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153 results for “Ecological biogeography”
FIGURE 9d–h in Simuliidae (Diptera) of the Solomon Islands: new records and species, ecology, and biogeography
FIGURE 9d–h. Simulium (M.) nr. pohaense, Malaita. Last instar larva. d, pharate pupal gill. e, hypostomal teeth. f, anal sclerite and circlet of hooks. g, hypostoma and postgenal cleft. h, mandible teeth, sensillum, and serrations
FIGURE 18 in The intertidal Fortuyniidae (Acari: Oribatida): new species, morphological diversity, ecology and biogeography
FIGURE 18. Graphic comparison of all Fortuynia species, subspecies and morphs from different geographic areas. Depictions are taken from literature and were slightly modified except for the new species described in this paper. A) F. arabica (Bayartogtokh et al. 2009). B) sexually dimorphic F. atlantica (Krisper & Schuster 2008). C) F. marina (Hammen 1960). D) F. longiseta sp. nov. E) F. maledivensis sp. nov. F) F. yunkeri (Hammen 1963). G) F. inhambanensis (Marshall & Pugh 2002). H) F. elamellata (Luxton 1967). I) F. elamellata micromorpha (Marshall & Pugh 2002). J) F. elamellata shibai (Aoki 1974). K) F. taiwanica (Bayartogtokh et al. 2009). L) F. sinensis (Luxton 1992). M) F. rotunda from Mozambique (Marshall & Pugh 2002). N) F. rotunda morph from Japan (Karasawa & Aoki 2005). O) F. maculata (Luxton 1986). P) F. smiti from New Caledonia (Ermilov et al. 2013). Q) F. smiti morph from Singapore.
FIGURE 17. F. smiti protonymph left legs, antiaxial view. A in The intertidal Fortuyniidae (Acari: Oribatida): new species, morphological diversity, ecology and biogeography
FIGURE 17. F. smiti protonymph left legs, antiaxial view. A) leg I. B) leg II. C) leg III. D) leg IV.
FIGURE 5. F in The intertidal Fortuyniidae (Acari: Oribatida): new species, morphological diversity, ecology and biogeography
FIGURE 5. F. maledivensis sp. nov. protonymph left legs, antiaxial view. A) leg I. B) leg II. C) leg III. D) leg IV.
FIGURE 12. A in The intertidal Fortuyniidae (Acari: Oribatida): new species, morphological diversity, ecology and biogeography
FIGURE 12. A. pseudoreticulatus sp. nov. adult left legs, antiaxial view. A) leg I. B) leg II. C) leg III. D) leg IV.
FIGURE 9. F in The intertidal Fortuyniidae (Acari: Oribatida): new species, morphological diversity, ecology and biogeography
FIGURE 9. F. longiseta sp. nov. A) larva, dorsal view. B) larva, ventral view. C) protonymph, dorsal view. D) protonymph, ventral view.
FIGURE 3. F in The intertidal Fortuyniidae (Acari: Oribatida): new species, morphological diversity, ecology and biogeography
FIGURE 3. F. maledivensis sp. nov. adult left legs antiaxial view. A) leg I. B) leg II. C) leg III. D) leg IV.
FIGURE 8. F in The intertidal Fortuyniidae (Acari: Oribatida): new species, morphological diversity, ecology and biogeography
FIGURE 8. F. longiseta sp. nov. adult left legs, antiaxial view. Dorsal porose areas on femur III and IV omitted due to slightly ventral perspective. A) leg I. B) leg II. C) leg III. D) leg IV.
FIGURE 11 in The intertidal Fortuyniidae (Acari: Oribatida): new species, morphological diversity, ecology and biogeography
FIGURE 11. Alismobates pseudoreticulatus sp. nov. adult. A) dorsal view. B) ventral view. C) lateral view.
FIGURE 6. F in The intertidal Fortuyniidae (Acari: Oribatida): new species, morphological diversity, ecology and biogeography
FIGURE 6. F. maledivensis sp. nov. A) deutonymph, dorsal view. B) deutonymph, ventral view. C) tritonymph, dorsal view. D) tritonymph, ventral view.
FIGURE 1 in The intertidal Fortuyniidae (Acari: Oribatida): new species, morphological diversity, ecology and biogeography
FIGURE 1. Fortuynia maledivensis sp. nov. adult. A) right pedipalp, paraxial view. B) right rutellum, ventral view.
FIGURE 10. F in The intertidal Fortuyniidae (Acari: Oribatida): new species, morphological diversity, ecology and biogeography
FIGURE 10. F. longiseta sp. nov. A) deutonymph, dorsal view. B) deutonymph, ventral view. C) tritonymph, dorsal view. D) tritonymph, ventral view.
FIGURE 19 in Hungarosoma bokori Verhoeff, 1928 (Diplopoda: Chordeumatida): new insights into its taxonomy, systematics, molecular genetics, biogeography and ecology
FIGURE 19. Distribution of the genus Hungarosoma Verhoeff, 1928. Empty dot: H. inexpectatum, solid dots: H. bokori. Distribution of H. bokori in Slovak-Aggtelek Karst drawn in higher scale.
FIGURE 16. Hungarosoma bokori Verhoeff, 1928 in Hungarosoma bokori Verhoeff, 1928 (Diplopoda: Chordeumatida): new insights into its taxonomy, systematics, molecular genetics, biogeography and ecology
FIGURE 16. Hungarosoma bokori Verhoeff, 1928, male, gonopods (Abaliget Cave). Right lateral view. Letters a–h signal equivalent structures in both views. Abbreviations: Letters a–h signal equivalent structures in both views. Anterior gonopods (legs 8): a = cheirite, b = brush-like arm, c = additive divided arm, d = hyaline process. Posterior gonopods (legs 9): e = gonopod, f = ventral hyaline prominence, g = claw shape process with long seta.
FIGURE 18. A in Hungarosoma bokori Verhoeff, 1928 (Diplopoda: Chordeumatida): new insights into its taxonomy, systematics, molecular genetics, biogeography and ecology
FIGURE 18. A Maximum-Likelihood tree (GTR+G+I model) based on the COI gene and rooted with Polyxenus lagurus. All data—except from H. bokori—were obtained from Genbank. Numbers refer to bootstrap values (1000 replicates). Scale bar = 0.02 substitutions/site. For origin of the H. bokori material, see Table 1.
FIGURE 15. Hungarosoma bokori Verhoeff, 1928 in Hungarosoma bokori Verhoeff, 1928 (Diplopoda: Chordeumatida): new insights into its taxonomy, systematics, molecular genetics, biogeography and ecology
FIGURE 15. Hungarosoma bokori Verhoeff, 1928, male, gonopods (Abaliget Cave). Anterior view (right side of pair structures is slightly turned laterally). Abbreviations: Letters a–h signal equivalent structures in both views. Anterior gonopods (legs 8): a = cheirite, b = brush-like arm, c = additive divided arm, d = hyaline process. Posterior gonopods (legs 9): e = gonopod, f = ventral hyaline prominence, g = claw shape process with long seta.
FIGURES 12–14. Hungarosoma bokori Verhoeff, 1928 in Hungarosoma bokori Verhoeff, 1928 (Diplopoda: Chordeumatida): new insights into its taxonomy, systematics, molecular genetics, biogeography and ecology
FIGURES 12–14. Hungarosoma bokori Verhoeff, 1928, male (Abaliget Cave). 12: Antenna. 13: Gonopod complex, anterior view. The right side of pair structures is slightly turned laterally. 14: Gonopods in right lateral view. Abbreviations: Letters a– h signal equivalent structures in both views. Anterior gonopods (legs 8): a = cheirite, b = brush-like arm, c = additive divided arm, d = hyaline process. Posterior gonopods (legs 9): e = gonopod, f = ventral hyaline prominence, g = claw shape process with long seta. Not scaled. Photos: Andrej Mock.
FIGURES 10–11. Hungarosoma bokori Verhoeff, 1928 in Hungarosoma bokori Verhoeff, 1928 (Diplopoda: Chordeumatida): new insights into its taxonomy, systematics, molecular genetics, biogeography and ecology
FIGURES 10–11. Hungarosoma bokori Verhoeff, 1928, female from the Driny Cave, scanning electronic microscopy of details of the shape and surface of mid-body segments. 10: Dorsolateral view (left side). 11: A pleurotergite, dorsolateral view in detail. Photos: Andrej Mock & Karel Tajovský.
FIGURES 2–5. Hungarosoma bokori Verhoeff, 1928 in Hungarosoma bokori Verhoeff, 1928 (Diplopoda: Chordeumatida): new insights into its taxonomy, systematics, molecular genetics, biogeography and ecology
FIGURES 2–5. Hungarosoma bokori Verhoeff, 1928, female, holotype (Abaliget Cave). 2: Head end of the body, right lateral view. 3: Tergite 15, dorsal view. 4: Antenna, lateral view. 5: Discernable vulvae in situ (v), right lateral view. Photos: Jörg Spelda.
FIGURE 1. Hungarosoma bokori Verhoeff, 1928 in Hungarosoma bokori Verhoeff, 1928 (Diplopoda: Chordeumatida): new insights into its taxonomy, systematics, molecular genetics, biogeography and ecology
FIGURE 1. Hungarosoma bokori Verhoeff, 1928, female, sampled at the entrance of the Baradla Cave, Hungary, 21.iii.2013. Photo: Ľubomír Kováč & Andrej Mock.
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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.