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.
2,247
datasets available to search
ShareScore release 0.9.0
Dataset results
2,247 results for “Western Australia”
FIGURE 3 Bayesian consensus tree representing the known Bathynellidae taxa constructed using COI, 16S, 28S, ITS2 and 18S in The role of allopatric speciation and ancient origins of Bathynellidae (Crustacea) in the Pilbara (Western Australia): two new genera from the De Grey River catchment
FIGURE 3 Bayesian consensus tree representing the known Bathynellidae taxa constructed using COI, 16S, 28S, ITS2 and 18S alignments and model partitioning implemented in MrBayes. Numbers on branches represent Bayesian posterior probabilities followed by maximum likelihood bootstrap percentage. Bathynellinae and Gallobathynellinae clades are collapsed for easier interpretation.
FIGURE 5 in The role of allopatric speciation and ancient origins of Bathynellidae (Crustacea) in the Pilbara (Western Australia): two new genera from the De Grey River catchment
FIGURE 5 Bathynellidae species distribution in the Goldsworthy area (Callawa, Cundaline, Yarrie ridges).
FIGURE 2 Bayesian consensus single gene trees for COI, 16S, 28S and ITS2 in The role of allopatric speciation and ancient origins of Bathynellidae (Crustacea) in the Pilbara (Western Australia): two new genera from the De Grey River catchment
FIGURE 2 Bayesian consensus single gene trees for COI, 16S, 28S and ITS2. Numbers on branches represent Bayesian posterior probabilities followed by maximum likelihood bootstrap percentage. ABGD and PTP results are reported next to the trees. ABGD method: major partitions are showed; PTP: partitions with the highest support for each group are represented.
Population connectivity and genetic offset in the spawning coral Acropora digitifera in Western Australia
Open the record for dataset details and reuse information.
3-D geological and petrophysical models with synthetic geophysics based on data from the Hamersley region (Western Australia)
<p>3-D geological and petrophysical models with synthetic geophysics based on data from the Hamersley region (Western Australia)</p> <p>M. Jessell<sup>1,2</sup>, J. Giraud<sup>1,2</sup>, M. Lindsay<sup>1,2 </sup></p> <p><sup>1</sup>Centre for Exploration Targeting (School of Earth Sciences), University of Western Australia, 35 Stirling Highway, 6009 Crawley, Australia</p> <p><sup>2</sup>Mineral Exploration Cooperative Research Centre, School of Earth Sciences, University of Western Australia, 35 Stirling Highway, WA Crawley 6009, Australia</p> <p>Contact author: Jeremie Giraud (jeremie.giraud@uwa.edu.au)</p> <p>Companion dataset to the paper:</p> <p>Structural, petrophysical and geological constraints in potential field inversion using the Tomofast-x open-source code, J. Giraud, V. Ogarko, R. Martin, M. Lindsay, M. Jessell, Geoscientific Model Development Discussions.</p> <p>This dataset contains models and data shown in the paper, in both 2D and 3D:</p> <p>1. Geological model</p> <ul> <li>Reference lithology voxet:</li> </ul> <p>The reference geological model was obtained using public data from the Geological Survey of Western Australia and modified subsequently (stretched vertically and flattened at surface level) for the purpose of this study.</p> <ul> <li>Probability voxet<br> The lithology probability voxet was derived using Monte Carlo simulations for uncertainty estimation as mentioned in the paper.</li> </ul> <p>2. True and inverted models for density and magnetic susceptibility</p> <p>Derivation is detailed in the paper; it uses fictitious density and magnetic susceptibility values.</p> <p>3. Bouguer and total magnetic field anomaly</p> <p>Calculation is detailed in the paper.</p> <p>The authors are supported, in part, by Loop – Enabling Stochastic 3D Geological Modelling (LP170100985) and the Mineral Exploration Cooperative Research Centre (MinEx CRC) whose activities are funded by the Australian Government's Cooperative Research Centre Program. This is MinEx CRC Document 2021/3. Mark Lindsay acknowledges funding from the ARC and DECRA DE190100431.</p> <p>It is a companion dataset to: <br> Vitaliy Ogarko, Jeremie Giraud, & Roland. (2021, February 5). Tomofast-x v1.0 source code (Version 1.0). Zenodo. <a href="http://doi.org/10.5281/zenodo.4452620">http://doi.org/10.5281/zenodo.4452620</a></p>
Figure 6. - ATruncatoflabellummortenseni, USNM 97522, paratype, Philippines B Truncatoflabellumaustraliensis, paratype (including anthocaulus), USNM 96652, Western Australia C Truncatoflabellumcandeanum, neotype, including anthocaulus, USNM 81963, Albatross 5369, Philippines D Truncatoflabellumcompressum, upper figure, illustration of type from Lesson (1827); other views from Challenger 190, BM 1880.11.25.78. Scale bars: all 10 mm.
Figure 6. - ATruncatoflabellummortenseni, USNM 97522, paratype, Philippines B Truncatoflabellumaustraliensis, paratype (including anthocaulus), USNM 96652, Western Australia C Truncatoflabellumcandeanum, neotype, including anthocaulus, USNM 81963, Albatross 5369, Philippines D Truncatoflabellumcompressum, upper figure, illustration of type from Lesson (1827); other views from Challenger 190, BM 1880.11.25.78. Scale bars: all 10 mm.
Figure 3. - ATruncatoflabellumzuluense, paratype, USNM 91751, MD ZK-20, South Africa B Truncatoflabellumpusillum, holotype, USNM 81978, Albatross 5178, Philippines C Truncatoflabellumangustum, USNM 98894, MUSORSTOM 8-1016, Vanuatu D Truncatoflabellumangiostomum, USNM 96643, Cape Jaubert, Western Australia. Scale bars: all 10 mm, except for basal scar views, which are 5 mm.
Figure 3. - ATruncatoflabellumzuluense, paratype, USNM 91751, MD ZK-20, South Africa B Truncatoflabellumpusillum, holotype, USNM 81978, Albatross 5178, Philippines C Truncatoflabellumangustum, USNM 98894, MUSORSTOM 8-1016, Vanuatu D Truncatoflabellumangiostomum, USNM 96643, Cape Jaubert, Western Australia. Scale bars: all 10 mm, except for basal scar views, which are 5 mm.
Figure 4. - ATruncatoflabellummacroeschara, paratype, USNM 96661, Onslow Island, Western Australia B Truncatoflabellumveroni, paratype, USNM 96655, Soela 54A, Western Australia C Truncatoflabellumgambierense, USNM 1295473, USGS 10809, Balcombe's Bay, Victoria (Balcombian = Middle Miocene) D Truncatoflabellumirregulare, USNM 87713, Japan. Scale bars: all 10 mm.
Figure 4. - ATruncatoflabellummacroeschara, paratype, USNM 96661, Onslow Island, Western Australia B Truncatoflabellumveroni, paratype, USNM 96655, Soela 54A, Western Australia C Truncatoflabellumgambierense, USNM 1295473, USGS 10809, Balcombe's Bay, Victoria (Balcombian = Middle Miocene) D Truncatoflabellumirregulare, USNM 87713, Japan. Scale bars: all 10 mm.
Figure 9. - ATruncatoflabellumparipavoninum, USNM 96650, Soela 1/84/77, Western Australia B Truncatoflabellumstabile, USNM 98886, off Madeira C Truncatoflabellumcorbicula, USNM 67939, NZGS GS1341, Waitaki Valley, New Zealand (Duntroonian = Lower Oligocene) D Truncatoflabelluminconstans, syntypes, Valdivia 100, Zoologisches Museum Berlin. Scale bars: all 10 mm, except for basal scar views of B and C.
Figure 9. - ATruncatoflabellumparipavoninum, USNM 96650, Soela 1/84/77, Western Australia B Truncatoflabellumstabile, USNM 98886, off Madeira C Truncatoflabellumcorbicula, USNM 67939, NZGS GS1341, Waitaki Valley, New Zealand (Duntroonian = Lower Oligocene) D Truncatoflabelluminconstans, syntypes, Valdivia 100, Zoologisches Museum Berlin. Scale bars: all 10 mm, except for basal scar views of B and C.
Fig. 2 in Early Ordovician Conodonts from Far Western New South Wales, Australia
Fig. 2. Stratigraphic sections through the Lower
FIGS. 18–19. Urodacus butleri, n in A new species of Urodacus (Scorpiones: Urodacidae) from Western Australia
FIGS. 18–19. Urodacus butleri, n. sp., holotype ♂ (WAM T85141), dextral
FIGS. 15–17. Urodacus butleri, n in A new species of Urodacus (Scorpiones: Urodacidae) from Western Australia
FIGS. 15–17. Urodacus butleri, n. sp., holotype ♂ (WAM
Figure 18 in Maratus yanchep, a new peacock spider from Western Australia (Araneae: Salticidae: Euophryini: Australphryni)
Figure 18. Known distribütion of the eight members of the flavus groüp, near the soüthwestern coast of Western Aüstralia (detail at right prepared with QGIS).
Figure 17 in Maratus yanchep, a new peacock spider from Western Australia (Araneae: Salticidae: Euophryini: Australphryni)
Figure 17. Type locality for Maratus yanchep, in coastal sand dünes north of Perth. 1, Toward the coast. 2, Away from the coast. Photographs by Michael Lün.
Figure 16 in Maratus yanchep, a new peacock spider from Western Australia (Araneae: Salticidae: Euophryini: Australphryni)
Figure 16 (continued from previous page). Selected seqüential frames from a 100 fps video of a male M. yanchep displaying with the fan elevated and flaps extended.
Figure 16 in Maratus yanchep, a new peacock spider from Western Australia (Araneae: Salticidae: Euophryini: Australphryni)
Figure 16 (continued on next page). Selected seqüential frames from a 100 fps video of a male M. yanchep displaying with the fan elevated and flaps extended. Blüe arrows indicate depression or elevation of the fan relative to the previoüs frame (down/üp cycles), at a rate of ~3.6 Hz. Smaller green arrows indicate side to side rotation (waving) of the fan in an elevated position (2-5 L/R cycles per position, cycles at ~20 Hz).
Figure 15 in Maratus yanchep, a new peacock spider from Western Australia (Araneae: Salticidae: Euophryini: Australphryni)
Figure 15 (continued from previous page). Selected seqüential frames from a 100 fps video of a male M. yanchep displaying with the fan elevated and flaps extended.
Figure 10 in Maratus yanchep, a new peacock spider from Western Australia (Araneae: Salticidae: Euophryini: Australphryni)
Figure 10. Paratype females for Maratus yanchep, in alcohol. 1-2, Detail from figüre 9.4. Note the serrula (2, arrow), a finetoothed comb on the anterior edge of each endite that may play a role in the collection of silk as the spider climbs a dragline.
Figure 13 in Maratus yanchep, a new peacock spider from Western Australia (Araneae: Salticidae: Euophryini: Australphryni)
Figure 13 (continued from previous page). Selected seqüential frames from a 25 fps video showing positions of male Maratus yanchep displaying to a female Maratus, with the fan depressed and flaps retracted.
Figure 11 in Maratus yanchep, a new peacock spider from Western Australia (Araneae: Salticidae: Euophryini: Australphryni)
Figure 11. Exterior (ventral) view of epigynüm of paratype females for Maratus yanchep, in alcohol. The anterior direction is toward the top of the page.
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.