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639 results for “eastern China”
Water Body Checklists 2019: Eastern China Sea Species List
Species checklists created using effechecka and modified polygons from IHO. The polygons were reduced in resolution.<p></p>List of species collected from the Eastern China Sea using effechecka and a modified polygon from the International Hydrographic Association. A filter was applied (based on data from WoRMS) to remove all non-marine taxa.
Water Body Checklists: Eastern China Sea Species List
Species checklists created using effechecka and modified polygons from IHO. The polygons were reduced in resolution.<p></p>List of species collected from the Eastern China Sea using effechecka and a modified polygon from the International Hydrographic Association. A filter was applied (based on data from WoRMS) to remove all non-marine taxa.
Figures 11–18 in Two new species of Eryciini (Diptera: Tachinidae) from the Eastern edge of the Qinghai-Tibetan Plateau, China
Figures 11–18. Lydella gannanensis sp. nov., male. 11–12. Body in dorsal and lateral views. 13–14. Head in anterior and lateral views. 15. Sternite 5. 16–17. Cerci, surstyli and epandrium in lateral and caudal views. 18. Bacilliform sclerite, ejaculatory apodeme, hypandrium, phallapodeme, pregonite, postgonite, basiphallus, distiphallus, epiphphallus, and acrophallus in lateral view. Scale bars: 11–14 = 1.0 mm, 15–18 = 0.2 mm.
Figures 1–8 in Two new species of Eryciini (Diptera: Tachinidae) from the Eastern edge of the Qinghai-Tibetan Plateau, China
Figures 1–8. Drino latifrons sp. nov., male. 1–2. Body in dorsal and lateral views. 3–4. Head in anterior and lateral views. 5. Sternite 5. 6. Bacilliform sclerite, ejaculatory apodeme, hypandrium, phallapodeme, pregonite, postgonite, basiphallus, distiphallus, epiphphallus, and acrophallus in lateral view. 7–8. Cerci, surstyli and epandrium in lateral and caudal views. Scale bars: 1–4 = 1.0 mm, 5–8 = 0.2 mm.
Fig. 3 in Waterbird Distribution Patterns And Environmentally Impacted Factors In Reclaimed Coastal Wetlands Of The Eastern End Of Nanhui County, Shanghai, China
Fig. 3. Non-metricmulti-dimensionalscaling(NMDS) ordinationplotsshowingwaterbird communitystructurefromsixstudysites.
Figs 2–5 in Antireicheia chinensis sp. nov. of the subtribe Reicheiina (Coleoptera: Carabidae: Scaritinae) from the south-eastern China
Figs 2–5. Antireicheia chinensis sp. nov. 2 – aedeagus of holotype in left lateral view; 3 – aedeagus of holotype in ventral view; 4 – urite; 5 – parameres of holotype.
Figs 1–6 in A new species and new combinations of Danielithosia from eastern China and Indochina, with check-list of the genus (Lepidoptera: Arctiidae: Lithosiinae)
Figs 1–6. Danielithosia hoenei sp. nov. 1 – male, holotype; 2 – female, paratype; 3 – holotype labels; 4 – male genitalia, holotype, Shaowu, Fujian, China; 5 – male genitalia, paratype, Vietnam, Dong Nai, Vin Cuu Nat. Res., Phu Ly; 6 – female genitalia, paratype, Shaowu, Fujian, China.
Figs 9–13 in Scaphisomatini (Coleoptera: Staphylinidae: Scaphidiinae) from two biosphere reserves in eastern China, with descriptions of two new species
Figs 9–13. Habitat of Scaphisoma Leach, 1815 in Wuyishan Mts. 9–10 – Xiaofeng Mountain; 11–13 – Guadun. 9 – general view of broad-leaved forest with bamboo; 10 – detail of sifted microhabitat; 11 – general view of short bamboo forest with intermixed high evergreen trees; 12 – detail of sifted bamboo bush; 13 – border of tea plantation and mixed forest with flowering Castanopsis sp.
Figs 1–8. Scaphisoma Leach, 1815 from Wuyishan Mts. 1, 3–4 in Scaphisomatini (Coleoptera: Staphylinidae: Scaphidiinae) from two biosphere reserves in eastern China, with descriptions of two new species
Figs 1–8. Scaphisoma Leach, 1815 from Wuyishan Mts. 1, 3–4 – Scaphisoma krali sp. nov.; 2, 5–8 – Scaphisoma sekerkai sp. nov. 1–2 – habitus in dorsal view; 3, 5 – aedeagus in dorsal view; 4, 8 – aedeagus in lateral view; 6 – basal bulb and internal sac in dorsal view; 7 – paramere in ventral view. Scale bars: Figs 1–2 = 1 mm; 3–8 = 0.1 mm.
Compiled soil N2O emission data from Eastern China forests
<p>We searched the Thomson Reuters Web of Science Core Collection and China National Knowledge Infrastructure (CNKI) theses database for literature published before January 1, 2020, using the terms “forest” AND “greenhouse gas” OR “N<sub>2</sub>O” OR “nitrous oxide” in the titles, abstracts, and keywords; this returned 5,948 records and 590 records, respectively. Considering the different preferences for terminology (e.g., nutrient addition, simulated N deposition), we refined our search manually. The criteria for our refinement were as follows: (a) N addition experiment was conducted in eastern China forests with detailed records of N addition levels; (b) N<sub>2</sub>O flux was observed using the static chamber method so that data from different sites were comparable. A total of 58 papers from 38 research sites met our criteria. </p> <p>We also collected the data of soil N<sub>2</sub>O emission rates under natural conditions. The data were collected from literature that met the following criteria: (a) N<sub>2</sub>O fluxes were observed in eastern China forests using the static chamber method; (b) no manipulated experiments were conducted, and no nitrogen was added except for natural N deposition. There were 42 papers and theses that met these criteria, covering 30 different sites. </p> <p>From the abovementioned papers and theses, the soil N<sub>2</sub>O emission rates and the auxiliary information (coordinates, ecoregion type, natural N deposition rate, multi-year mean annual temperature, multi-year mean annual precipitation, and soil texture) were compiled (ds01).</p> <p>To obtain the soil N<sub>2</sub>O emission rates of Eastern China forests on grid level (10km × 10km), another dataset (ds02) on the environmental factors (ecoregion type, natural N deposition rate, multi-year mean annual temperature, multi-year mean annual precipitation, and soil texture) of each grid was compiled from the spatial datasets, including the Chinese vegetation ecoregion map from the Resources, Environmental Sciences, and Data Center at the Chinese Academy of Sciences (<a href="https://www.resdc.cn/">https://www.resdc.cn/data.aspx?DATAID=133</a>), as well as the soil texture raster data (<a href="https://www.resdc.cn/data.aspx?DATAID=260">https://www.resdc.cn/data.aspx?DATAID=260</a>), mean annual temperature raster data (1995–2015; <a href="https://www.resdc.cn/data.aspx?DATAID=228">https://www.resdc.cn/data.aspx?DATAID=228</a>), and mean annual precipitation raster data (1995–2015; <a href="https://www.resdc.cn/data.aspx?DATAID=229">https://www.resdc.cn/data.aspx?DATAID=229</a>). Land use and land cover raster data (2000–2015) were obtained from the Project on Big Earth Data Science Engineering (<a href="https://data.casearth.cn/sdo/detail/5c19a5650600cf2a3c557aae">https://data.casearth.cn/sdo/detail/5c19a5650600cf2a3c557aae</a>). Finally, annual N deposition rate and multi-year mean N deposition (MAN) data were derived from a N deposition dataset from mainland China previously constructed by our group. </p>
Figure 5 in A new species of the genus Tylototriton (Amphibia: Urodela: Salamandridae) from the Eastern Dalou Mountains in Guizhou, China
Figure 5. Tylototriton daloushanensis Zhou, Xiao & Luo, sp. nov. in preserved status. A–B. Male holotype, GZNU20180806001, dorsal and ventral views. C–D. Female paratype, GZNU20180607001, dorsal and ventral views. E. Female paratype, GZNU20180607001, dorsal view of head. F. Female paratype, GZNU20180607001, view of oral cavity (yellow arrows represent vomerine teeth). Scale bars: A–D = 5.0 mm; E–F = 4.0 mm.
Figure 6 in A new species of the genus Tylototriton (Amphibia: Urodela: Salamandridae) from the Eastern Dalou Mountains in Guizhou, China
Figure 6. Habitat and eggs of Tylototriton daloushanensis Zhou, Xiao & Luo, sp. nov. at the type locality. A. Microhabitats. B. Individual found in the type locality. C. Eggs laid by GZNU20180607001 on 7 June 2018. D. Individual GZNU20180608001 collected on 8 June 2018 in Kuankuoshui National Nature Reserve.
Figure 4 in A new species of the genus Tylototriton (Amphibia: Urodela: Salamandridae) from the Eastern Dalou Mountains in Guizhou, China
Figure 4. Tylototriton daloushanensis Zhou, Xiao & Luo, sp. nov. in life. A–C. Male holotype, GZNU20180806001, dorsal, ventral, and dorsolateral views. D–F. Female paratype, GZNU20180607001, dorsal, ventral, and dorsolateral views. H–I. Male holotype, GZNU20180806001, ventral view of the hand, foot, and cloaca. J–L. Female paratype, GZNU20180607001, ventral view of the hand, foot, and cloaca (yellow arrow). All photos were taken at around 9:00 am.
Figure 2 in A new species of the genus Tylototriton (Amphibia: Urodela: Salamandridae) from the Eastern Dalou Mountains in Guizhou, China
Figure 2. Bayesian inference (BI) tree based on 16S+ND2 gene sequences. Bayesian posterior probabilities (BPP) from BI analyses/ ultrafast bootstrap supports (UFB) from ML analyses were noted beside nodes. The scale bar represents 0.04 nucleotide substitutions per site. The numbers at the tip of branches correspond to the ID numbers in Table 1.
Figure 1 in A new species of the genus Tylototriton (Amphibia: Urodela: Salamandridae) from the Eastern Dalou Mountains in Guizhou, China
Figure 1. Sampling localities of the Tylototriton daloushanensis Zhou, Xiao & Luo, sp. nov., T. maolanensis, and T. kweichowensis in Guizhou, China. A. Huoqiuba Nature Reserve, Suiyang County. B. Kuankuoshui National Nature Reserve, Suiyang County. C. Maolan National Nature Reserve, Libo County. D. Nayong County.
Text-fig. 4. Graphical visualization of Phytogeographic Reference Regions Assessment (PRRA) of nearest living relative genera of fossil-taxa from late Early Miocene Wiesa assemblage in eastern Germany. Analysis yields only NLRs which have modern distribution area (partly) in E and SE Asia. For relationships of fossil-taxa to nearest living relatives or ecological equivalents, see Tab. 6; taxa used for analysis marked with asterisks. Three geographic resolutions conducted: a – grid with 1.5° latitude/longitude resolution, b – grid with 2°, c – grid with 3°; similarity column indicates cooccurrences of genera of nearest living relatives in single grid box. Maximum value in our analysis: grid box marked with arrow in map a, located in western Yunnan Province, P. R. China and southern Kachin Province, NE Myanmar (east of Myitkyina city), area with 97.371 7–98.874 2° longitude and 24.586 7–25.837 5° latitude, yields 23 co-occurring species of 13 genera (Tab. 7). in Assessment Of Phytogeographic Reference Regions For Cenozoic Vegetation: A Case Study On The Miocene Flora Of Wiesa (Germany)
Text-fig. 4. Graphical visualization of Phytogeographic Reference Regions Assessment (PRRA) of nearest living relative genera of fossil-taxa from late Early Miocene Wiesa assemblage in eastern Germany. Analysis yields only NLRs which have modern distribution area (partly) in E and SE Asia. For relationships of fossil-taxa to nearest living relatives or ecological equivalents, see Tab. 6; taxa used for analysis marked with asterisks. Three geographic resolutions conducted: a – grid with 1.5° latitude/longitude resolution, b – grid with 2°, c – grid with 3°; similarity column indicates cooccurrences of genera of nearest living relatives in single grid box. Maximum value in our analysis: grid box marked with arrow in map a, located in western Yunnan Province, P. R. China and southern Kachin Province, NE Myanmar (east of Myitkyina city), area with 97.371 7–98.874 2° longitude and 24.586 7–25.837 5° latitude, yields 23 co-occurring species of 13 genera (Tab. 7).
FIGURE 1. Fossil locations and fossil ages. A in Leaf trait data of two Miocene floras from eastern China and its palaeoclimate implications
FIGURE 1. Fossil locations and fossil ages. A, yellow points indicate the locations of fossil floras. The numbered red lines indicate the regional vegetation of southeastern China (background picture by GeoMapApp: geomapapp.org; the vegetation division after Zhang et al., 2007): 1, tropical rainforest and humid rainforest; 2, subtropical evergreen broad-leaved forest; 3, warm temperate deciduous oak forest; B, fossil ages of the Toupi flora (17 – 14 Ma) and Shengxian flora (10.5 ± 0.5 Ma).
FIGURE 2. Example for a in Leaf trait data of two Miocene floras from eastern China and its palaeoclimate implications
FIGURE 2. Example for a replenished fossil leaf. The yellow line is the outline of the original fossil. The blue line is the outline of replenished leaf (the leaf reconstruction was visually based on taxon specific gross morphology, Toumoulin et al., 2020). The petiole width was determined at the region of the insertion point (Traiser et al., 2018); Scale bar equals 1 cm.
Fig. 1 in Toxoplasma gondii in four captive kangaroos (Macropus spp.) in China: Isolation of a strain of a new genotype from an eastern grey kangaroo (Macropus giganteus)
Fig. 1. Toxoplasma gondii cysts in kangaroos or mice. A. Toxoplasma gondii cysts in the diaphragm of case 2 kangaroo, H&E. B. Toxoplasma gondii cysts in the tongue of case 2 kangaroo, H&E. C. Toxoplasma gondii cysts in the diaphragm of case 2 kangaroo, IHC. D. Toxoplasma gondii cysts in the tongue of case 2 kangaroo, IHC. E. Toxoplasma gondii-like cysts in the myocardium of case 4 kangaroo, squashed section, unstained. F. Many TgRooCHn1 Toxoplasma gondii cysts were observed in the mouse brain, 27 DPI, squashed section, unstained. Bar = 50 μm.
Figure 1 in A new genus of ultra-elongate freshwater mussels from Vietnam and eastern China (Bivalvia: Unionidae)
Figure 1. Examples of Sinosolenaia gen. nov. shells (external view of the left valves). (A) S. recognita (Heude, 1877) gen. & comb. nov., Hanoi, Red (Hồng Hà) River basin, northern Vietnam. (B) S. oleivora (Heude, 1877) comb. nov., Yangtze River basin, eastern China. (C) S. carinata (Heude, 1877) comb. nov., Yangtze River basin, eastern China. Scale bars = 25 mm. (Photo: Yulia S. Kolosova [A], Huang et al. (2019) [B-C]).
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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)
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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.