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2,163 results for “Western Pacific”
Fig. 5 in Two new species of the mangrove crab genus Leptarma (Crustacea: Brachyura: Sesarmidae) from the Western Pacific islands
Fig. 5. Leptarma bertrandi, new species, holotype, male (21.4 × 19.3 mm) (MNHN-IU-2022-384), Loyalty Islands. A, dorsal habitus; B, ventral habitus.
Fig. 3 in Two new species of the mangrove crab genus Leptarma (Crustacea: Brachyura: Sesarmidae) from the Western Pacific islands
Fig. 3. Leptarma schubarti, new species, paratype, male (11.7 × 10.1 mm) (ZRC 2017.0191), Vanuatu. A, dorsal habitus; B, right G1, dorsal view; C, right G1, apical corneous part, dorsal view; D, right G1, front view of apical corneous part (arrows pointing to aperture); E, right chela, outer view; F, right chela, dorsal view.
Fig. 2 in Two new species of the mangrove crab genus Leptarma (Crustacea: Brachyura: Sesarmidae) from the Western Pacific islands
Fig. 2. Leptarma schubarti, new species, holotype, male (11.0 × 9.5 mm) (ZRC 2019.1347), Vanuatu. A, carapace, dorsal view; B, pleon; C, pleon somites 1, 2; D, right chela, outer view; E, left chela, dorsal view.
Fig. 1 in Two new species of the mangrove crab genus Leptarma (Crustacea: Brachyura: Sesarmidae) from the Western Pacific islands
Fig. 1. Leptarma schubarti, new species, holotype, male (11.0 × 9.5 mm) (ZRC 2019.1347), Vanuatu. A, dorsal habitus; B, ventral habitus; C, frontal view.
Figure 9 in New asterinid seastars from the western Pacific Ocean (Echinodermata: Asteroidea)
Figure 9. Montage photographs of the holotype of Aquilonastra starmeri sp. nov. (UF 1612): a, abactinal view of disc (left) and proximal ray plates with short conical to digitiform spinelets; b, abactinal details of distal interradius showing acicular conical to subsacciform spinelets on apron, and supero- and inferomarginal plates; c, actinal view showing oral, suboral, furrow and actinal interradial spines; d, transverse section of a ray with superambulacral plate (left) and superactinal plate (right) highlighted.
Figure 8 in New asterinid seastars from the western Pacific Ocean (Echinodermata: Asteroidea)
Figure 8. Montage photograph of the holotype of Aquilonastra starmeri sp. nov. (UF 1612). Actinal view showing five sub-equal rays, spination, longitudinal and oblique-transverse series of actinal plates.
Figure 7 in New asterinid seastars from the western Pacific Ocean (Echinodermata: Asteroidea)
Figure 7. Montage photograph of the holotype of Aquilonastra starmeri sp. nov. (UF 1612). Abactinal view showing five sub-equal rays, distinct marginal apron, lacking carinal series of plates, single large madreporite. The abactinal plates have become denuded of most spinelets over time.
Figure 6 in New asterinid seastars from the western Pacific Ocean (Echinodermata: Asteroidea)
Figure 6. Montage photographs of the holotype of Aquilonastra korora sp. nov. (UF 2437): a, abactinal view of disc, showing disc plate arrangement, single large madreporite (top right), sacciform spinelets; b, abactinal details of distal interradius showing short blunt pedicellariae (highlighted) and residual slender conical, sub-sacciform and sacciform spinelets; c, actinal view showing oral, suboral, furrow and actinal interradial spines; d, transverse section of a ray with a superactinal plate highlighted.
Figure 5 in New asterinid seastars from the western Pacific Ocean (Echinodermata: Asteroidea)
Figure 5. Montage photograph of the holotype of Aquilonastra korora sp. nov. (UF 2437). Actinal view showing residual actinal colouration, five sub-equal rays, spination, longitudinal and oblique-transverse series of actinal plates with irregular distal inter-radials.
Figure 4 in New asterinid seastars from the western Pacific Ocean (Echinodermata: Asteroidea)
Figure 4. Montage photograph of the holotype of Aquilonastra korora sp. nov. (UF 2437). Abactinal view showing residual colouration, five sub-equal digitiform rays, absence of carinal series of plates, single large madreporite (lower arrow) and at least one conspicuous abactinal gonopore (upper arrow). The abactinal plates have become denuded of most spinelets over time.
Figure 1 in New asterinid seastars from the western Pacific Ocean (Echinodermata: Asteroidea)
Figure 1. Montage photograph of the holotype of Aquilonastra donia sp. nov. (MNHN-IE-2014-641). Abactinal view showing five sub-equal rays, distinct low marginal apron, absence of carinal series of plates, presence of rare doubly papulate carinal plates, and single large madreporite. The abactinal plates have become denuded of most spinelets over time.
Figure 3 in New asterinid seastars from the western Pacific Ocean (Echinodermata: Asteroidea)
Figure 3. Montage photographs of the holotype of Aquilonastra donia sp. nov. (MNHN-IE-2014-641): a, abactinal view of disc, single large madreporite, some remaining digitiform spinelets, and pedicellariae (highlighted); b, abactinal details of distal interradius showing pedicellariae (highlighted), and conical to sub-sacciform spinelets on apron; c, actinal view showing oral, suboral, furrow and inter-radial spines; d, transverse section of a ray with superactinal (highlighted left) and superambulacral plates (highlighted right).
Dataset for "Terrane collision-induced subduction initiation: Mode selection and implications for western Pacific subduction system"
<p>Numerical results for "<strong>Terrane collision-induced subduction initiation: Mode selection and implications for western Pacific subduction system</strong>".</p>
Figure 6 in A new species and new records of goatfishes of the genus Parupeneus (Mullidae) from the Indian Ocean, with updated occurrence information for P. jansenii in the Western Pacific
Figure 6. – Standard length against four morphometric characters, head length against anal-fin spine height, and total number of gill rakers against caudal-peduncle length in Parupeneus jansenii vs. P. nansen. In P. jansenii the two size groups are distinguished.
Figure 2 in A new species and new records of goatfishes of the genus Parupeneus (Mullidae) from the Indian Ocean, with updated occurrence information for P. jansenii in the Western Pacific
Figure 2. – Standard length against total length in Parupeneus jansenii; greydotted lines: reference lines for TL and the determined SL for the Myanmar specimen; black dashed lines: reference lines for delimitation of small- and large-sized fish
Data for Contrasting life-history responses to climate variability in eastern and western North Pacific sardine populations
Open the record for dataset details and reuse information.
Community composition and photosynthetic physiology of phytoplankton in the western subarctic Pacific near the Kuril Islands with special reference to iron availability
<p class="Abstract">The western subarctic Pacific (WSP) is known as one of the most productive regions among the world's oceans in spring. However, its oceanic waters are also known as a High Nutrient, Low Chlorophyll (HNLC) region during summer due to low iron (Fe) availability in seawater. Indeed, recent studies have demonstrated that the distribution of Fe in the WSP is complex and heterogeneous. This study thus investigated the effects of Fe availability on the community composition and photophysiology of surface phytoplankton from coastal to offshore waters in the WSP in the summer of 2014. Although relatively high concentrations (>2 mg m<sup>–3</sup>) of chlorophyll (chl) <i>a</i> were found in the Sea of Okhotsk and some coastal waters, low chl <i>a</i> concentrations (<1 mg m<sup>–3</sup>) were commonly observed. Based on dissolved Fe and macronutrient concentrations, we deduced that low Fe availability limited phytoplankton growth in offshore waters, whereas low silicate and/or nitrate levels limited growth in the shelf areas. Scanning electron microscopy also revealed that the centric diatom <i>Chaetoceros</i> exclusively dominated the diatom assemblages in the shelf<i> </i>and coexisted with pennate diatoms in offshore waters, respectively<i>.</i> Primary productivity in surface waters was negatively correlated with the bottom of the euphotic layer or the light saturation index of the photosynthesis–irradiance curve, which indicates that the phytoplankton assemblages were well acclimated to <i>in situ</i> light conditions regardless of the water masses.</p>
Figure 1. - World map representing all the locations mentioned in the dataset. Areas of particular interest are represented with the same colour (⬤ Madagascar, ⬤ Western Indian Ocean, ⬤ Papuasia, ⬤ New Caledonia, ⬤ South Pacific). Grey spots gather all the other locations.
Figure 1. - World map representing all the locations mentioned in the dataset. Areas of particular interest are represented with the same colour (⬤ Madagascar, ⬤ Western Indian Ocean, ⬤ Papuasia, ⬤ New Caledonia, ⬤ South Pacific). Grey spots gather all the other locations.
An 800-kyr planktonic 𝜹18O stack for the Western Pacific Warm Pool
<p><strong>Our 10 core planktonic </strong>𝜹<strong>18O WPWP stack is available as the "WPWP_planktonic_stack.txt" file, which contains the age, mean </strong>𝜹<strong>18O, and 1 sigma </strong>𝜹<strong>18O alignment uncertainty. The same file is also available under the name "stack.txt" in the Output folder. The stack was produced using alignment software BIGMACS (Lee and Rand et al., 2022).</strong></p><p><strong>The previously published depth and planktonic </strong>𝜹<strong>18O as well as any radiocarbon or additional age constraints for each core used during stack construction can be found in the Inputs folder. This study's BIGMACS produced age models, depth, and planktonic </strong>𝜹<strong>18O data for each core can be found in the Outputs folder under the "results.mat" file or as .txt files in the individual folders named for each core.</strong></p><p><strong>Additional BIGMACS input and output files for planktonic </strong>𝜹<strong>18O from Timor Sea (near the WPWP) core MD01-2378 (Holborn et al., 2005) are provided to demonstrate the alignment and age model differences between using the our new regional planktonic </strong>𝜹<strong>18O WPWP stack and the global benthic </strong>𝜹<strong>18O LR04 stack as alignment targets. </strong> <strong>Differences between the two stacks during MIS 3 and 4 produce a ~17 kyr error in the alignment of the core to the LR04 stack at ~77 kyr ago (depth 8.81 m in core MD01-2378). Because the planktonic </strong>𝛿<strong>18O records near the WPWP share features which differ from those of benthic </strong>𝛿<strong>18O, age model results are expected be more accurate when these planktonic </strong>𝛿<strong>18O records are aligned to the WPWP stack than to a benthic stack.</strong></p><p>Holbourn, A. E., Kuhnt, W., Kawamura, H., Jian, Z. Grootes, P. M., Erlenkeuser, H., and Xu, J.: Stable isotopes on planktic foraminifera of sediment core MD01-2378, PANGAEA [data set], https://doi.org/10.1594/PANGAEA.263757, 2005.</p><p>Lee, T., Rand, D., Lisiecki, L. E., Gebbie, G., and Lawrence, C. E.: Bayesian age models and stacks: Combining age inferences from radiocarbon and benthic 𝜹18O stratigraphic alignment, EGUsphere, 1–29,<a href="https://doi.org/10.5194/egusphere-2022-734"> https://doi.org/10.5194/egusphere-2022-734</a>, 2022.</p><p>Lisiecki, L. E., and Raymo, M. E.: A Pliocene-Pleistocene stack of 57 globally distributed benthic 𝜹18O records, Paleoceanogr., 20,<a href="https://doi.org/10.1029/2004PA001071"> PA1003, https://doi.org/10.1029/2004PA001071</a>, 2005.</p>
Supporting datasets used in the paper entitled "Aircraft-based observation of mineral dust particles over the western North Pacific in summer using a complex amplitude sensor"
<p>This archive contains datasets used in the paper entitled "Aircraft-based observation of mineral dust particles over the western North Pacific in summer using a complex amplitude sensor."</p>
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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)
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.