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36,014 results for “Diptera”
Fig. 1 in The identification of the species of the 'Spilogona contractifrons species-group' and the 'Spilogona nitidicauda species-group' (Diptera, Muscidae) based on morphological and molecular analysis
Fig. 1. Males of Spilogona Schnabl, 1911. A–C. Male head and scutum, anterior view. A. S. contractifrons (Zetterstedt, 1838). B. S. arctica (Zetterstedt, 1838). C. S. alticola (Malloch, 1920). D–F. Sternite 5. D. S. contractifrons. E. S. arctica. F. S. alticola. G–I. Abdomen, dorsal view. G. S. contractifrons. H. S. arctica. I. S. alticola. J–L. Terminalia, lateral view. J. S. contractifrons. K. S. arctica. L. S. alticola. Scale bars: 1 mm.
Fig. 5 in The identification of the species of the 'Spilogona contractifrons species-group' and the 'Spilogona nitidicauda species-group' (Diptera, Muscidae) based on morphological and molecular analysis
Fig. 5. Males of Spilogona Schnabl, 1911. A–C. Terminalia, lateral view. A. S. imitatrix (Malloch, 1921). B. S. nitidicauda (Schnabl, 1911). C. S. platyfrons Sorokina, 2018. D–F. Cercal plate, posterior view. D. S. imitatrix. E. S. nitidicauda. F. S. platyfrons. G–I. Sternite 5. G. S. imitatrix. H. S. nitidicauda. I. S. platyfrons. Scale bars: 0.25 mm.
Fig. 6 in The identification of the species of the 'Spilogona contractifrons species-group' and the 'Spilogona nitidicauda species-group' (Diptera, Muscidae) based on morphological and molecular analysis
Fig. 6. Localities of the species of Spilogona Schnabl, 1911 used in the DNA analysis. Symbols denote the species, whilst the colour shows the same DNA sequences. A. 'S. contractifrons species-group'. B. 'S. nitidicauda species-group'.
Fig. 4 in The identification of the species of the 'Spilogona contractifrons species-group' and the 'Spilogona nitidicauda species-group' (Diptera, Muscidae) based on morphological and molecular analysis
Fig. 4. Males of Spilogona Schnabl, 1911. A–C. Head, lateral view. A. S. imitatrix (Malloch, 1921). B. S. nitidicauda (Schnabl, 1911). C. S. platyfrons Sorokina, 2018. D–F. Frons, anterior view. D. S. imitatrix. E. S. nitidicauda. F. S. platyfrons. G–I. Abdomen, dorsal view. G. S. imitatrix. H. S. nitidicauda. I. S. platyfrons. Scale bars: 1 mm.
Fig. 1 in New species of Rhizomyces (Ascomycota, Laboulbeniales) parasitic on African stalk-eyed flies (Diptera, Diopsidae)
Fig. 1. Photomicrographs of the new species of Rhizomyces Thaxt.: A. R. forcipatus W.Rossi & Feijen sp. nov. (FI 4100a). B. Thallus of R. forcipatus sp. nov. from the wing of Teloglabrus sp. (FI 4125). C. Immature thallus of R. forcipatus sp. nov. showing the trichogyne and the basal cell holding firmly a piece of the exoskeleton of the host insect (FI 4099). D. R. tschirnhausii W.Rossi & Feijen sp. nov. (FI 4091). E. Upper portion of the perithecium of R. tschirnhausii sp. nov. (FI 4090). F. R. ramosus W.Rossi & Feijen sp. nov. (FI 4201a), amid the four mature perithecia, near the base of the stalk cells, it can be seen a fifth very immature perithecium bearing the trichogyne. G. R. ramosus sp. nov. (FI 4201a), the pyriform haustorium with remains of the host integument and cell I showing two primordia of new branches. Scale bars: 50 µm.
Fig. 3 in West Palaearctic species of the genus Diostracus Loew, 1861 (Diptera: Dolichopodidae)
Fig. 3. Diostracus (Sphyrotarsus) kustovi sp. nov. Male holotype. A. Apex of abdomen and hypopygium. B. Hypopygium. Abbreviations: cer – cercus, ep – epandrium, hyp – hypandrium, ph – phallus, sur – surstylus.
Fig. 1 in West Palaearctic species of the genus Diostracus Loew, 1861 (Diptera: Dolichopodidae)
Fig. 1. Diostracus (Sphyrotarsus) kustovi sp. nov. Male holotype. A. Head in anterior view. B. Head in lateral view. C. Fore tarsus. D. Mid leg. E. Hind tibia in apical view and basitarsus.
Fig. 4 in Connecting systematic and ecological studies using DNA barcoding in a population survey of Drosophilidae (Diptera) from Mt Oku (Cameroon)
Fig. 4. Phylogenetic analysis of the subgenus Sophophora and Lissocephala aff. diola Tsacas & Lachaise, 1979. Conventions as for Fig. 3.
Fig. 2 in Connecting systematic and ecological studies using DNA barcoding in a population survey of Drosophilidae (Diptera) from Mt Oku (Cameroon)
Fig. 2. Percent divergence of the morphospecies DNA barcode from the closest neighbor found in the barcode database.
Fig. 3 in Connecting systematic and ecological studies using DNA barcoding in a population survey of Drosophilidae (Diptera) from Mt Oku (Cameroon)
Fig. 3. Phylogenetic analysis of the genus Zaprionus and Microdrosophila aff. mamaru (Burla, 1954). This tree is the neighbor-joining tree. The maximum likelihood tree gives the same topology. Nodes with a bootstrap value lower than 50% were merged. Bootstrap values were calculated over 1000 repeats. Above nodes: bootstrap values for maximum likelihood using a GTR + G + I model. Below nodes: bootstrap values for neighbor-joining using the Kimura-2p distance.
FIG. 1. — A in The Sepsidae of the Mitaraka expedition, French Guiana (Diptera)
FIG. 1. — A, Archisepsis armata (Schiner, 1868); B, Archisepsis diversiformis (Ozerov, 1993); C, Meropliosepsis sexsetosa Duda, 1926; D, Microsepsis armillata (Melander & Spuler, 1917); E, Microsepsis furcata (Melander & Spuler, 1917); F, Microsepsis mitis (Curran, 1927); G, Palaeosepsioides erythromyrmus (Silva, 1991); H, Palaeosepsis dentata (Becker, 1919). Scale bars: 1 mm. All pictures are retrieved from Sepsidnet 2013.
FIG. 2 in The Sepsidae of the Mitaraka expedition, French Guiana (Diptera)
FIG. 2. — Palaeosepsioides mitarakensis Silva, n. sp., male holotype: A, habitus, lateral view; B, head, lateral view; C, habitus, dorsal view; D, left fore leg, posterior view; E, wing; F, posterior part of abdomen, ventral view. Scale bars: 0,5 mm, except Fig. 2A, 2,5 mm.
Fig. 3 in Predatory midges of the tribes Palpomyiini and Sphaeromiini (Diptera: Ceratopogonidae) from the Middle East, with keys and descriptions of new species
Fig. 3. Bezzia (Sivabezzia) spp. A–D. Bezzia pachypyga, ♂ (from Remm 1974). A. Genitalia, ♂. B. Parameres. C. Aedeagus. D. Seminal capsules, ♀. – E–I. Bezzia melanoflava (from Clastrier 1958). E. Genitalia, ♂. F. Parameres. G. Aedeagus, ventral view. H. Aedeagus, lateral view. I. Seminal capsules, ♀.
Fig. 1 in Predatory midges of the tribes Palpomyiini and Sphaeromiini (Diptera: Ceratopogonidae) from the Middle East, with keys and descriptions of new species
Fig. 1. Bezzia libanensis Alwin & Szadziewski sp. nov., ♂. A. Wing. B. Thorax. C. Antennal scape and flagellum. D. Fore leg. E. Mid leg. F. Hind leg. G. Male genitalia. H. Male genitalia, ventral view. I. Parameres. J. Aedeagus.
Fig. 2 in Predatory midges of the tribes Palpomyiini and Sphaeromiini (Diptera: Ceratopogonidae) from the Middle East, with keys and descriptions of new species
Fig. 2. Bezzia sharjahi Szadziewski & Alwin sp. nov. A. Wing, ♀. B. Antennal flagellum, ♂. C. Antennal flagellum, ♀. D. Genitalia, ♂. E. Parameres. F. Aedeagus. G. Seminal capsules, ♀.
Figs 31–34. Ichneumonopsis burmensis Hardy, 1973, biological traits. 31 in A revision of Ichneumonopsis Hardy, 1973 (Diptera: Tephritidae: Dacinae: Gastrozonini), Oriental bamboo-shoot fruit flies
Figs 31–34. Ichneumonopsis burmensis Hardy, 1973, biological traits. 31. Bamboo shoots of the host plant, Pseudoxytenanthera albociliata, at the edge of an abandoned field in northern Thailand in November. The shoots are 2–5 m tall and up to 2 cm wide at the base. 32. Bamboo internode (ca 7 mm wide) infested by an I. burmensis larva. The internode is located at the tip of the bamboo shoot, because the apical 4–5 internodes have died and fallen to the ground. 33. A fully-grown I. burmensis larva (length ca 14 mm) that has started to bite off strips of vascular bundles from the bamboo shoot wall (on the right) in order to create a cocoon. 34. I. burmensis puparium (length ca 8 mm) located in the internode cavity at the base of the infested internode. The upper part of the internode has broken off. Side branches growing from the basal bud were partly removed.
Figs 22–24. Ichneumonopsis spp., epandrium. 22. I. burmensis Hardy, 1973, anterior view. 23. I. burmensis Hardy, 1973, lateral view. 24 in A revision of Ichneumonopsis Hardy, 1973 (Diptera: Tephritidae: Dacinae: Gastrozonini), Oriental bamboo-shoot fruit flies
Figs 22–24. Ichneumonopsis spp., epandrium. 22. I. burmensis Hardy, 1973, anterior view. 23. I. burmensis Hardy, 1973, lateral view. 24. Ichneumonopsis taiwanensis sp. nov., lateral view.
Figs 10–12 in A revision of Ichneumonopsis Hardy, 1973 (Diptera: Tephritidae: Dacinae: Gastrozonini), Oriental bamboo-shoot fruit flies
Figs 10–12. Ichneumonopsis spp., thorax, lateral view. 10. I. burmensis Hardy, 1973. 11. I. hancocki sp. nov. 12. I. taiwanensis sp. nov.
Figs 7–9 in A revision of Ichneumonopsis Hardy, 1973 (Diptera: Tephritidae: Dacinae: Gastrozonini), Oriental bamboo-shoot fruit flies
Figs 7–9. Ichneumonopsis spp., head and thorax, dorsal view. 7. I. burmensis Hardy, 1973. 8. I. hancocki sp. nov. 9. I. taiwanensis sp. nov.
Figs 2–4. Ichneumonopsis spp., habitus. 2. I. burmensis Hardy, 1973 in A revision of Ichneumonopsis Hardy, 1973 (Diptera: Tephritidae: Dacinae: Gastrozonini), Oriental bamboo-shoot fruit flies
Figs 2–4. Ichneumonopsis spp., habitus. 2. I. burmensis Hardy, 1973, ♀. 3. I. hancocki sp. nov., holotype, ♂. 4. I. taiwanensis sp. nov., holotype, ♀.
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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.