topology inferred by ML and BI. Bootstrap values (for 1000 bootstrap replicates) from ML analyses and Bayesian posterior probabilities (ranging from 0 to 1) are shown for each node (in the format: 'Bootstrap Support/Posterior Probability'). Branch lengths are proportional to the genetic distance scale at the bottom left. Clades with published sequences have been collapsed; the number of sequences in these clades is included in brackets after the species name. Nodes with less than 50% bootstrap support and a posterior probability of less than 0.5 have been collapsed. The tree shows six strongly supported clades that correspond to the species presented in this study.
Figure 3. from Euastacus morgani sp. n., a new spiny crayfish (Crustacea, Decapoda, Parastacidae) from the highland rainforests of eastern New South Wales, Australia - ZooKeys 85: 17-26 (11 March 2011) https://doi.org/10.3897/zookeys.85.1237
Figure 3. - Location of the type locality (black square) on the northern margin of Bindarri National Park, in central eastern Australia.
Figure 2. from Euastacus morgani sp. n., a new spiny crayfish (Crustacea, Decapoda, Parastacidae) from the highland rainforests of eastern New South Wales, Australia - ZooKeys 85: 17-26 (11 March 2011) https://doi.org/10.3897/zookeys.85.1237
Figure 2. - Euastacus morgani sp. n. Dorsal view of body A and cheliped B, holotype specimen, AM P.84263. Dorsal view of antennal squame C, lateral view of third maxilliped D and ventral view of left hand side of cephalon showing interantennal scale E, specimen ACP 1103. Scale bars = 5 mm.
Figure 2 in The Tumbarumba Basaltic Gem Field, New South Wales: In Relation to Sapphire-Ruby Deposits of Eastern Australia
Figure 2. Gemstones, Tumbarumba field, photography G. Webb. a—Zircon xenocryst in basalt matrix, Ruby Creek. The crystal is 3 mm across. b—Strongly corroded blue sapphires, Tumbarumba Creek. Crystals to 6 mm across. c—Zoned "agate" sapphires, Tumbarumba Creek. Crystals to 6 mm across. d—Trapiche-like sapphires, with radiating silk zones, Tumbarumba Creek. Crystals to 11 mm acros s. e—Diffuse-zoned, vari-coloured sapphire crystals, Tumbarumba Creek. Crystals to 7 mm across. f—Pink to red corundums, Tumbarumb a Creek. Crystals to 11 mm across.
Figure 6 in The Tumbarumba Basaltic Gem Field, New South Wales: In Relation to Sapphire-Ruby Deposits of Eastern Australia
Figure 6. Representative colour absorption spectra (amplitude, A, plotted against wavelength in nm), unusual
Figure 10 in The Tumbarumba Basaltic Gem Field, New South Wales: In Relation to Sapphire-Ruby Deposits of Eastern Australia
Figure 10. Comparative post-Eocene basalt ages, Southern Tablelands–Snowy Mountains region, New South Wales, Australia. Age data for Grabben Gullen field from Bishop et al. (1985) and for Snowy field from Wellman & McDougall (1974),Young & McDougall (1993) and this paper. The diagram sets out entries in approximate geographic relationship. Ɵ indicates sapphire/zircon gemstone locality. Arrows indicate directions of plate motion and predicted volcanic shift.
Figure 1 in The Tumbarumba Basaltic Gem Field, New South Wales: In Relation to Sapphire-Ruby Deposits of Eastern Australia
Figure 1. Distribution of gem-gearing deposits (Co) related to Cainozoic basalts (enclosed areas) and deep leads (dashes) overlying basement rocks, with the Tumut Ponds serpentinite belt (filled areas). Modified from Wagga Wagga 1: 250 000 metallogenic map, showing locations of basalt sample (Nos), thin section (+) and analytical (×) sites, K-Ar basalt dates (Ma) with previous dating (O) and new dates (Z), zircon fission track dating sites (FT-Ma), zircon U/Pb isotope dating sites (U/Pb Ma), likely eruptive sites (Δ) and possible eruptive sites (Δ).
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.