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2,247 results for “Western Australia”
Figure 5. Eremisopus beei n.gen., n in New Genera of Phreatoicidea (Crustacea: Isopoda) from Western Australia
Figure 5. Eremisopus beei n.gen., n.sp. Paratype Ƌ (AM P61454); paratype ♀ (AM P61455). A–D, Ƌ pereopod I; E–G, ♀ pereopod I; H, Ƌ pleopod II appendix masculina and endopod. Scale bar 1 mm.
Figure 11. Peludo paraliotus n.gen., n in New Genera of Phreatoicidea (Crustacea: Isopoda) from Western Australia
Figure 11. Peludo paraliotus n.gen., n.sp. Paratype Ƌ (AM P61461). A, paragnaths; B,C, maxillula; D,E, maxilla; F,G, maxilliped. Scale bar 0.5 mm.
Figure 8. Peludo paraliotus n.gen., n in New Genera of Phreatoicidea (Crustacea: Isopoda) from Western Australia
Figure 8. Peludo paraliotus n.gen., n.sp. A, holotype Ƌ (WAM C 25051); B, living paratype at type locality (specimen among AM P60532/3); C–E, paratype ♀ (AM P61556); F,G, paratype Ƌ (AM P61461). A, lateral view; B, dorsal view; C–E, head; F, antenna; G, antennula. Scale bar 1 mm.
Figure 15. Platypyga subpetrae n.gen., n in New Genera of Phreatoicidea (Crustacea: Isopoda) from Western Australia
Figure 15. Platypyga subpetrae n.gen., n.sp. Holotype (WAM C 25053). A, lateral view with enlargements of head
Figure 2. Eremisopus beei n.gen., n in New Genera of Phreatoicidea (Crustacea: Isopoda) from Western Australia
Figure 2. Eremisopus beei n.gen., n.sp. A,E,F,G(enlargement), paratype ♀ (AM P61455); B–D,G, paratype Ƌ (AM P61454). A, head, lateral view; B, antennula; C,D, antenna, with enlargements of basal and proximal articles; E–G, pleotelson, lateral, ventral a nd dorsal views, with enlargements of uropods and dorsal surface. Scale bar 1 mm.
Figure 21. Platypyga subpetrae n.gen., n in New Genera of Phreatoicidea (Crustacea: Isopoda) from Western Australia
Figure 21. Platypyga subpetrae n.gen., n.sp. A, paratype (AM P61559); B,C, paratype Ƌ (AM P61457); D, paratype ♀ (AM P61458); E,F, paratype Ƌ (AM P61460). A, pleotelson, posterior view; B,C, pleotelson; D, uropod; E, pleopod I; F, pleopod II endopod and appendix masculina. Scale bar 0.5 mm.
Figure 7. Eremisopus beei n.gen., n in New Genera of Phreatoicidea (Crustacea: Isopoda) from Western Australia
Figure 7. Eremisopus beei n.gen., n.sp. Paratype Ƌ (AM P61456). A, pleopod I; B,C, pleopod II; D–F, pleopods III–V. Scale bar 1 mm.
Figure 17. Platypyga subpetrae n.gen., n in New Genera of Phreatoicidea (Crustacea: Isopoda) from Western Australia
Figure 17. Platypyga subpetrae n.gen., n.sp. Paratype Ƌ (AM P61460). A–G, right mandible; H,I, left mandible. Scale bar 0.5 mm.
Figure 4. Eremisopus beei n.gen., n in New Genera of Phreatoicidea (Crustacea: Isopoda) from Western Australia
Figure 4. Eremisopus beei n.gen., n.sp. Paratype Ƌ (AM P61454).A, paragnaths; B, maxillula; C, maxilla; D–F, maxilliped. Scale bar 0.5 mm.
Figure 1. Eremisopus beei n.gen., n in New Genera of Phreatoicidea (Crustacea: Isopoda) from Western Australia
Figure 1. Eremisopus beei n.gen., n.sp. Holotype (WAM C 25049). A, lateral view, with enlargements of head and pleotelson; B,C, dorsal views of head and pleotelson. Scale bar 1 mm.
Figure 10. Peludo paraliotus n.gen., n in New Genera of Phreatoicidea (Crustacea: Isopoda) from Western Australia
Figure 10. Peludo paraliotus n.gen., n.sp. Paratype Ƌ (AM P61461). A,D,G,H, left mandible; B,C,E,F, right mandible. Scale bar 0.5 m.
Figure 20. Platypyga subpetrae n.gen., n in New Genera of Phreatoicidea (Crustacea: Isopoda) from Western Australia
Figure 20. Platypyga subpetrae n.gen., n.sp. A,B, paratype Ƌ (AM P61457); C–F, paratype Ƌ (AM P61460). A,B, pereopod II; C, pereopod V; D–F, pereopod VII. Scale bar 1 mm.
Figure 16. Platypyga subpetrae n.gen., n in New Genera of Phreatoicidea (Crustacea: Isopoda) from Western Australia
Figure 16. Platypyga subpetrae n.gen., n.sp. A,B, paratype (AM P61559); C–E, paratype Ƌ (AM P61457). A, body lateral view; B,C,E, head; D, antennula, distal articles; F, antenna proximal flagellar articles; G, antenna terminal flagellar articles. Scale bar 1 mm.
Figure 14. Peludo paraliotus n.gen., n in New Genera of Phreatoicidea (Crustacea: Isopoda) from Western Australia
Figure 14. Peludo paraliotus n.gen., n.sp. A,C,E–G, paratype Ƌ (AM P61557); B,D, paratype ♀ (AM P61558). A,B, pleopod I; C,D, pleopod II; E–G, pleopods III–V. Scale bar 1 mm.
Figure 18. Platypyga subpetrae n.gen., n in New Genera of Phreatoicidea (Crustacea: Isopoda) from Western Australia
Figure 18. Platypyga subpetrae n.gen., n.sp. Paratype Ƌ (AM P61460) A–E; paratype Ƌ (AM P61457) F,G. A, paragnaths; B,C, maxillula; D,E, maxilla; F,G, maxilliped. Scale bar 0.5 mm.
Figure 6. Eremisopus beei n.gen., n in New Genera of Phreatoicidea (Crustacea: Isopoda) from Western Australia
Figure 6. Eremisopus beei n.gen., n.sp. Paratype Ƌ (AM P61454); paratype ♀ (AM P61455). A,B, Ƌ pereopod II; C,D, Ƌ pereopod IV; E, ♀ pereopod IV; F,G, Ƌ pereopods V–VI; H–J, Ƌ pereopod VII. Scale bar 1 mm.
Figure 9. Peludo paraliotus n.gen., n in New Genera of Phreatoicidea (Crustacea: Isopoda) from Western Australia
Figure 9. Peludo paraliotus n.gen., n.sp. A–C,F, paratype Ƌ (AM P61461); D,E,G,H, paratype ♀ (AM P61556). A–H, pleotelson and uropods. Scale bar 1 mm.
Figure 3. Eremisopus beei n.gen., n in New Genera of Phreatoicidea (Crustacea: Isopoda) from Western Australia
Figure 3. Eremisopus beei n.gen., n.sp. A,C–J, paratype Ƌ (AM P61453); paratype Ƌ (AM P61454) B. A–F, right mandible; G–J, left mandible. Scale bar 0.5 mm.
Population connectivity and genetic offset in the spawning coral Acropora digitifera in Western Australia
<p><span>Anthropogenic </span>climate change has caused widespread loss of species biodiversity and ecosystem productivity across the globe, particularly on tropical coral reefs. Predicting the future vulnerability of reef-building corals, the foundation species of coral reef ecosystems, is crucial for cost-effective conservation planning in the Anthropocene. In this study, we combine regional population genetic connectivity and seascape analyses to explore patterns of genetic offset (the mismatch of gene-environmental associations under future climate conditions) in <em>Acropora digitifera</em> across 12 degrees of latitude in Western Australia. Our data revealed a pattern of restricted gene flow and limited genetic connectivity among geographically distant reef systems. Environmental association analyses identified a suite of loci strongly associated with the regional temperature variation. These loci helped forecasting future genetic offset in random forest and generalised dissimilarity models. These analyses predicted pronounced differences in the response of different reef systems in Western Australia to rising temperatures. Under the most optimistic future warming predictions (RCP 2.6), we observed a general pattern of increasing genetic offset with latitude. Under the most extreme climate scenario (RCP 8.5 in 2090-2100), coral populations at the Ningaloo World Heritage Area were predicted to experience a higher mismatch in genetic composition, compared to populations in the inshore Kimberley region. The study suggest complex and spatially heterogeneous patterns of climate-change vulnerability in coral populations across Western Australia, reinforcing the notion that regionally tailored conservation efforts will be most effective at managing coral reef resilience into the future.</p>
Satellite-derived chlorophyll-a concentrations for Western Water Treatment Plant (Melbourne, Australia) using Mixture Density Networks and Sentinel-2 and Landsat 8 imagery
<p>This dataset contains satellite-derived chlorophyll-a data of the Western Water Treatment Plant (Melbourne, Australia) for the period 21 Mar. 2013 - 01 Feb. 2021. Chlorophyll-a concentrations have been calculated using Mixture Density Networks and Sentinel-2 and Landsat 8 imagery.</p> <p>Mixture Density Networks are a class of neural networks that tackle the inverse problem by modelling the multimodal distribution of target variables using a mixture of Gaussians. For more information, please refer to the following:</p> <ul> <li>Pahlevan, N., Smith, B., Alikas, K., Anstee, J., et al. (2022). Simultaneous retrieval of selected optical water quality indicators from Landsat-8, Sentinel-2, and Sentinel-3. <em>Remote Sensing of Environment, 270</em>, 112860</li> <li>Smith, B., Pahlevan, N., Schalles, J., et al. (2021). A Chlorophyll-a Algorithm for Landsat-8 Based on Mixture Density Networks. <em>Frontiers in Remote Sensing, 1</em></li> <li>Pahlevan, N., Smith, B., Schalles, J., et al. (2020). Seamless retrievals of chlorophyll-a from Sentinel-2 (MSI) and Sentinel-3 (OLCI) in inland and coastal waters: A machine-learning approach. <em>Remote Sensing of Environment, 240</em>, 111604</li> </ul>
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)
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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.