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396 results for “Southern Hemisphere”
Distribution. Almost cosmopolitan, found from the edges of polar pack ice to the equator in both the Southern and Northern hemispheres. in Physeteridae
Distribution. Almost cosmopolitan, found from the edges of polar pack ice to the equator in both the Southern and Northern hemispheres.
Distribution. Southern Hemisphere (E South America from S Brazil to Tierra del Fuego, Falkland Is (= Malvinas), South Georgia Is, Kerguelen Is, Heard I, Macquarie I, Auckland Is, and Tasmania). Although previously thought to be exclusively coastal, like other members of the genus, recent sightings in oceanic waters of the Antarctic and subantarctic zones suggest that the species actually has a circumpolar distribution and may be largely oceanic. in Phocoenidae
Distribution. Southern Hemisphere (E South America from S Brazil to Tierra del Fuego, Falkland Is (= Malvinas), South Georgia Is, Kerguelen Is, Heard I, Macquarie I, Auckland Is, and Tasmania). Although previously thought to be exclusively coastal, like other members of the genus, recent sightings in oceanic waters of the Antarctic and subantarctic zones suggest that the species actually has a circumpolar distribution and may be largely oceanic.
FIGURE 1 in First record of Alternatipathes bipinnata (Cnidaria: Antipatharia) in the Southern Hemisphere
FIGURE 1. Alternatipathes bipinnata (Opresko, 2005) MPC280617. a, complete specimen. b, close up view of pinnulated portion of the corallum (abpolypar view). c, SEM of pinnules from pinnulated stem. d, SEM of lateral pinnule. e, detail of spines on pinnulated part of the stem. f, detail of spines on primary branch. Scale equals 20 mm for a and b, and 0.2 mm for c–f.
FIGURE 2 in First record of Alternatipathes bipinnata (Cnidaria: Antipatharia) in the Southern Hemisphere
FIGURE 2. Known distribution of Alternatipathes bipinnata (Opresko, 2005). Red circles indicate previous records and the red star denotes the location of the specimen described in this study.
FIGURE 6. A in Cherax acherontis (Decapoda: Parastacidae), the first cave crayfish from the Southern Hemisphere (Papua Province, Indonesia)
FIGURE 6. A, Hagepma entrance into the cave; B, wood debris in the river in the cave; C, dripstone decoration in the cave.
FIGURE 5 in Cherax acherontis (Decapoda: Parastacidae), the first cave crayfish from the Southern Hemisphere (Papua Province, Indonesia)
FIGURE 5. Map of Papua Province, Indonesia. The position of the cave near city of Wamena indicated by red triangle. The photo shows a typical terrain in the vicinity of the cave.
FIGURE 3. Cherax acherontis n in Cherax acherontis (Decapoda: Parastacidae), the first cave crayfish from the Southern Hemisphere (Papua Province, Indonesia)
FIGURE 3. Cherax acherontis n. sp., from holotype. A, lateral view of carapace; B, dorsal view of carapace; C, ventral view of right chela; D, dorsal view of right chela; E, epistome; F, dorsal view of right scaphocerite; G, third maxilliped.
Supplementary Material from: Meridional shifts of the Southern Hemisphere westerlies during the early Cenozoic
<p><span>Dataset of median grain size, siliciclastic mass accumulation rate (MAR<sub>siliciclastic</sub>), clay minerals, and major and trace elements of siliciclastic fractions at <span>International Ocean Discovery Program (IODP) </span>Site U1514 generated from the study: Meridional shifts of the Southern Hemisphere westerlies during the early Cenozoic.</span></p>
Southern Hemisphere Circumpolar Wavenumber-4 Pattern Simulated in SINTEX-F2 Coupled Model
<p>These datasets are used to produce Figures in the paper by Senapati et al. (2024). </p> <p>Senapati, B., Morioka, Y., Behera, S. K., & Dash, M. K. (2024). Southern Hemisphere circumpolar wavenumber‐4 pattern simulated in SINTEX‐F2 coupled model. Journal of Geophysical Research: Oceans, 129, e2023JC020801. <a href="https://doi.org/10.1029/2023JC020801" rel="noopener">https://doi.org/10.1029/2023JC020801</a></p>
Data for "Revisiting the reanalysis-model discrepancy in Southern Hemisphere winter storm track trends"
<p>The dataset supporting the conclusion of the submitted paper is uploaded here.</p> <p>The data are labeled after each figure. The npz files include data required to reproduce our results in python arrays.</p>
FIGURE 2. A in Studies on the Zoarcidae (Teleostei: Perciformes) of the southern hemisphere. IX. A new species of Pachycara from the southwestern Atlantic
FIGURE 2. A) Pachycara alepidotum sp. nov., holotype, 255 mm SL, off southern Brazil; B) Lat eral line pattern of holotype of Pachycara alepidotum.
FIGURE 3 in Ochrolechia kerguelensis sp. nov. from the Southern Hemisphere and O. antarctica reinstated from the synonymy of O. parella
FIGURE 3. Ochrolechia antarctica (A–B: Imshaug 42271 & Harris; C–D: holotype of Lecanora deceptionis). A and C, macroscopical overview of fertile thalli; B and D, apothecia. Scale bars: A, C = 1 mm; B, D = 500 μm.
FIGURE 2. Ochrolechia kerguelensis. A in Ochrolechia kerguelensis sp. nov. from the Southern Hemisphere and O. antarctica reinstated from the synonymy of O. parella
FIGURE 2. Ochrolechia kerguelensis. A, typical landscape of islands in Golfe du Morbihan, a habitat of the new species (view from Australia Island); B, macroscopical overview of a thallus of ca. 50 cm in diam. on Île Guillou; C–F, morphology of apothecia and thallus [C: field observation, on Grande Terre-Rivière du Sud; D–E: Ertz 18906; F: Ertz 19108]; G, photobiont (trentepohlioid); H, hymenium with one ascus; I–J, ascospores. Scale bars: D–F = 2 mm, G = 10 μm, H= 50 μm, I–J = 25 μm.
FIGURE 1. Phylogenetic relationships among 33 in Ochrolechia kerguelensis sp. nov. from the Southern Hemisphere and O. antarctica reinstated from the synonymy of O. parella
FIGURE 1. Phylogenetic relationships among 33 samples of Ochrolechia (with three Marfloraea species used as outgroup taxa) based on a data set of mtSSU sequences that resulted from a Bayesian analysis using MrBayes. Posterior probabilities are shown above internal branches. Internal branches considered strongly supported are represented by thicker lines. The newly sequenced specimens are in bold. Collecting numbers of the authors or the GenBank accession numbers following the species names act as specimen and sequence identifiers. Species of interest, discussed in the paper, are highlighted in colour. The length of the branch represented by dashed lines was reduced by 50% for editing reason.
Table 2. Genetic distances for mitochondrial DNA partial cytochrome c oxidase subunit I and cytochrome b in Molecular phylogeny of the Aplodactylidae (Perciformes: Cirrhitoidea), a group of Southern Hemisphere marine ® shes
<p>Table 2. Genetic distances for mitochondrial DNA partial cytochrome <i>c</i> oxidase subunit I and cytochrome <i>b</i> sequences when combined. Values are Kimura (1980) two-parameter percentage sequence divergences, obtained when using the optimum expected transition±transversion nucleotide substitution ratio of 3.0 from maximum likelihood analysis (fi gure 3).</p><table><tbody><tr><th></th><th></th><th>1</th><th>2</th><th>3</th><th>4</th><th>5</th><th>6</th><th>7</th></tr></tbody><tbody><tr><th>1</th><td><i>Aplodactylus arctidens</i></td><td></td><td></td><td></td><td></td><td></td><td></td><td></td></tr><tr><th>2</th><td><i>Aplodactylus punctatus</i></td><td>6.1</td><td></td><td></td><td></td><td></td><td></td><td></td></tr><tr><th>3</th><td><i>Aplodactylus westralis</i></td><td>7.8</td><td>7.6</td><td></td><td></td><td></td><td></td><td></td></tr><tr><th>4</th><td><i>Aplodactylus etheridgii</i></td><td>10.0</td><td>10.3</td><td>10.0</td><td></td><td></td><td></td><td></td></tr><tr><th>5</th><td><i>Aplodactylus lophodon</i></td><td>11.8</td><td>11.9</td><td>12.4</td><td>11.1</td><td></td><td></td><td></td></tr><tr><th>6</th><td><i>Chironemus marmoratus</i></td><td>20.0</td><td>18.7</td><td>18.3</td><td>19.3</td><td>19.5</td><td></td><td></td></tr><tr><th>7</th><td><i>Cheilodactylus fasciatus</i></td><td>21.8</td><td>21.0</td><td>20.5</td><td>22.6</td><td>20.2</td><td>21.2</td><td></td></tr><tr><th>8</th><td><i>Cirrhitus splendens</i></td><td>22.6</td><td>20.7</td><td>21.0</td><td>23.1</td><td>22.0</td><td>23.1</td><td>22.8</td></tr></tbody></table>
FIGURE 4. Simuliidae adult structures. A–D male terminalia. A–B in Preliminary considerations on phylogeny of Simuliidae Genera from Southern Hemisphere (Insecta, Diptera)
FIGURE 4. Simuliidae adult structures. A–D male terminalia. A–B. ventral plate: A. Lutzsimulium flavopubescens; B. Gigantodax minor. C–D. endoparamere (es—endoparameral spines): C. Simulium pertinax; D. Cnesiamima atroparva.
FIGURE 8 in Preliminary considerations on phylogeny of Simuliidae Genera from Southern Hemisphere (Insecta, Diptera)
FIGURE 8. Reconstructed phylogeny of Southern Hemisphere Simuliidae: strict consensus of the four most parsimonious trees resulted from the analysis under equal weights, with 349 steeps, CI = 0.39, and RI = 0.68. Branch support: decay index (up) and bootstrap (down). The boxes represent the permanence of the clades in the analyses under implied weights with different concavities (k1 to k6). The branches not formally named were indicated in agreement with Papavero et al. (2001).
FIGURE 5. Simuliidae pupa structures. A–C in Preliminary considerations on phylogeny of Simuliidae Genera from Southern Hemisphere (Insecta, Diptera)
FIGURE 5. Simuliidae pupa structures. A–C. pupal gill (gf—gill filament; mb—main branch): A. Paraustrosimulium anthracinum; B. Simulium pertinax; C. Austrosimulium fulvicorne. D. rounded tubercles of the thoracic capsule and cephalic capsule. E. spiniform tubercles in the thoracic capsule. F. chaetotaxy of the cephalic capsule (frt—frontal tricomes; fat— facial tricomes). G. abdominal segments (d —dorsal; v—ventral; hs—hooks of the sternites; hp —hooks of the pleurites).
FIGURE 3. Simuliidae adult structures. A–E in Preliminary considerations on phylogeny of Simuliidae Genera from Southern Hemisphere (Insecta, Diptera)
FIGURE 3. Simuliidae adult structures. A–E.spermatheca (ns—net-like structure): A. detail of insertion area of the duct and duct base transparent, remaining of the spermatheca pigmented; B. detail of spermatheca totally pigmented, duct base transparent; C. detail of spermatheca and duct base pigmented; D. net-like structure in Lutzsimulium flavopubescens; E. net-like structure in Kempfsimulium simplicicolor.
FIGURE 1. Simuliidae adult structures. A–C in Preliminary considerations on phylogeny of Simuliidae Genera from Southern Hemisphere (Insecta, Diptera)
FIGURE 1. Simuliidae adult structures. A–C. female head (fr-frons; cl-clipeus): A.Gigantodax brophyi; B. Lutzsimulium flavopubescens; C. Simulium pertinax. D–E. cibarium of the female: D. Simulium pertinax; E. Araucnephia montana. F–G. the claw of the female's hind leg (sbt—subbasal tooth): F. Gigantodax minor; G Simulium pertinax. H–I. furcasternum (pma— projections of medium arms): H Prosimulium sp; I. Simulium pertinax.
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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.