Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
13,453
datasets available to search
ShareScore release 0.9.0
Dataset results
13,453 results for “Australia.”
Figure 7 in Data-rich description of a new genus of praying mantid egg parasitoids, Lasallegrion gen. n. (Hymenoptera: Torymidae: Podagrionini), with a re-examination of Podagrion species of Australia and New Caledonia
Figure 7. Metepisternum, posteroventral, females. (a), Lasallegrion koebelei; (b), L. virescens; (c), L. washingtoni; (d), Podagrion idomene sp. gr.; (e), P. pachymerum; (f), Mantiphaga gongylusae Risbec.
Figure 9 in Data-rich description of a new genus of praying mantid egg parasitoids, Lasallegrion gen. n. (Hymenoptera: Torymidae: Podagrionini), with a re-examination of Podagrion species of Australia and New Caledonia
Figure 9. Lasallegrion koebelei, intermediate (a – c, e, g, h, j), heteromorph (d, f, k) and homeomorph (i) male. (a), head, dorsal; (b), antenna, lateral; (c), head, frontal; (d), left midtibia and midtarsus, outer aspect; (e), right hind leg, outer aspect, intermediate male; (f), right hind leg, outer aspect, heteromorph male; (g), mesoscutellum and propodeum, dorsal; (h), part of propodeum and petiolus, dorsolateral; (i), propodeum and petiolus, dorsal; (j), propodeum and petiolus, dorsal; (k), propodeum and petiolus, dorsal.
Figure 3 in Data-rich description of a new genus of praying mantid egg parasitoids, Lasallegrion gen. n. (Hymenoptera: Torymidae: Podagrionini), with a re-examination of Podagrion species of Australia and New Caledonia
Figure 3. Shape PCA of L. koebelei and L. virescens. The scatterplot shows isosize versus shape PC1.
Figure 6 in Data-rich description of a new genus of praying mantid egg parasitoids, Lasallegrion gen. n. (Hymenoptera: Torymidae: Podagrionini), with a re-examination of Podagrion species of Australia and New Caledonia
Figure 6. Diagnostic characters of Lasallegrion gen. n.; L. koebelei (a – e), L. washingtoni (f). (a), habitus, lateral; (b), antenna, lateral; (c), head and mesosoma, lateral (arrows indicate pronotal collar carina and metapleuron); (d), propodeum, dorsal; (e), head, posterior; (f), petiolus and first sternite, ventral.
Figure 2 in Data-rich description of a new genus of praying mantid egg parasitoids, Lasallegrion gen. n. (Hymenoptera: Torymidae: Podagrionini), with a re-examination of Podagrion species of Australia and New Caledonia
Figure 2. Map of collection sites. Red – Lasallegrion koebelei; green – L. virescens; blue – L. washingtoni (MyMaps by google).
Pressure-driven Poiseuille flow inherited from Mesozoic mantle circulation led to the Eocene separation of Australia and Antarctica
<p>Mantle temperature field at 60 Ma and at a random distribution for TERRA and numerical grids for SHELLS.</p> <p> </p>
Data from: Do introduced apex predators suppress introduced mesopredators? A multiscale spatiotemporal study of dingoes and feral cats in Australia suggests not
<p>1. The role of apex predators in structuring ecosystems through the suppression of mesopredator activity and abundance is receiving increasing attention, largely due to the potential benefits for biodiversity conservation. In Australia, invasive mesopredators such as feral cats (Felis catus) have been identified as major contributors to Australia's mass mammal extinctions since European arrival. The introduced dingo (Canis familiaris) has been proposed as a novel way to suppress the impacts of feral cats, however scientific evidence of the dingo's suppressive role is equivocal. 2. We used camera traps to investigate whether a large introduced predator (dingo) suppresses the activity of an established introduced mesopredator (feral cat) across a national park site conserving endangered species, and an agricultural site supporting cattle grazing enterprises. 3. Feral cats and dingoes exhibited marked overlap in both temporal and spatial activity, indicating coexistence. Some temporal separation was evident at the agricultural site, however this reflected higher diurnal activity by dingoes, not a responsive shift in cat activity. Cat activity times were unrelated to dingo presence and did not differ between areas occupied by dingoes and dingo-free areas. There was no evidence of dingoes excluding cats from patches at either site, nor was there evidence of within-night fine-scale spatiotemporal avoidance of dingoes by cats. 4. Species co-occurrence models revealed dingoes had no negative effect on the probability of cat presence. The probability of detecting a cat on the national park was significantly higher in areas with dingoes than in dingo-free areas, while on agricultural land, cat detectability did not differ between areas with and without dingoes. Cats remained active, abundant and widespread across both sites, with evidence of cats hunting and breeding successfully in areas occupied by dingoes. 5. Synthesis and applications. Our findings indicate that feral cats can coexist with dingoes, without apparent suppression of cat activity, abundance, or fitness. Proposals to reintroduce or restore dingoes and other large predators to suppress invasive mesopredators and conserve biodiversity should be carefully evaluated on a site-by-site basis, as their ability to suppress cats and protect species of conservation significance will likely be context dependent.</p>
Seasonal Precipitation and Temperature Data in Canberra, Australia
<p>This dataset contains the precipitation, mean maximum temperature and mean minimum temperature data used in the study Application of Machine Learning to Attribution and Prediction of Seasonal Precipitation and Temperature Trends in Canberra, Australia. This data was originally from the Australian Bureau of Meteorology Climate Data Online (http://www.bom.gov.au/climate/data/index.shtml), but has been updated to have missing values (1% of data) filled using a moving average centred on the year for which the data is missing. <br> <br> Below is the abstract for the paper.</p> <p>Southeast Australia is frequently impacted by drought, requiring monitoring of how the various factors influencing drought change over time. Precipitation and temperature trends were analysed for Canberra, Australia, revealing decreasing autumn precipitation. However, annual precipitation remains stable as summer precipitation increased and the other seasons show no trend. Further, mean temperature increases in all seasons. These results suggest that Canberra is increasingly vulnerable to drought. Wavelet analysis suggests that the El-Niño Southern Oscillation (ENSO) influences precipitation and temperature in Canberra, although its impact on precipitation has decreased since the 2000s. Linear regression (LR) and support vector regression (SVR) were applied to attribute climate drivers of annual precipitation and mean maximum temperature (TMax). Important attributes of precipitation include ENSO, the southern annular mode (SAM), Indian Ocean Dipole (DMI) and Tasman Sea SST anomalies. Drivers of TMax included DMI and global warming attributes. The SVR models achieved high correlations of 0.737 and 0.531 on prediction of precipitation and TMax, respectively, outperforming the LR models which obtained correlations of 0.516 and 0.415 for prediction of precipitation and TMax on the testing data. This highlights the importance of continued research utilising machine learning methods for prediction of atmospheric variables and weather pattens on multiple time scales.</p>
FIGURES 26 33. Anopsobius wrighti n in A new species of the Gondwanan centipede Anopsobius (Chilopoda: Lithobiomorpha) from New South Wales, Australia
FIGURES 26 33. Anopsobius wrighti n. sp. 26 31, AM KS 57959, male, all 10 µm except 31, 5 µm. 26, gnathal edge of mandible; 27, 28, ventral part of mandibular gnathal edge; 29, dorsal mandibular teeth and furry pad; 30, 31, pretarsus of leg 13, posterior view and detail showing pore on main claw. 32, 33, AM KS 84039, female, gonopods and detail of spurs and claw, scales 50 µm, 10 µm.
FIGURES 13 14 in A new species of Gastropteridae (Gastropoda, Opisthobranchia, Cephalaspidea) from tropical Northeast Australia
FIGURES 13 14: Radula morphology of Siphopteron leah sp. nov. 13: inner and outer laterals; 14: close up of inner lateral showing two denticles at inner margin.
FIGURE 5 in Limnebius acupunctus, a new species of water beetle from Australia and Papua New Guinea (Coleoptera: Hydraenidae)
FIGURE 5. Limnebius acupunctus. Geographical distribution and aedeagal variation. Locality data (clockwise from top): Papua New Guinea, Morobe District, LaoBuolo road; N. Qld., Bushy Creek, MossmanMt. Lewis road; N. S. W., Cabbage Tree Creek; Victoria, Cann River, 12.5 km NNE Cann River; S. A., Cudlee Creek, River Torrens (holotype); N. T., Ellery Gorge, 85 km. W. of Alice Springs; W. A. Kunaguarrina, pool on Turner River; N. T., Adelaide River, at Daly River road crossing.
FIGURE 2 in A new species of Trapania (Nudibranchia: Goniodorididae) from Western Australia with comparisons to other IndoWest Pacific Trapania
FIGURE 2. Trapania safracornia (CASIZ 156067), A, Camera lucida drawing of buccal bulb. Scale = 5.8 mm. B, Camera lucida drawing of Central Nervous System. Scale = 0.13 mm. Abbreviations: bg, buccal ganglia; bp, buccal pump; cplc, cerebral pleural complex; e, esophagus; j, jaw; og, oral glands; pc, pedal commissure; p 1 3, pedal nerves; pg, pedal ganglia; cplc 1 3, cerebral pleural complex nerves; ppc, parapedal commissure; r, radula; rh, rhinophoral nerve; s, salivary glands; vl, visceral loop.
FIGURE 4 in A new species of Trapania (Nudibranchia: Goniodorididae) from Western Australia with comparisons to other IndoWest Pacific Trapania
FIGURE 4. Trapania safracornia (CASIZ 156067), Reproductive organs. Abbreviations: am, ampulla; bc, bursa copulatrix; dd, deferent duct; fgm, female gland mass; p, penis; pr, prostate; ps, penial spines; rs, receptaculum seminis; v, vagina; vd, vaginal duct. Scale bar = 0.25 mm.
FIGURE 1 in A new species of Trapania (Nudibranchia: Goniodorididae) from Western Australia with comparisons to other IndoWest Pacific Trapania
FIGURE 1. Trapania safracornia: Dorsal views of living animal; photos taken by Graeme Gunness. A, CASIZ 156067, Holotype; B, Two uncollected specimens. C, D, Camera lucida drawings of living animal showing the color pattern (C, paratype; D, holotype). Approximate size in life: 7 mm.
FIGURE 3 in A new species of Trapania (Nudibranchia: Goniodorididae) from Western Australia with comparisons to other IndoWest Pacific Trapania
FIGURE 3. Trapania safracornia (CASIZ 156067), AC. Radular morphology, scanning electron micrographs. A, Whole radula. B, Inner denticles, rows 10 12. C, Outer denticles, rows 12 14. D, Jaw rodlets, digital image from compound microscope.
FIGURE 10 in A new genus of millipedes (Diplopoda: Polydesmida: Dalodesmidae) from Tasmania, Australia with a mosaic distribution
FIGURE 10. Gonopod of A. sodalis n. sp. Posterior and slightly mesal (left) and lateral (center) drawings of left gonopod telopodite of male, QVM 23: 25390. Lateral and slightly ventral SEM (right) of left gonopod telopodite of male, QVM 23: 25385. Setation not shown in drawings; dashed line marks course of prostatic groove.
FIGURE 6 in A new genus of millipedes (Diplopoda: Polydesmida: Dalodesmidae) from Tasmania, Australia with a mosaic distribution
FIGURE 6. Gonopod of A. silvaticum n. sp. Mesal (left) and lateral (center) drawings of left gonopod telopodite of male from QVM 23: 25286. Lateral and slightly ventral SEM (right) of right gonopod telopodite of another male from QVM 23: 25286. Setation not shown in drawings; dashed line marks course of prostatic groove.
FIGURE 6. Bromodesmus catrionae n in A new genus and four new species of millipedes from Tasmania, Australia (Diplopoda: Polydesmida: Dalodesmidae), with notes on male leg setae in some Tasmanian dalodesmids
FIGURE 6. Bromodesmus catrionae n. sp. SEM view of gonopods removed from segment 7, showing dorsal (posterior) aspect of gonocoxae (QVM 23: 17836); c = cannula. Scale bar = 0.50 mm.
FIGURE 11 in A new genus of millipedes (Diplopoda: Polydesmida: Dalodesmidae) from Tasmania, Australia with a mosaic distribution
FIGURE 11. Gonopod of A. wurrawurraense n. sp. Posterior and slightly lateral (left) and lateral (center) drawings of left gonopod telopodite of male from QVM 23: 25426. Lateral and slightly ventral SEM (right) of right gonopod telopodite of male, QVM 23: 25427. Setation not shown in drawings; dashed line marks course of prostatic groove.
FIGURE 3. Bromodesmus riparius n in A new genus and four new species of millipedes from Tasmania, Australia (Diplopoda: Polydesmida: Dalodesmidae), with notes on male leg setae in some Tasmanian dalodesmids
FIGURE 3. Bromodesmus riparius n. sp. Right lateral views of males with gonocoxae retracted into aperture (left) and extruded (right). Both specimens from type locality (QVM 23: 45812).
ScienceDex guides
Understand access before you commit
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.