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Figure 8. from: Studies in Hawaiian Diptera III: New Distributional Records for Canacidae and a New Endemic Species of Procanace - Biodiversity Data Journal 4: e5611 (08 April 2016) https://doi.org/10.3897/BDJ.4.e5611
Figure 8. - Distribution of C. angulatus in the main Hawaiian Islands. This species is also found in the Northwest Hawaiian Islands (Laysan, Lisianski, Midway, Nihoa).
Figure 5. from: Studies in Hawaiian Diptera III: New Distributional Records for Canacidae and a New Endemic Species of Procanace - Biodiversity Data Journal 4: e5611 (08 April 2016) https://doi.org/10.3897/BDJ.4.e5611
Figure 5. - Abdomen of P. hardyi female, showing constriction between tergites 4 and 5, the telescoping form of tergite 8 and the ovipositor and associated structures.
Figure 19. from: Studies in Hawaiian Diptera III: New Distributional Records for Canacidae and a New Endemic Species of Procanace - Biodiversity Data Journal 4: e5611 (08 April 2016) https://doi.org/10.3897/BDJ.4.e5611
Figure 19. - Leg of Canaceoides hawaiiensis, showing two regular rows of setae on posterior surface of femur. The specimen imaged was from collection 205542.
Figure 22. from: Studies in Hawaiian Diptera III: New Distributional Records for Canacidae and a New Endemic Species of Procanace - Biodiversity Data Journal 4: e5611 (08 April 2016) https://doi.org/10.3897/BDJ.4.e5611
Figure 22. - Wing of Scatella kauaiensis, showing breaks in the costal vein at the insertion points of the humeral crossvein and the subcostal vein. The specimen imaged was from collection 205192.
Figure 4. from: Studies in Hawaiian Diptera III: New Distributional Records for Canacidae and a New Endemic Species of Procanace - Biodiversity Data Journal 4: e5611 (08 April 2016) https://doi.org/10.3897/BDJ.4.e5611
Figure 4. - External male genitalia of P. hardyi. The narrowed, lightened tips of the surstyli suggest that this species is most closely related to P. constricta. Refer to figure 162e from Hardy and Delfinado (1980).
Figure 6. from: Studies in Hawaiian Diptera III: New Distributional Records for Canacidae and a New Endemic Species of Procanace - Biodiversity Data Journal 4: e5611 (08 April 2016) https://doi.org/10.3897/BDJ.4.e5611
Figure 6. - Abdomen of P. constricta female, showing constriction between tergites 4 and 5, the lateral extension of tergite 8 beyond the apex of the ovipositor, and the ovipositor and associated structures. The specimen imaged is from collection 205268.
Figure 10. from: Studies in Hawaiian Diptera III: New Distributional Records for Canacidae and a New Endemic Species of Procanace - Biodiversity Data Journal 4: e5611 (08 April 2016) https://doi.org/10.3897/BDJ.4.e5611
Figure 10. - Distribution of P. acuminata on Oahu, Molokai, Maui and Hawaii and P. nigroviridis on Kauai.
Figure 21. from: Studies in Hawaiian Diptera III: New Distributional Records for Canacidae and a New Endemic Species of Procanace - Biodiversity Data Journal 4: e5611 (08 April 2016) https://doi.org/10.3897/BDJ.4.e5611
Figure 21. - Head of Scatella kauaiensis, showing the large face which extends over the oral cavity. The clypeus is normal in size and does not extend over the mouth. The specimen imaged was from collection 205192.
Figure 15. from: Studies in Hawaiian Diptera III: New Distributional Records for Canacidae and a New Endemic Species of Procanace - Biodiversity Data Journal 4: e5611 (08 April 2016) https://doi.org/10.3897/BDJ.4.e5611
Figure 15. - Wing of Canaceoides hawaiiensis, showing a single break at the terminus of the subcostal vein. The specimen imaged was from collection 205542.
Fig. 7 in Species Composition And Distribution Of The Dominant Flyingfishes (Exocoetidae) Associated With The Kuroshio Current, South China Sea
Fig. 7. Monthly median (square dot) with 25 th and 75th quartiles (vertical line) for (a) flyingfishes catch proportion (proportion of catch, adjusted by number of trips in the month, to the overall catches of the sampling year), (b) SST (°C), (c) tide level (cm), and (d) tidal range (cm). Tidal range in the plot is the difference of tide level within one hour. Dashed lines indicate roughly the area with high catch
Fig. 5 in Species Composition And Distribution Of The Dominant Flyingfishes (Exocoetidae) Associated With The Kuroshio Current, South China Sea
Fig. 5. Monthly flyingfish densities by (a) vertical catch layer (upper: Fig. 4. Flyingfish compositions of the six dominant species by 0–1.2 m, middle: 1.2–2.4 m, and bottom: 2.4–3.6 m), and (b) mesh sampling area, collected by in-port sampling and at-sea survey size of net (5.6 cm, 4 cm, and 2.8 cm for large, medium, and small
Figure 6 in Integrated morphological, CO1 and distributional analysis confirms many species in the Iridomyrmex anceps (Roger) complex of ants
Figure 6. Variation in gastric pubescence among selected species of the Iridomyrmex anceps complex. A. Sp. B (specimen RHYIR 070), dorsal view. B. Sp. K (specimen RHYIR 076), dorsal view. C. Sp. M (specimen IRIDO 249), lateral view. D. Sp. N (specimen RHYIR 095), lateral view. E. Sp. O (specimen IRIDO 251-16), dorsal view. F. Sp. P (specimen IRIDO 250-16), dorsal view. Scale bars = 0.1 mm.
Figure 5 in Integrated morphological, CO1 and distributional analysis confirms many species in the Iridomyrmex anceps (Roger) complex of ants
Figure 5. Distribution records of sequenced specimens from the Iridomyrmex anceps complex in Australia. Monsoonal tropics region shaded in grey. A. Species A, G, H and I. B. Species B, J, K, L, M, N, O and R. Abbreviations: WA—Western Australia, NT— Northern Territory, Qld—Queensland.
Figure 3 in Integrated morphological, CO1 and distributional analysis confirms many species in the Iridomyrmex anceps (Roger) complex of ants
Figure 3. Scape length in relation to head length for selected species. A. Species A, G, H, I and J. B. Species B, K, L, M and N.
Figure 2 in Integrated morphological, CO1 and distributional analysis confirms many species in the Iridomyrmex anceps (Roger) complex of ants
Figure 2. Summary CO1 tree of the 82 sequenced specimens of Iridomyrmex anceps. Maximum-likelihood phylogeny inferred using IQ-TREE. Black and red circles indicate bootstrap support values ≥90 and ≥70, respectively. The full CO1 tree is shown in Supplementary Figure 1. Abbreviations: WA—Western Australia, NT—Northern Territory, Qld—Queensland, PNG—Papua New Guinea.
Figure 1 in Integrated morphological, CO1 and distributional analysis confirms many species in the Iridomyrmex anceps (Roger) complex of ants
Figure 1. Head (A) and lateral (B) views of a typical member of the Iridomyrmex anceps complex (sp. A; specimen IRIDO217-16). Scale bars = 1 mm.
Fig. 14. Distribution map. 1 in New species and new records of terrestrial isopods (Crustacea, Isopoda, Oniscidea) of the families Philosciidae and Scleropactidae from Brazilian caves
Fig. 14. Distribution map. 1. Alboscia jotajota Campos-Filho, Bichuette & Taiti sp. nov. 2. Androdeloscia akuanduba Campos-Filho, Cardoso & Taiti sp nov. 3. Atlantoscia inflata Campos-Filho & Araujo, 2015. 4. Benthana iporangensis Lima & Serejo, 1993. 5. B. longicornis Verhoeff, 1941. 6. B. olfersii (Brandt, 1833). 7. B. picta (Brandt, 1833). 8. B. taeniata Araujo & Buckup, 1994. 9. Metaprosekia igatuensis Campos-Filho, Fernandes & Bichuette sp. nov. 10. Paratlantoscia rubromarginata (Araujo & Leistikow, 1999). 11. Amazoniscus spica Campos-Filho, Aguiar & Taiti sp. nov. 12. Circoniscus bezzii Arcangeli, 1931. Light gray areas denote Brazilian conservation units. AL = Alagoas; BA = Bahia; CE = Ceará; DF = Distrito Federal; ES = Espírito Santo; GO = Goiás; MA = Maranhão; MG = Minas Gerais; MT = Mato Grosso; PA = Pará; PB = Paraíba; PE = Pernambuco; PI = Piauí; PR = Paraná; RJ = Rio de Janeiro; RN = Rio Grande do Norte; SE = Sergipe; SP = São Paulo; TO = Tocantins.
Figure 2 in Forest monkeys and Pleistocene refugia: a phylogeographic window onto the disjunct distribution of the Chlorocebus lhoesti species group
Figure 2. All possible patterns of relationships among the lhoesti group species. A, topology consistent with a vicariant scenario in which the distribution of a widespread common ancestor fragments into three segments – nearly simultaneously – as the result of habitat deterioration associated with a Pleistocene glacial cycle. B, topology consistent with an alternative vicariant scenario, in which ancestral populations of Chlorocebus preussi and Chlorocebus solatus remain in contact for a short time after the divergence of Chlorocebus lhoesti, because the former two stocks range within the same Pleistocene refuge. C, tree consistent with a dispersal hypothesis in which early C. preussi populations (following divergence from C. solatus) migrate along the northern rim of the Congo Basin, and found a new lineage (C. lhoesti) in the Albertine region (see Fig. 1). D, tree consistent with a dispersal hypothesis in which early C. solatus populations (following divergence from C. preussi) conduct a similar transcontinental migration, but along the southern rim of the Congo Basin (see Fig. 1).
Fig. 2 in Species Diversity And Distribution Of Synanthropic Acarid Mites (Acariformes, Acaridia) In Transcarpathia
Fig. 2. Species diversity and the number of acarid mites in farm buildings in different zones of Transcarpathia.
Fig. 1 in Species Diversity And Distribution Of Synanthropic Acarid Mites (Acariformes, Acaridia) In Transcarpathia
Fig. 1. Map of acarid mites collection sites in Transcarpathian Region: a — map of Transcarpathian Region by altitudinal zonation; b — air temperature map of Transcarpathian Region; c — precipitation map of Transcarpathian Region.
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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.