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1,109 results for “South China Sea”
FIGURE 3 in Tylopilus callainus, a new species with a sea-green color change of hymenophore and context from the south of China
FIGURE 3. Microscopic features of Tylopilus callainus [N.K. Zeng1459 (FHMU),holotype]. a. Basidia. b. Basidiospores. c. Cheilocystidia. d. Pleurocystidia. e. Pileipellis. f. Stipitipellis. Bars=10 μm. Drawings by N.K. Zeng
FIGURE 2 in Tylopilus callainus, a new species with a sea-green color change of hymenophore and context from the south of China
FIGURE 2. Basidiomata of Tylopilus callainus. [a from N.K. Zeng 1464 (FHMU); b from N.K. Zeng 2436 (FHMU); c–e from N.K. Zeng 1459 (FHMU), holotype]. Photos by N.K. Zeng.
FIGURE 1 in Tylopilus callainus, a new species with a sea-green color change of hymenophore and context from the south of China
FIGURE 1. Phylogenetic placement of Tylopilus callainus within Tylopilus s. str. inferred from a multilocus (rDNA 28S and ITS, and TEF1) data set using RaxML. BS ≥ 50 % and PP ≥ 0.95 are indicated above or below the branches as RAxML BS/PP. SW = southwest, SE = southeast.
Database of upper ocean mixing enhanced by tropical cyclones in the northern South China Sea in 2023
<p>Data reported in the manuscript "Identification and quantification of upper ocean mixing enhanced by tropical cyclones in the northern South China Sea" can be downloaded here.</p> <p>Matlab (versions later than 9.12.0.1884302 (R2022a)) is necessary to run the postprocessing codes.</p>
Long-term Changes in Salinity in the South China Sea due to Anthropogenic Forcing
Open the record for dataset details and reuse information.
The history of the El Niño‒Southern Oscillation and sea surface salinity during 1376‒1500 CE reconstructed by Porites coral δ18O from Huangyan Island, South China Sea
Open the record for dataset details and reuse information.
The origin of late Cenozoic magmatism in the South China Sea and Southeast Asia
<p>Table S1 Chemical and isotopic compositions for South China Sea seamount lava and standard sample</p> <p>Table S2 Major and trace element contents and He isotope compositions for South China Sea seamount glass</p> <p>Table S3 Major element compositions of melt inclusion in olivine from South China Sea seamount lavas</p> <p>Table S4 Major and trace element compositions of olivines analyzed by EPMA (wt. %) and LA-ICP-MS (ppm)</p> <p>Table S5 Chemical compositions of spinel inclusions and their host olivines analyzed and calculated Al-in-ol-sp temperatures and log(fO2) FMQ.</p> <p>Table S6 U-Th-Pb isotopic ratios and ages of zircons</p> <p>Table S7 Compositions of International standards</p>
Data for: "Possible link between decadal variability in precipitation in the South China Sea and the North Atlantic Oscillation during the 20th century: A perspective from coral geochemical records"
<p>This dataset includes all the data for the paper "Possible link between decadal variability in precipitation in the South China Sea and the North Atlantic Oscillation during the 20th century: A perspective from coral geochemical records" by Cui et al.</p>
Bulk and amino acid nitrogen specific isotope data from particulate organic matter and mesozooplankton (1000-2000 µm) from the Mekong River plume and southern South China Sea
<p><strong><span><span>The mean trophic position (TP) of mesozooplankton largely determines how much mass and energy is available for higher trophic levels like fish. Unfortunately, the ratio of herbivores to carnivores in mesozooplankton is difficult to identify in field samples. Here we investigated changes in the mean TP of mesozooplankton in a highly dynamic environment encompassing four distinct habitats in </span></span></strong>the southern South China Sea:<strong> </strong><span>the </span>Mekong River plume, coastal upwelling region, shelf waters, and offshore oceanic waters<strong><span>. </span></strong><span>We used a set of parameters derived from bulk and amino acid nitrogen stable isotopes from particulate organic matter (POM) and four mesozooplankton size fractions to identify changes in the nitrogen source and structure of the planktonic food web across these habitats.</span> We found clear indications of a shift in N sources for biological production from nitrate in near-coastal waters towards an increase in diazotroph-N inputs in oceanic waters where diazotrophs shaped the phytoplankton community. The shift in N source was accompanied by a lengthening of the food chain (increase in the TP), which may provide further support for the connection between diazotrophy and the indirect routing of N through the marine food web. Our combined bulk and amino acid δ<sup>15</sup>N approach also allowed us to estimate the trophic enrichment (TE) of mesozooplankton across the entire regional ecosystem. When put in the context of literature values, our high TE of 5.1‰ suggested a link between ecosystem heterogeneity and the less efficient transfer of mass and energy across trophic levels.</p>
The origin of late Cenozoic magmatism in the South China Sea and Southeast Asia
<p><strong>Table S1. Chemical and isotopic compositions for lavas from the South China Sea seamounts</strong></p> <p><strong>Table S2. Major and trace element contents and He isotope compositions for South China Sea seamount glass</strong></p> <p><strong>Table S3 Major element compositions of melt inclusion in olivine from lavas in the South China Sea seamounts</strong></p> <p><strong>Table S4. Major and trace element compositions of olivines analyzed by EPMA (wt. %) and LA-ICP-MS (ppm)</strong></p> <p><strong>Table S5 Chemical compositions of spinel inclusions and their host olivines analyzed and calculated Al-in-ol-sp temperatures and log(fO2) FMQ</strong></p> <p><strong>Table S6: U-Th-Pb isotopic ratios and ages, Hf isotopes of zircons</strong></p> <p><strong>Table S7 Compositions of International standards</strong></p>
Radionuclides and grain size components in core QD2, South China Sea
<p>This file reports the radionuclide and grain size data for core QD2 (a core collected from coastal area of the South China Sea).</p>
FIGURE 7 in A new species of the deep-sea shrimp genus Spongicoloides (Decapoda: Spongicolidae) from the South China Sea
FIGURE 7. Phylogenetic trees of spongicolids based on the ML topology inferred from the gene fragments of nuclear histone H3 (nucleotide-substitution model for the ML analysis: TIM2e+I), and mitochondrial COI (nucleotide-substitution model for the ML analysis: TIM2+F+I+G4), 12S rRNA (nucleotide-substitution model for the ML analysis: TPM3+F+G4), and 16S rRNA (nucleotide-substitution model for the ML analysis: TIM3+F+G4). Bootstrap values of the ML and MP analyses were placed at nodes, with dashes (–) indicating values below 50. Scale bars represent the number of substitutions per site. In Spongicoloides zhoui sp. nov., TMBC030847 is the catalogue number of the holotype and MNHN-IU20146347 the catalogue number of a specimen previously considered to be S. novaezelandiae in Chen et al. (2016).
FIGURE 6 in A new species of the deep-sea shrimp genus Spongicoloides (Decapoda: Spongicolidae) from the South China Sea
FIGURE 6. Spongicoloides zhoui sp. nov. holotype female (PCL 11.3 mm, TMBC030847). A, left fourth pereiopod, lateral view; B, left fifth pereiopod, lateral view; C, dactylus of left fourth pereiopod, lateral view; D, right first pleopod, lateral view; E, right second pleopod, mesial view. Scale bar = 1 mm.
FIGURE 3 in A new species of the deep-sea shrimp genus Spongicoloides (Decapoda: Spongicolidae) from the South China Sea
FIGURE 3. Spongicoloides zhoui sp. nov. A, B, D, F, G, I holotype female (PCL 11.3 mm, TMBC030847); C, E, H, J allotype male (PCL 7.5 mm, TMBC030848). A, C, carapace, right lateral view; B, same, anterior part, dorsal view; D, E, telson and uropods, dorsal view; F, pleonal somites, right lateral view; G, H, fifth and sixth pleonal somites, right lateral view; I, J, thoracic sternites, ventral view. Setae omitted. Scale bar = 1 mm.
FIGURE 2 in A new species of the deep-sea shrimp genus Spongicoloides (Decapoda: Spongicolidae) from the South China Sea
FIGURE 2. Spongicoloides zhoui sp. nov. holotype female (left), PCL 11.3 mm, TMBC030847, and allotype male (right), PCL 7.5 mm, TMBC030848, Zhenbei Seamount, South China Sea. Scale bar = 1 cm.
FIGURE 5 in A new species of the deep-sea shrimp genus Spongicoloides (Decapoda: Spongicolidae) from the South China Sea
FIGURE 5. Spongicoloides zhoui sp. nov. A, B, C, D, E holotype female (PCL 11.3 mm, TMBC030847); F, allotype male (PCL 7.5 mm, TMBC030848). A, left first pereiopod, mesial view; B, left second pereiopod, mesial view; C, left third pereiopod, lateral view; D, same, fingers (setae omitted); E, same, carpus; F, right third pereiopod, lateral view. Scale bar = 1 mm.
FIGURE 4 in A new species of the deep-sea shrimp genus Spongicoloides (Decapoda: Spongicolidae) from the South China Sea
FIGURE 4. Spongicoloides zhoui sp. nov. holotype female (PCL 11.3 mm, TMBC030847). A, right eye, dorsal view; B, right antennular peduncle, dorsal view; C, left antenna, ventral view; D, left mandible, mesial view; E, left maxillule, lateral view; F, left maxilla, mesial view; G, left first maxilliped, lateral view; H, same, distal segment of endopod (setae omitted); I, right second maxilliped, mesial view; J, left third maxilliped, mesial view. Scale bar = 1 mm.
FIGURE 1 in A new species of the deep-sea shrimp genus Spongicoloides (Decapoda: Spongicolidae) from the South China Sea
FIGURE 1. In situ image of the host sponge (Euplectella sp., 43 cm in height) of the Spongicoloides zhoui sp. nov. type specimens, Zhenbei Seamount, South China Sea.
Figure 3 in Autumn community structure in the shallow mixed layer of the subtropical South China Sea reveals a peculiar copepod and zooplankton assemblage
Figure 3. Vertical variation of temperature (A), salinity (B) and chlorophyll a (C) of the six sampling stations.
Figure 6 in Autumn community structure in the shallow mixed layer of the subtropical South China Sea reveals a peculiar copepod and zooplankton assemblage
Figure 6. Clustering dendrogram of different samples using Bray–Curtis similarity and clustering strategy of flexible links in the northern South China Sea.
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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.