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109 results for “Fujian Province”
FIGURE 4 in A new freshwater goby, Rhinogobius lianchengensis (Teleostei: Gobiidae) from the Minjiang river basin, Fujian Province, China
FIGURE 4. First dorsal-fin colouration pattern of Rhinogobius lianchengensis n. sp., male, 29.1 mm SL.
FIGURE 1 in A new freshwater goby, Rhinogobius lianchengensis (Teleostei: Gobiidae) from the Minjiang river basin, Fujian Province, China
FIGURE 1. Head lateral-line system of Rhinogobius lianchengensis n. sp., NTOUP-2019-12-316, holotype, 35.4 mm SL, male, Liancheng County, the Mingjiang basin, Fujian, China.
FIGURE 2. Rhinogobius lingtongyanensis, n in A new freshwater goby of Rhinogobius lingtongyanensis (Teleostei, Gobiidae) from the Dongshi river basin, Fujian Province, southeastern China
FIGURE 2. Rhinogobius lingtongyanensis, n. sp., a, male, holotype, 30.8 mm SL; b, female, paratype, 38.5 mm SL, the Dongshi river basin, Fujian Province, PR China.
FIGURES 33–36 in Hippodonta fujiannensis sp. nov. (Bacillariophyceae), a new epipsammic diatom from the low intertidal zone, Fujian Province, China
FIGURES 33–36. SEM images of sand from Longfengtou Beach. Figs 33, 35. Sand grains showing H. fujiannensis attached in grooves (arrows). Figs 34, 36. External girdle view of H. fujiannensis. Scale bars in Fig. 35 = 100 μm, Fig. 33 = 50 μm; Figs 34, 36 = 10 μm.
FIGURES 14–20 in Hippodonta fujiannensis sp. nov. (Bacillariophyceae), a new epipsammic diatom from the low intertidal zone, Fujian Province, China
FIGURES 14–20. SEM images of Hippodonta fujiannensis. Figs 14, 17, 18. External view of entire valve. Striae uniseriate throughout the valve face and mantle. On one valve side, one column of lineolae closest to the raphe is positioned perpendicular towards remaining lineolae of the striae. Figs 15, 19. Close up of valve apices. Terminal endings of raphe distinct, strongly pronounced, teardrop-shaped depressions, positioned before terminal area or weakly advancing into it, slightly curved towards one valve side. Figs 16, 20. Close up of the central area. Central endings of the raphe small, teardrop-shaped depressions; central endings are positioned close together. Central area dissymmetrical. Scale bars in Figs 14, 18 = 5 μm; Fig. 17 = 2 μm; Figs 15, 16, 19, 20 = 1 μm.
FIGURE 1 in Hippodonta fujiannensis sp. nov. (Bacillariophyceae), a new epipsammic diatom from the low intertidal zone, Fujian Province, China
FIGURE 1. Location of the sampling site on Haitan Island, Fujian Province, China. LFTB = Longfengtou Beach.
FIGURES 27–32 in Hippodonta fujiannensis sp. nov. (Bacillariophyceae), a new epipsammic diatom from the low intertidal zone, Fujian Province, China
FIGURES 27–32. SEM images of Hippodonta fujiannensis. Figs 27, 30. Internal view of entire valve. Striae positioned on shallow linear depressions; thus, valve face not flat. Figs 28, 31. Internal view, detail of valve apex. Linear raphe slits distally terminated by weak, crescent-shaped helictoglossae, weakly advancing into the terminal area. Terminal area strongly pronounced. One row of lineolae around the valve apex. Figs 29, 32. Internal view, detail of central area. Central endings of the raphe linear, closely positioned, and gradually disappearing. Semicircular to rectangular hyaline area clearly developed in central area. Lineolae covered by hymens. Scale bars in Figs 27, 30 = 5 μm; Figs 31, 32 = 2 μm; Figs 28, 29 = 1 μm.
FIGURES 21–26 in Hippodonta fujiannensis sp. nov. (Bacillariophyceae), a new epipsammic diatom from the low intertidal zone, Fujian Province, China
FIGURES 21–26. SEM images of Hippodonta fujiannensis. Figs 21, 24. External view of complete frustules showing broad, unornamented girdle. Fig. 25. External girdle view of entire valve. The edge of the valve has no ornamentation. Figs 22, 26. Detail of one apex in girdle view, showing one row of apical areolae and the hyaline area. Fig. 23. Detail of the central area in girdle view, showing the central raphe endings and the central nodule. Scale bars in Fig. 25 = 10 μm; Figs 21, 23 = 5 μm; Figs 22, 24, 26 = 1 μm.
FIGURE 7 in A new species of the Achalinus rufescens complex (Xenodermidae: Achalinus) from Fujian Province, China
FIGURE 7. Habitat of Achalinus dehuaensis sp. nov. in Youxi County, Fujian Province, China (By Jun–Feng Guo).
FIGURE 6 in A new species of the Achalinus rufescens complex (Xenodermidae: Achalinus) from Fujian Province, China
FIGURE 6. Habitat of Achalinus dehuaensis sp. nov. in Nancheng Town, Dehua County, Fujian Province, China (By Fei Zhu).
FIGURE 2 in A new species of the Achalinus rufescens complex (Xenodermidae: Achalinus) from Fujian Province, China
FIGURE 2. Bayesian inference and maximum–likelihood phylogenies inferred from a partitioned gene sequence cytochrome coxidase subunit 1 (CO1) of xenodermatid snakes. Numbers indicate Bayesian posterior probabilities (>0.50 retained) on the left, and numbers are bootstrap support for maximum likelihood (1000 replicates) analyses (>50 retained) on the right. Sample information is provided in Table 1.
FIGURE 1 in A new species of the Achalinus rufescens complex (Xenodermidae: Achalinus) from Fujian Province, China
FIGURE 1. Map showing the type locality of Achalinus dehuaensis sp. nov., Dehua County (1) and adjacent Youxi County (2) in Fujian Province, China.
FIGURE 4 in A new species of the Achalinus rufescens complex (Xenodermidae: Achalinus) from Fujian Province, China
FIGURE 4. Lateral (column 1), dorsal (column 2), and ventral (column 3) view of head, dorsal comparisons (column 4) of the paratypes of Achalinus dehuaensis sp. nov. CIB 8101 (A–D), CIB 8102 (E–H), CIB 8099 (I–L), and CIB 8100 (M–P) from Dehua County; LAB 2020039 (Q–T) from Youxi County.
FIGURE 2 in Morphological traits and molecular analysis for two new Chrysosporium species from Fujian Province, China
FIGURE 2. Colony and conidiogenous structures of Chrysosporium laterisporum (GZUIFR-G310, holotype). A, B. Conidiogenous structures. C. Conidia. D, E. Colony (top and reverse) on PDA. Bars A–C = 10 μm, D–E = 10 mm.
FIGURE 1 in Morphological traits and molecular analysis for two new Chrysosporium species from Fujian Province, China
FIGURE 1. Phylogenetic tree of Chrysosporium spp. constructed from ITS-5.8S rDNA sequences. Statistical support values (Bayesian posterior probability/ML/MP) are shown at the nodes. The tree was rooted using Myceliophthora thermophila as outgroup.
FIGURE 3 in Morphological traits and molecular analysis for two new Chrysosporium species from Fujian Province, China
FIGURE 3. Colony and conidiogenous structures of Chrysosporium ovalisporum (GZUIFR-G446, holotype). A–C. Conidiogenous structures. D. Conidia. E–F. Colonies (reverse and top) on PDA. Bars A–D = 10 µm, E–F. = 10 mm.
FIGURE 12 in Review of Kamimuria (Plecoptera: Perlidae) from Zhejiang and Fujian provinces, China, with notes on the morphological variability of K. tienmushanensis Wu, 1938
FIGURE 12. Kamimuria tienmushanensis, aedeagus, Longquan City, Zhejiang.A: dorsal; B: lateral; C: ventral. Wuyi Mountains, Fujian. D: dorsal; E: lateral; F: ventral.
FIGURE 11 in Review of Kamimuria (Plecoptera: Perlidae) from Zhejiang and Fujian provinces, China, with notes on the morphological variability of K. tienmushanensis Wu, 1938
FIGURE 11. Kamimuria tienmushanensis, aedeagus, Hangzhou City, Zhejiang. A: dorsal; B: lateral; C: ventral.
FIGURE 10 in Review of Kamimuria (Plecoptera: Perlidae) from Zhejiang and Fujian provinces, China, with notes on the morphological variability of K. tienmushanensis Wu, 1938
FIGURE 10. Kamimuria tienmushanensis, male terminalia, dorsal. A–C: Longquan City, Zhejiang, D: Wuyi Mountains, Fujian, terga with lighter coloration.
Radial and Transverse receiver functions in Guangdong, Fujian, Jiangxi, Hunan, Guangxi Provinces in China.
<p>Seismic data from 126 permanent seismic stations run by the China Earthquake Administration between 2009 and 2015 were processed. Teleseismic waveform recordings with a magnitude greater than M6.0 and epicentral distances ranging from 30° to 90° were considered. The back azimuth coverage of these events is overall adequate for anisotropy analysis . The RFs were computed following the source equalization procedure with a water-level parameter of 0.001 and a Gaussian width of 2.5. We manually evaluated these receiver functions by checking the Ps signals, and high-quality radial and transverse RFs were selected for further processing.</p>
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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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.