Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
2,256
datasets available to search
ShareScore release 0.9.0
Dataset results
2,256 results for “Southern China”
FIGURE 1 in Description of eight new species of Otacilia Thorell, 1897 from southern China (Araneae: Phrurolithidae)
FIGURE 1. Habitus, male holotype and female paratype. Otacilia furcata sp. nov.: A. Male, dorsal view; B. Female, dorsal view; Otacilia guoi sp. nov.: C. Male, dorsal view; D. Female, dorsal view; Otacilia jiajinshana sp. nov.: E. Male, dorsal view; F. Female, dorsal view; Otacilia menghuo sp. nov.: G. Male, dorsal view; H. Female, dorsal view. Red arrow: dorsal scutum.
FIGURE 2 in Description of eight new species of Otacilia Thorell, 1897 from southern China (Araneae: Phrurolithidae)
FIGURE 2. Otacilia furcata sp. nov.: A. Male left palp, prolateral view; B. same, retrolateral view; C. Same, ventral view; D. same, dorsal view; E. epigyne, ventral view; F. Same, dorsal view. Red arrow: copulatory plug.
FIGURE 8 in Description of two new species of the genus Glyphiulus Gervais, 1847 (Diplopoda: Spirostreptida: Cambalopsidae) from southern China
FIGURE 8. Gonopods of Glyphiulus hainanensis sp. nov., paratype. A. anterior gonopods, posterior view; B. posterior gonopods, anterior view. Abbreviations: c, coxite; cp, coxite process; f, flagellum; l, lamelliform lobe; t, telopodite. Scale bars: A. 0.4 mm; B. 0.3 mm.
FIGURE 7 in Description of two new species of the genus Glyphiulus Gervais, 1847 (Diplopoda: Spirostreptida: Cambalopsidae) from southern China
FIGURE 7. Male of Glyphiulus hainanensis sp. nov., paratype. A. male legs 1, anterior view; B. male leg 6; C. midbody leg. Abbreviations: cs, coxosternum; csp, coxosternal process; ft, femoral tubercle; t, telopodite. Scale bars: 0.5 mm.
FIGURE 6 in Description of two new species of the genus Glyphiulus Gervais, 1847 (Diplopoda: Spirostreptida: Cambalopsidae) from southern China
FIGURE 6. Male of Glyphiulus hainanensis sp. nov., paratype. A. anterior part of body, anterior view; B. body ring, posterior view; C. midbody rings, dorsal view; D. midbody rings, lateral view; E. posterior part of body, ventral view; F. posterior part of body, lateral view. Abbreviations: ant, antennae; co, collum; dt, dorsal tooth; e, eyes; ep, epiproct; h, head; hy, hypoproct; me, metazonite; ot, ozoporiferous tubercle; pa, paraproct; pr, prozonite; wl, walking leg. Scale bars: 0.5 mm.
FIGURE 5 in Description of two new species of the genus Glyphiulus Gervais, 1847 (Diplopoda: Spirostreptida: Cambalopsidae) from southern China
FIGURE 5. Male of Glyphiulus fortis sp. nov., paratype. A. male legs 1; B. flagellum of posterior gonopods; C. anterior gonopods, posterior view; D. posterior gonopods, anterior view. Abbreviations: c, coxite; cp, coxite process; cs, coxosternum; csp, coxosternal process; f, flagellum; l, lamelliform lobe; t, telopodite. Scale bars: A. 0.4 mm; B. 0.04 mm; C. 0.4 mm; D. 0.3 mm.
FIGURE 3 in Description of two new species of the genus Glyphiulus Gervais, 1847 (Diplopoda: Spirostreptida: Cambalopsidae) from southern China
FIGURE 3. Male of Glyphiulus fortis sp. nov., holotype. A. anterior part of body, anterior view; B. body ring, posterior view; C. midbody rings, dorsal view; D. midbody rings, lateral view; E. posterior part of body, ventral view; F. posterior part of body, dorsal view. Abbreviations: ant, antennae; ap, apodous ring; co, collum; dt, dorsal tooth; e, eyes; ep, epiproct; h, head; hy, hypoproct; me, metazonite; ot, ozoporiferous tubercle; pa, paraproct; pr, prozonite; wl, walking leg. Scale bars: A–D. 1 mm; E, F. 0.5 mm.
FIGURE 4 in Description of two new species of the genus Glyphiulus Gervais, 1847 (Diplopoda: Spirostreptida: Cambalopsidae) from southern China
FIGURE 4. Male of Glyphiulus fortis sp. nov., paratype. A. anterior part of body, dorsal view; B. anterior part of body, lateral view; C. midbody rings, dorsal view; D. midbody rings, lateral view; E. posterior part of body, dorsal view; F. posterior part of body, ventral view. Abbreviations: ant, antennae; ap, apodous ring; co, collum; dt, dorsal tooth; ep, epiproct; hy, hypoproct; me, metazonite; ot, ozoporiferous tubercle; pa, paraproct; pr, prozonite. Scale bars: 1 mm.
FIGURE 2 in Description of two new species of the genus Glyphiulus Gervais, 1847 (Diplopoda: Spirostreptida: Cambalopsidae) from southern China
FIGURE 2. Phylogenetic tree based on the concatenated dataset (COI + 16S). Numbers at nodes are maximum likelihood percent bootstrap values (left) and Bayesian posterior probabilities (right).
FIGURE 1 in Description of two new species of the genus Glyphiulus Gervais, 1847 (Diplopoda: Spirostreptida: Cambalopsidae) from southern China
FIGURE 1. Habitus and habitats of Glyphiulus fortis sp. nov. and Glyphiulus hainanensis sp. nov. A. habitus of G. fortis sp. nov.; B. the entrance to Baimo Cave where G. fortis sp. nov. inhabited; C. habitus of G. hainanensis sp. nov.; D. habitat of G. hainanensis sp. nov.
Data from: Drivers of foliar 15N trends in southern China over the last century
<p>Foliar stable nitrogen (N) isotopes (δ<sup>15</sup>N) generally reflect N availability to plants and have been used to infer about changes thereof. However, previous studies of temporal trends in foliar δ<sup>15</sup>N have ignored the influence of confounding factors, leading to uncertainties on its indication to N availability. In this study, we measured foliar δ<sup>15</sup>N of 1,811 herbarium specimens from 12 plant species collected in southern China forests from 1920 to 2010. We explored how changes in atmospheric CO<sub>2</sub>, N deposition and global warming have affected foliar δ<sup>15</sup>N and N concentrations ([N]) and identified whether N availability decreased in southern China. Across all species, foliar δ15N significantly decreased by 0.82‰ over the study period. However, foliar [N] did not decrease significantly, implying N homeostasis in forest trees in the region. The spatiotemporal patterns of foliar δ<sup>15</sup>N were explained by mean annual temperature (MAT), atmospheric CO2 (P<sub>CO2</sub>), atmospheric N deposition, and foliar [N]. The spatiotemporal trends of foliar [N] were explained by MAT, temperature seasonality, P<sub>CO2</sub>, and N deposition. N deposition within the rates from 5.3 – 12.6 kg N ha<sup>-1</sup> yr<sup>-1</sup> substantially contributed to the temporal decline in foliar δ<sup>15</sup>N. The decline in foliar δ<sup>15</sup>N was not accompanied by changes in foliar [N] and therefore does not necessarily reflect a decline in N availability. This is important to understand changes in N availability, which is essential to validate and parameterize biogeochemical cycles of N.</p>
Distribution. Main range from SE Altai and Tuva (S Russia), through Mongolian Great Lakes Depression, to Gobi Altai in W & S Mongolia, but also several enclaves located in E Mongolia, S Mongolia (Trans-Altai Gobi) and N China (Dzungarian and Southern Gobi in Xinjiang and Inner Mongolia=Nei Mongol). in Ochotonidae
Distribution. Main range from SE Altai and Tuva (S Russia), through Mongolian Great Lakes Depression, to Gobi Altai in W & S Mongolia, but also several enclaves located in E Mongolia, S Mongolia (Trans-Altai Gobi) and N China (Dzungarian and Southern Gobi in Xinjiang and Inner Mongolia=Nei Mongol).
Distribution. Fennoscandia in N Europe E through Siberia to Pacific coast and Kamchatka Peninsula, S as far as Southern Ural, upper reaches of Ob River, N China (Xinjang, Inner Mongolia [= Nei Mongol], Heilongjiang, Jilin, and Liaoning), Mongolia, N Korea, and Pacific Is of Sakhalin, Hokkaido, Kurils, Shantar, and small Is around Hokkaido and in the Sea of Okhotsk. in Cricetidae
Distribution. Fennoscandia in N Europe E through Siberia to Pacific coast and Kamchatka Peninsula, S as far as Southern Ural, upper reaches of Ob River, N China (Xinjang, Inner Mongolia [= Nei Mongol], Heilongjiang, Jilin, and Liaoning), Mongolia, N Korea, and Pacific Is of Sakhalin, Hokkaido, Kurils, Shantar, and small Is around Hokkaido and in the Sea of Okhotsk.
FIGURE 2. A in Rohdea grandiflora (Asparagaceae), a new species from southern Gansu, China
FIGURE 2. A. Inflorescence of Rohdea grandiflora. B. Inflorescence of R. pachynema (some perianth lobes removed). C & D. Flower of R. pachynema
FIGURE 1. Rohdea grandiflora. A. Habit. B. Inflorescence. C. Leaf detached. D & G. Plant bearing a stolon. E in Rohdea grandiflora (Asparagaceae), a new species from southern Gansu, China
FIGURE 1. Rohdea grandiflora. A. Habit. B. Inflorescence. C. Leaf detached. D & G. Plant bearing a stolon. E. Leaf blade (a) and outer bract (b) and inner bract (c). F & I. Flower in lateral view. H. Half flower, frontal view. J. Ovary in transverse section. K. Pistil. L. Flowers from different plants.
FIGURE 4 in Synotis nyalamensis (Asteraceae, Senecioneae), a new species from southern Xizang (Tibet), China
FIGURE 4. Synotis kunthiana in the wild [on the way from Shongsa Khola (Chusang valley) to Thulo Chaur, Humla district, Nepal]. A. Habitat. B. Habit. C. Capitulum (side view). D. Capitulum (top view). E. Ray floret (left) and disk floret (right). Photographed by Y.S. Chen.
FIGURE 2 in Synotis nyalamensis (Asteraceae, Senecioneae), a new species from southern Xizang (Tibet), China
FIGURE 2. Synotis nyalamensis sp. nov. (A–C) and S. kunthiana (D–F), showing their rhizomes, proximal portion of stems, leaves and synflorescences. A. Rhizome and proximal portion of stem. B. Leaf (left: adaxial side; right: abaxial side. C. Synflorescence. D. Rhizome and proximal portion of stems. E. Median portion of stem, showing that the leaves are shortly petiolate. F. Synflorescence. A–C from M. Tang & C. Ren 485 (IBSC), D–F from Blinkworth, Wall. Num. List 3118/228 (K).
FIGURE 3 in Synotis nyalamensis (Asteraceae, Senecioneae), a new species from southern Xizang (Tibet), China
FIGURE 3. Type specimens of Synotis kunthiana (India, Kumaon, Blinkworth, Wall. Num. List 3118/228). A. G00468314 (G-DC). B. G00468222 (G-DC). C. E00414025 (E). D. K001118591 (K).
FIGURES 13–16 in Two new species of Plagiostriata (Bacillariophyaceae) from sand sediments of southern China
FIGURES 13–16. LM micrographs of P. pingtanensis sp. nov. from type material. Fig. 13 corresponds to the holotype. Scale bars = 5 μm.
FIGURES 17–23 in Two new species of Plagiostriata (Bacillariophyaceae) from sand sediments of southern China
FIGURES 17–23. Plagiostriata pingtanensis sp. nov. from type material, SEM. 17. External view of the valve with a rimoportula (arrow). 18. Central area of a valve with a rimoportula. 19. External views of the valve with no rimoportula. 20. Internal views of the valve with no rimoportula. 21. Internal views of the valve with a rimoportula (arrow). 22. Girdle view of P. pingtanensis sp. nov., composed of three bands. 23. Apical fields of the internal valve. Scale bars = 1 μm (Figs. 17, 19–21, 23), 0.5 μm (Figs. 18, 23).
ScienceDex guides
Understand access before you commit
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.