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1,473 results for “Geographic distribution”
FIGURE 19 in Systematic list, geographic distribution and ecological significance of lady beetles (Coleoptera: Coccinellidae) from the West Bank (Central Palestine)
FIGURE 19. Localities where Pharoscymnus fleischeri was collected during the course of this study.
FIGURE 7 in The soft ticks (Parasitiformes: Ixodida: Argasidae) of Mexico: species, hosts, and geographical distribution
FIGURE 7. Distribution of Argas species in Mexico.
FIGURE 6 in The soft ticks (Parasitiformes: Ixodida: Argasidae) of Mexico: species, hosts, and geographical distribution
FIGURE 6. Distribution of Antricola species in Mexico.
Figure 5 from: Li Y, Li H, Motokawa M, Wu Y, Harada M, Sun H, Mo X, Wang J, Li Y (2019) A revision of the geographical distributions of the shrews Crocidura tanakae and C. attenuata based on genetic species identification in the mainland of China. ZooKeys 869: 147-160. https://doi.org/10.3897/zookeys.869.33858
Figure 5 Comparison of teeth of Crocidura attenuata (left: S2576) and Crocidura tanakae (right: S2566) from Baoxing, Sichuan.
Figure 2 from: Li Y, Li H, Motokawa M, Wu Y, Harada M, Sun H, Mo X, Wang J, Li Y (2019) A revision of the geographical distributions of the shrews Crocidura tanakae and C. attenuata based on genetic species identification in the mainland of China. ZooKeys 869: 147-160. https://doi.org/10.3897/zookeys.869.33858
Figure 2 ML tree based on Cytb of Crocidura genus. Numbers above the branches represent bootstrap support (BS). The blue clade represents C. tanakae and orange clade represents C. attenuata.
Figure 4 from: Li Y, Li H, Motokawa M, Wu Y, Harada M, Sun H, Mo X, Wang J, Li Y (2019) A revision of the geographical distributions of the shrews Crocidura tanakae and C. attenuata based on genetic species identification in the mainland of China. ZooKeys 869: 147-160. https://doi.org/10.3897/zookeys.869.33858
Figure 4 Comparison of crania of Crocidura attenuata (S2576) and Crocidura tanakae (S2566) from Baoxing, Sichuan. Top row from left to right: dorsal views of the skulls of C. attenuata and C. tanakae (S2576 andS2566), ventral views of the skulls in the same order. Lower row: lateral view of skulls and mandibles from top to bottom of C. attenuata and C. tanakae (S2576 and S2566).
Figure 6 from: Li Y, Li H, Motokawa M, Wu Y, Harada M, Sun H, Mo X, Wang J, Li Y (2019) A revision of the geographical distributions of the shrews Crocidura tanakae and C. attenuata based on genetic species identification in the mainland of China. ZooKeys 869: 147-160. https://doi.org/10.3897/zookeys.869.33858
Figure 6 Scatter plot of C. attenuata (red) and C. tanakae (blue) sample distribution over PC1 and PC2 axes constructed based on external and skull morphological variables. Different symbols represent different populations. GD: Guangdong, FJ: Fujian, ZJ: Zhejiang, SCBX: Baoxing, Sichuan, HB: Hubei, SC: Sichuan, GX: Guangxi, AH: Anhui, HuN: Hunan, HN: Hainan, CQ: Chongqing, YN: Yunnan, JX: Jiangxi
Figure 3 from: Li Y, Li H, Motokawa M, Wu Y, Harada M, Sun H, Mo X, Wang J, Li Y (2019) A revision of the geographical distributions of the shrews Crocidura tanakae and C. attenuata based on genetic species identification in the mainland of China. ZooKeys 869: 147-160. https://doi.org/10.3897/zookeys.869.33858
Figure 3 Distributions of Crocidura attenuata and C. tanakae in the mainland of China,Laos and Vietnam. Black and white triangles represent the sampled sites of C. tanakae first presented in this study and in previous studies, respectively. White circles and squares represent the sampled sites of C. attenuata first presented in this study and in previous studies. Black triangles and white circles overlapped indicate sympatry sites.
Figure 7 from: Yodthong S, Stuart BL, Aowphol A (2019) Species delimitation of crab-eating frogs (Fejervarya cancrivora complex) clarifies taxonomy and geographic distributions in mainland Southeast Asia. ZooKeys 883: 119-153. https://doi.org/10.3897/zookeys.883.37544
Figure 7 Exemplar habitats in Thailand of AFejervarya cancrivora at a wetland in Khuan Khanun District, Patthalung Province BF. cancrivora at a brackish shrimp pond near Pak Phanang river, Pak Phanang District, Nakhon Si Thammarat Province CF. moodiei at mangrove forest in Thai Mueang Distrinct, Phang-nga Province, and DF. moodiei at brackish fish ponds near mangroves at the mouth of the Prasae River, Kleang District, Rayong Province. Photograph A by Attapol Rujirawan.
Figure 4 from: Yodthong S, Stuart BL, Aowphol A (2019) Species delimitation of crab-eating frogs (Fejervarya cancrivora complex) clarifies taxonomy and geographic distributions in mainland Southeast Asia. ZooKeys 883: 119-153. https://doi.org/10.3897/zookeys.883.37544
Figure 4 Adult male neotype of Fejervarya cancrivora (FMNH 256688) in preservative in A dorsal and B ventral views.
Figure 1 from: Yodthong S, Stuart BL, Aowphol A (2019) Species delimitation of crab-eating frogs (Fejervarya cancrivora complex) clarifies taxonomy and geographic distributions in mainland Southeast Asia. ZooKeys 883: 119-153. https://doi.org/10.3897/zookeys.883.37544
Figure 1 Map of sampling localities of the Fejervarya cancrivora complex, including F. cancrivora neotype (yellow pentagon), F. cancrivora sensu stricto (yellow circles), F. moodiei holotype (blue diamond), F. moodiei (blue triangles), and F. cancrivora samples that were referred to F. raja (red circles) prior to this study. Open symbols indicate molecular data only, shaded symbols indicate morphological data only, and shaded symbols with center dots indicate both molecular and morphological data were studied.
Figure 9 from: Yodthong S, Stuart BL, Aowphol A (2019) Species delimitation of crab-eating frogs (Fejervarya cancrivora complex) clarifies taxonomy and geographic distributions in mainland Southeast Asia. ZooKeys 883: 119-153. https://doi.org/10.3897/zookeys.883.37544
Figure 9 Adult male Fejervarya moodiei (ZMKU AM 01390) from Mueang Phang-nga District, Phang-nga Province, Thailand (SVL = 60.6 mm) immediately prior to preservation in A right lateral B dorsal C ventral D right palmar, and E right plantar views. Photographs by Attapol Rujirawan.
Figure 8 from: Yodthong S, Stuart BL, Aowphol A (2019) Species delimitation of crab-eating frogs (Fejervarya cancrivora complex) clarifies taxonomy and geographic distributions in mainland Southeast Asia. ZooKeys 883: 119-153. https://doi.org/10.3897/zookeys.883.37544
Figure 8 Adult female holotype of Fejervarya moodiei (CM 3724) in preservative in A dorsal and B ventral views. Photograph B by Carnegie Museum of Natural History.
Figure 3 from: Yodthong S, Stuart BL, Aowphol A (2019) Species delimitation of crab-eating frogs (Fejervarya cancrivora complex) clarifies taxonomy and geographic distributions in mainland Southeast Asia. ZooKeys 883: 119-153. https://doi.org/10.3897/zookeys.883.37544
Figure 3 Principal component analysis of morphological measurements from males (A) and females (B) of Fejervarya cancrivora, F. moodiei, and F. raja.
Figure 2 from: Yodthong S, Stuart BL, Aowphol A (2019) Species delimitation of crab-eating frogs (Fejervarya cancrivora complex) clarifies taxonomy and geographic distributions in mainland Southeast Asia. ZooKeys 883: 119-153. https://doi.org/10.3897/zookeys.883.37544
Figure 2 Bayesian consensus phylogram of the mitochondrial16S rRNA gene of Fejervarya cancrivora and the closely related species, F. moodiei and F. raja. Numbers at nodes represent Bayesian posterior probability support values. Clade and subclade names are presented next to branches and group names are presented to the right of terminal taxa.
Figure 5 from: Yodthong S, Stuart BL, Aowphol A (2019) Species delimitation of crab-eating frogs (Fejervarya cancrivora complex) clarifies taxonomy and geographic distributions in mainland Southeast Asia. ZooKeys 883: 119-153. https://doi.org/10.3897/zookeys.883.37544
Figure 5 Plantar and metatarsal views of A adult male neotype of Fejervarya cancrivora (FMNH 256688) B adult male F. cancrivora (ZMKU AM 01426) from Khuan Khanun District, Phatthalung Province, Thailand C adult female holotype of F. moodiei holotype (CM 3724), and D adult male F. moodiei (ZMKU AM 10390) from Mueang Phang-nga District, Phang-nga Province, Thailand. The inner metatarsal ridge on the tarsus of F. cancrivora is indicated with an arrow.
Figure 6 from: Yodthong S, Stuart BL, Aowphol A (2019) Species delimitation of crab-eating frogs (Fejervarya cancrivora complex) clarifies taxonomy and geographic distributions in mainland Southeast Asia. ZooKeys 883: 119-153. https://doi.org/10.3897/zookeys.883.37544
Figure 6 Adult male Fejervarya cancrivora (ZMKU AM 01426) from Khuan Khanun District, Phatthalung Province, Thailand (SVL = 66. 9 mm) immediately prior to preservation in A right lateral B dorsal C ventral D right palmar, and E right plantar views. Photographs by Attapol Rujirawan.
Figure 6 in The taxonomic status and geographic distribution of the European hare (Lepus europaeus Pallas, 1778) in Turkey (Mammalia: Lagomorpha)
Figure 6. The dendrogram obtained by results of cluster analysis. Figures indicate the groups: 1 = Thracian specimen 2 = Southwest Anatolian population, 3 = Central and East-Central Anatolian population, 4 = Northeast Anatolian population, 5 = Southeast Anatolian population.
Figure 3 in The taxonomic status and geographic distribution of the European hare (Lepus europaeus Pallas, 1778) in Turkey (Mammalia: Lagomorpha)
Figure 3. The phallus morphology of Lepus europaeus in Turkey: A) dorsal, B) ventral, C) lateral view.
Figure 2 in The taxonomic status and geographic distribution of the European hare (Lepus europaeus Pallas, 1778) in Turkey (Mammalia: Lagomorpha)
Figure 2. Characters measured on the skull and the mandible of Turkish hares (L. europaeus). A) dorsal view of skull, B) ventral view of skull, C) lateral view of skull, D) lateral view of the mandible. (A-A'): ONL, (B-B'): PFL, (C-C'): CBL, (D-D'): BL, (E-E'): NL, (F-F'): DL, (G-G'): UML, (H-H'): ZL, (I-I'): PL, (J-J'): FIL, (K-K'): LML, (L-L'): MAL, (M-M'): RB, (N-N'): NB, (O-O'): ZB, (P-P'): MAB, (R-R'): BTB, (S-S'): BBC, (T-T'): HBC (U-U'): MAH.
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.