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1,661 results for “China Seas”
Fig. 15 in Deep-sea spider crabs of the families Epialtidae MacLeay, 1838 and Inachidae MacLeay, 1838, from the South China Sea, with descriptions of two new species (Decapoda, Brachyura, Majoidea)
Fig. 15. Stegopleurodon pteridion sp. nov., holotype, ♂ (13.1 × 7.9 mm) (NTOU), South China Sea, drawing of left G1. A. Ventral view. B. Ventral view of distal portion. C. Dorsal view. D. Dorsal view of distal portion.
Fig. 6 in Deep-sea spider crabs of the families Epialtidae MacLeay, 1838 and Inachidae MacLeay, 1838, from the South China Sea, with descriptions of two new species (Decapoda, Brachyura, Majoidea)
Fig. 6. Oxypleurodon leonis sp. nov., holotype, ♂ (13.5 × 9.0 mm) (NTOU), South China Sea, drawing of left G1. A. Ventral view. B. Ventral view of distal portion. C. Dorsal view. D. Dorsal view of distal portion.
Fig. 14 in Deep-sea spider crabs of the families Epialtidae MacLeay, 1838 and Inachidae MacLeay, 1838, from the South China Sea, with descriptions of two new species (Decapoda, Brachyura, Majoidea)
Fig. 14. Stegopleurodon pteridion sp. nov., holotype, ♂ (13.1 × 7.9 mm) (NTOU), South China Sea. A. Overall dorsal view. B. Overall ventral view. C. Lateral view of carapace. Scale bars = 5 mm.
Fig. 9 in Deep-sea spider crabs of the families Epialtidae MacLeay, 1838 and Inachidae MacLeay, 1838, from the South China Sea, with descriptions of two new species (Decapoda, Brachyura, Majoidea)
Fig. 9. Rochinia strangeri Serène & Lohavanijaya, 1973. A–C. Holotype, ♂ (10.7 × 7.2 mm) (USNM149304), South China Sea. A. Overall dorsal view. B. Overall ventral view. C. Lateral view of carapace. D–F. ♂ (12.1 × 8.0 mm) (ZRC 2016.0546), South China Sea. D. Overall dorsal view. E. Overall ventral view. F. Lateral view of carapace. Scale bars = 5 mm.
Fig. 3. Oxypleurodon stimpsoni Miers, 1885 in Deep-sea spider crabs of the families Epialtidae MacLeay, 1838 and Inachidae MacLeay, 1838, from the South China Sea, with descriptions of two new species (Decapoda, Brachyura, Majoidea)
Fig. 3. Oxypleurodon stimpsoni Miers, 1885, lateral view of carapace. A. ♂ (14.0 × 9.0 mm) (AM P34658), Indonesia. B. ♂ (14.9 × 10.2 mm) (ZRC 2011.0056), Philippines. C. ♂ (14.0 × 9.0 mm) (ZRC 2016.0072), South China Sea. Scale bars = 5 mm.
Fig. 10. A–C in Deep-sea spider crabs of the families Epialtidae MacLeay, 1838 and Inachidae MacLeay, 1838, from the South China Sea, with descriptions of two new species (Decapoda, Brachyura, Majoidea)
Fig. 10. A–C. Rochinia kagoshimensis (Rathbun, 1932), holotype, ♂ (11.2 × 6.8 mm) (USNM 48253), off Kagoshima gulf. A. Overall dorsal view. B. Overall ventral view. C. Lateral view of carapace. D–F. Rochinia kagoshimensis (Rathbun 1932) comb. nov., ♂ (10.7 × 6.9 mm) (ZRC 2016.0549), South China Sea. D. Overall dorsal view. E. Overall ventral view. F. Lateral view of carapace. Scale bars = 5 mm.
Fig. 1 in Deep-sea spider crabs of the families Epialtidae MacLeay, 1838 and Inachidae MacLeay, 1838, from the South China Sea, with descriptions of two new species (Decapoda, Brachyura, Majoidea)
Fig. 1. Goniopugettia sagamiensis (Gordon, 1930), ♀ (41.8 × 30.1 mm) (ZRC 2016.0064), South China Sea with carapace half cleaned, left side of carapace with zootharian attached. A. Overall dorsal view. B. Lateral view of carapace. Scale bars = 10 mm.
Figure 4 in Two new free-living nematode species of Setosabatieria (Comesomatidea) from the East China Sea and the Chukchi Sea
Figure 4. Setosabatieria major sp. nov. (A) lateral view of male head end, showing cervical setae; (B) lateral view of female head end, showing female amphidial fovea; (C) lateral view of female vulva region, showing vulva and eggs; (D) lateral view of male tail region. Scale bars: A = 25 µm; B = 10 µm; C, D = 50 µm.
Figure 2 in Two new species of Lauratonema (Nematoda: Lauratonematidae) from the intertidal zone of the East China Sea
Figure 2. Lauratonema macrostoma sp. nov. (A) lateral view of male head end, showing amphids and bacteria; (B) lateral view of male body part, showing spicule; (C) lateral view of female body part, showing eggs; (D) lateral view of female head end, showing buccal cavity; (E) lateral view of female tail. Scale bar: A–D = 10 µm; E = 25 µm.
Figure 3 in Two new species of Lauratonema (Nematoda: Lauratonematidae) from the intertidal zone of the East China Sea
Figure 3. Lauratonema dongshanense sp. nov. (A) lateral view of male head end, showing amphid and cephalic setae; (B) lateral view of female head end, showing buccal cavity; (C) lateral view of female head end, showing amphid and bacteria; (D) lateral view of female body part, showing eggs; (E, F) lateral view of male body part, showing spicules; (G) lateral view of male tail. Scale bar: A–F = 10 µm; G = 25 µm.
Figure 1 in Two new species of Lauratonema (Nematoda: Lauratonematidae) from the intertidal zone of the East China Sea
Figure 1. Lauratonema macrostoma sp. nov. (A) lateral view of male anterior part; (B) lateral view of female tail; (C) lateral view of male tail; (D) lateral view of female posterior part, showing reproductive system; (E) lateral view of female anterior part. Scale bar: A, B, C, E = 20 µm; D = 50 µm.
Net community production, nutrients, and hydrographic parameters in the South China Sea in October 2014 and June 2015
<p>Net community production (NCP) corresponds to the difference between photosynthesis and respiration and can be estimated based on the dissolved oxygen to argon ratio (O<sub>2</sub>/Ar) in the mixed layer. NCP is also an important proxy for the biological pump in the ocean. In order to figure out the influencing factors on NCP in the northern slope region of the South China Sea (SCS), we conducted high-resolution underway measurements of O<sub>2</sub>/Ar and hydrographic parameters using membrane inlet mass spectrometry (MIMS) and multi-parameter water quality logger (RBR Maestro) in the northern slope region of the SCS in October 2014 and June 2015, assisted by nutrients measurements. NCP in the mixed layer was estimated using the biological supersaturation of O<sub>2</sub>/Ar, Δ (O<sub>2</sub>/Ar), and gas transfer velocity (k). All the underway data were compiled into the 5-min interval. Surface water samples for the nutrients analysis were collected from Niskin bottles mounted on the conductivity–temperature–depth (CTD) rosette at sampling stations, the nutrients were then photometrically determined by an auto-analyzer. The mixed layer depth (MLD) and the euphotic depth (Z<sub>eu</sub>) were calculated at stations where CTD casts were made based on potential density and chlorophyll fluorescence profile, respectively.</p>
Fig. 7 in Species Composition And Distribution Of The Dominant Flyingfishes (Exocoetidae) Associated With The Kuroshio Current, South China Sea
Fig. 7. Monthly median (square dot) with 25 th and 75th quartiles (vertical line) for (a) flyingfishes catch proportion (proportion of catch, adjusted by number of trips in the month, to the overall catches of the sampling year), (b) SST (°C), (c) tide level (cm), and (d) tidal range (cm). Tidal range in the plot is the difference of tide level within one hour. Dashed lines indicate roughly the area with high catch
Fig. 5 in Species Composition And Distribution Of The Dominant Flyingfishes (Exocoetidae) Associated With The Kuroshio Current, South China Sea
Fig. 5. Monthly flyingfish densities by (a) vertical catch layer (upper: Fig. 4. Flyingfish compositions of the six dominant species by 0–1.2 m, middle: 1.2–2.4 m, and bottom: 2.4–3.6 m), and (b) mesh sampling area, collected by in-port sampling and at-sea survey size of net (5.6 cm, 4 cm, and 2.8 cm for large, medium, and small
Fig. 3 in Anthomastus nanhaiensis, new species, and Bathyalcyon robustum Versluys, 1906, two mushroom soft corals (Octocorallia: Coralliidae) from Zhenbei Seamount in the South China Sea
Fig. 3. Sclerites of Anthomastus nanhaiensis, new species. A, sclerites from autozooid tentacle tip; B, sclerites from tentacle base; C, sclerites from pharynx. Scale bars = 0.10 mm (A, B), and 0.05 mm (C).
Fig. 2 in Anthomastus nanhaiensis, new species, and Bathyalcyon robustum Versluys, 1906, two mushroom soft corals (Octocorallia: Coralliidae) from Zhenbei Seamount in the South China Sea
Fig. 2. Morphology of the holotype of Anthomastus nanhaiensis, new species. A, the animal in situ; B, an autozooid; C, the colony in top view; D, the colony in lateral view; E, the longitudinal section of the colony, showing large cavities of autozooids (au) and small cavities of siphonozooids (arrows). Scale bars = 1 mm (B), 10 mm (C‒E).
Fig. 7 in Anthomastus nanhaiensis, new species, and Bathyalcyon robustum Versluys, 1906, two mushroom soft corals (Octocorallia: Coralliidae) from Zhenbei Seamount in the South China Sea
Fig. 7. Sclerites of Bathyalcyon robustum Versluys, 1906. A, sclerites from tentacle pinnules of autozooids; B, sclerites from tentacle rachis of autozooids; C, sclerites from anthocodial wall. Scale bars = 0.10 mm.
Fig. 8 in Anthomastus nanhaiensis, new species, and Bathyalcyon robustum Versluys, 1906, two mushroom soft corals (Octocorallia: Coralliidae) from Zhenbei Seamount in the South China Sea
Fig. 8. Sclerites of Bathyalcyon robustum Versluys, 1906. A, sclerites from pharynx; B, sclerites from outermost anthostelar coenenchyme; C, sclerites from deeper layer of coenenchyme; D, sclerites from holdfast. Scale bars = 0.10 mm.
Fig. 5 in Anthomastus nanhaiensis, new species, and Bathyalcyon robustum Versluys, 1906, two mushroom soft corals (Octocorallia: Coralliidae) from Zhenbei Seamount in the South China Sea
Fig. 5. Sclerites of Anthomastus nanhaiensis, new species. A, sclerites from surface of stalk; B, sclerites from interior of stalk. Scale bars = 0.10 mm.
Fig. 4 in Anthomastus nanhaiensis, new species, and Bathyalcyon robustum Versluys, 1906, two mushroom soft corals (Octocorallia: Coralliidae) from Zhenbei Seamount in the South China Sea
Fig. 4. Sclerites of Anthomastus nanhaiensis, new species. A, sclerites from surface of capitulum; B, sclerites from interior of capitulum. Scale bars = 0.10 mm.
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)
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.