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FIG. 10 in On the taxonomic status and biogeography of the Isolapotamidae Bott, 1970 (Decapoda, Brachyura)
FIG. 10. (a–c) Flabellamon turgidula: habitus and gonopod 1 (MLS 1343). (a) Habitus, dorsal; (b) left gonopod 1, dorsal view; (c) left gonopod 1, ventral view. Scale bars: (a) 1 cm; (b, c) 1 mm.
FIG. 7 in On the taxonomic status and biogeography of the Isolapotamidae Bott, 1970 (Decapoda, Brachyura)
FIG. 7. Demanietta manii (MNHN 3602-82). (a) Habitus, dorsal; (b) right gonopod 1, ventral view; (c) right gonopod 1, dorsal view. Scale bars: (a) 1 cm; (b, c) 1 mm.
FIG. 22. A in On the taxonomic status and biogeography of the Isolapotamidae Bott, 1970 (Decapoda, Brachyura)
FIG. 22. A generalized palaeogeographic reconstruction of the Sundaland-Sahul region during one of the Quaternary glacial maxima. The climatic zones are based on pollen analysis. Additional wet refuges also occurred in mountain areas. After Morley and Flenley (1987).
FIG. 20 in On the taxonomic status and biogeography of the Isolapotamidae Bott, 1970 (Decapoda, Brachyura)
FIG. 20. General distribution map of the genera of the family Isolapotamidae as presently deŽned. The genera correspond to the wet refuges and the general distribution to the Sundaland continental margins in the early Miocene.
FIG. 14 in On the taxonomic status and biogeography of the Isolapotamidae Bott, 1970 (Decapoda, Brachyura)
FIG. 14. (a–c) Flabellamon erewanense: habitus and gonopod 1 (RMNH D 41619). (a) Habitus, dorsal; (b) left gonopod 1, ventral view; (c) left gonopod 1, dorsal view. Scale bars: (a) 1 cm; (b, c) 1 mm.
FIGURE 4 in Morphological variation in Acrossocheilus hemispinus (Teleostei: Cyprinidae: Barbinae), with comments on its taxonomic status
FIGURE 4. Ventral views of head showing mouthpart structure in A. h. hemispinus (A–B) and A. h. cinctus (C–D). (A) IHB 20070500083, adult, female, 124.61 mm SL, Huotong, Fujian Province; (B) IHB 20070500093, adult, male, 109.9 mm SL, Shaowu, Fujian Province; (C) IHB 20080500001, adult, female, 124.1 mm SL, Rongshui, Guangxi Province; (D) IHB 90V1940, adult, male, 104.3 mm SL, Wuyuan, Jiangxi Province.
FIGURE 2 in Morphological variation in Acrossocheilus hemispinus (Teleostei: Cyprinidae: Barbinae), with comments on its taxonomic status
FIGURE 2. Lateral views of body in A. h. hemispinus (A–E) and A. h. cinctus (F–J). (A) IHB 20070500086, juvenile, unsexed, 56.12 mm SL, Huotong, Fujian Province; (B) IHB 20070600187, subadult, female, 70.36 mm SL, Jian'ou, Fujian Province; (C) IHB 20070600188, subadult, male, 76.83 mm SL, Jian'ou, Fujian Province; (D) IHB 20070500083, adult, female, 124.61 mm SL, Huotong, Fujian Province; (E) IHB 20070500168, adult, male, 107.96 mm SL, Yongtai, Fujian Province; (F) IHB 75V2912, juvenile, unsexed, 40.56 mm SL, Jinxiu, Guangxi Province; (G) IHB 0605415, subadult, female, 81.36 mm SL, Yiyang, Jiangxi Province; (H) IHB 0605427, subadult, male, 99.23 mm SL, Yiyang, Jiangxi Province; (I) IHB 20080500002, adult, female, 128.3 mm SL, Rongshui, Guangxi Province; (J) IHB 20080500001, adult, male, 124.1 mm SL, Rongshui, Guangxi Province. Scale bar =10 mm.
FIGURE 1 in Morphological variation in Acrossocheilus hemispinus (Teleostei: Cyprinidae: Barbinae), with comments on its taxonomic status
FIGURE 1. Map showing the distribution of A. h. hemispinus (̝) and A. h. cinctus (․). 1. Xi Jiang (river); 2. Chang Jiang; 3. Le'an Jiang; 4. Xin Jiang; 5. Qiupu He; 6. Ling Jiang; 7. Min Jiang; 8. Muyang Xi.
FIGURE 3 in Morphological variation in Acrossocheilus hemispinus (Teleostei: Cyprinidae: Barbinae), with comments on its taxonomic status
FIGURE 3. Scatter plots representing variation in shape between groups using Burnaby size-adjusted multivariate shape information, bounded by minimum convex polygons. (A) males of A. h. hemispinus (n=26, cross) and A. h. cinctus (n=37, open square); (B) females of A. h. hemispinus (n=32, cross) and A. h. cinctus (n=25, open square).
FIGURE 2 in On the taxonomic status of the harvest mouse Micromys minutus (Rodentia: Muridae) from Vietnam
FIGURE 2. Plot of scores for canonical axes from discriminant analysis of all specimens of the harvest mice: i—India, k—South China, v—Vietnam, e—central Europe, f—Russian Far East, s—central Siberia, c—northern Caucasus.
FIGURE 1 in On the taxonomic status of the harvest mouse Micromys minutus (Rodentia: Muridae) from Vietnam
FIGURE 1. Pruned NJ-trees for cytochrome b (A) and combined cytochrome b + control region (B) known unique sequences (haplotypes), based on K2P model. The number of different haplotypes included in each geographic cluster is given in parentheses. Bootstrap values for 10000 pseudoreplicates are given at nodes.
FIGURE 3 in On the taxonomic status of the harvest mouse Micromys minutus (Rodentia: Muridae) from Vietnam
FIGURE 3. Dorsal, ventral and lateral views of the cranium of harvest mouse from Vietnam, ZIN 96526 (A) and central Russia, ZIN 89250 (B). Scale bar 1 mm.
FIGURE 6 in Taxonomic status of Velinoides Matsumura (Hemiptera: Reduviidae: Harpactorinae) inferred from mitochondrial and nuclear genes
FIGURE 6. Maximum parsimony phylogenies from the analysis based on cyt b sequences. Above the nodes are MP bootstrap values (>50%), ML bootstrap values (>50%), and ME bootstrap values (>50%), from left to right, respectively. Below the nodes are decay indices. The asterisks indicate bootstrap values smaller than 50%.
FIGURE 9 in Taxonomic status of Velinoides Matsumura (Hemiptera: Reduviidae: Harpactorinae) inferred from mitochondrial and nuclear genes
FIGURE 9. Maximum parsimony phylogenies from the analysis based on the combined data (COI, 16S rRNA and 28S rRNA gene sequences). Above the nodes are MP bootstrap values (>50%), ML bootstrap values (>50%), and ME bootstrap values (>50%), from left to right, respectively. Below the nodes are decay indices. The asterisks indicate bootstrap values smaller than 50%.
FIGURES 1–5. Relationship between K2P in Taxonomic status of Velinoides Matsumura (Hemiptera: Reduviidae: Harpactorinae) inferred from mitochondrial and nuclear genes
FIGURES 1–5. Relationship between K2P+Γ distances and uncorrected pairwise sequence distances for each gene partition. 1. Scatter plot graphic for third positions of COI; 2. COI; 3. cyt b; 4. 16S rRNA; 5. 28S rRNA.
FIGURE 8 in Taxonomic status of Velinoides Matsumura (Hemiptera: Reduviidae: Harpactorinae) inferred from mitochondrial and nuclear genes
FIGURE 8. Maximum likelihood phylogram based on combined data (16S rRNA and 28S rRNA gene sequences). The topology was reconstructed under the TVM + I + G model of nucleotide substitution, -log likelihood = 2660.77. Above the nodes are bootstrap support values derived from MP, ML and ME analysis, from left to right, respectively. Below the nodes are decay indices. The asterisks indicate bootstrap values smaller than 50%. All unambiguous morphological characters used in this study are mapped on this topology and are indicated on the right.
FIGURE 10 in Taxonomic status of Velinoides Matsumura (Hemiptera: Reduviidae: Harpactorinae) inferred from mitochondrial and nuclear genes
FIGURE 10. Maximum parsimony phylogram based on combined cyt b, COI, 16S rRNA and 28S rRNA gene sequences (length = 1398, CI = 0.631, and RI = 0.443). Above the nodes are bootstrap support values derived from MP, ML and ME analysis, from left to right, respectively. Below the nodes are decay indices. The asterisks indicate bootstrap values smaller than 50%. All unambiguous morphological characters used in this study are mapped on this topology and are indicated on the right.
FIGURE 7 in Taxonomic status of Velinoides Matsumura (Hemiptera: Reduviidae: Harpactorinae) inferred from mitochondrial and nuclear genes
FIGURE 7. Phylogenetic tree of Coranus Curtis based on COI gene (K2P model) using distance method (minimum evolution). Bootstrap values (1000 replications) are shown above nodes.
FIGURE 2. Bulbophyllum tseanum. A. Habitat. B. Inflorescence. C in Reconsideration of the taxonomic status of Bulbophyllum obtusangulum (Orchidaceae) from southern China
FIGURE 2. Bulbophyllum tseanum. A. Habitat. B. Inflorescence. C. Close-up of flowers. D. Dorsal sepal, petal and lateral sepal, adaxial view. E. Column, ventral view, showing the anther, the wings and the glands. F. Column, lateral view, showing the wings, the stelidia and the elongated and curved column-foot. G Lip, lateral view. H. Pollinia. Scale bars, 10 mm (D), 2 mm (E, F, G), 0.5 mm (H).
FIGURE 1 in Reconsideration of the taxonomic status of Bulbophyllum obtusangulum (Orchidaceae) from southern China
FIGURE 1. The type specimens of Bulbophyllum tseanum (A), B. obtusangulum (B–C) and B. lepidum (D–F). A. Holotype of B. tseanum, S.Y. Hu 13586 (K). B. Holotype of B. obtusangulum, F.C. How 72637B (PE). C. isotype of B. obtusangulum, F.C. How 72637B (IBSC). D–F. Types of B. lepidum, Blume 1934 (L).
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)
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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.