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2,120 results for “fly species”
Figs 5–9 in New records of scuttle flies (Diptera: Phoridae) from South Africa, with description of a new species and hitherto unknown males
Figs 5–9. Poorly known and new species of South African scuttle flies. 5. Borophaga rufibasis Beyer, left side of epandrium. 6–8. Phlebothrix judithmastersae sp. n. 6, 7. Left and right sides of epandrium. 8. Female palpus. 9. Phlebothrix cochlearipalpis, female palpus. Scale bar 0.1 mm.
Figs 1–4 in New records of scuttle flies (Diptera: Phoridae) from South Africa, with description of a new species and hitherto unknown males
Figs 1–4. Morphological details of Aenigmatopoeus males. 1, 2. Ae. kohli Schmitz. 1. Left palpus, dorsal view. 2. Epandrium, left side. 3, 4. Ae. orbicularis Schmitz. 3. Left palpus, dorsal view. 4. Epandrium, left side. Scale bar 0.1 mm.
Figs 4–6 in In honor of Brian Stuckenberg: Two new Spheginobaccha species of flower flies (Diptera: Syrphidae) from the Afrotropics
Figs 4–6. Spheginobaccha pamela sp. n. Paratype ♂ (Madagascar): (4) habitus, dorsal view; (5) habitus, lateral view; (6) genitalia, lateral view.
Figs 1–3 in In honor of Brian Stuckenberg: Two new Spheginobaccha species of flower flies (Diptera: Syrphidae) from the Afrotropics
Figs 1–3. Spheginobaccha stuckenbergi sp. n. Holotype ♂ (Madagascar): (1) habitus, dorsal; (2) head, lateral view; (3) male genitalia, lateral view.
Figs 1–5 in A new species of Laboulbenia (Ascomycota) parasitic on an African fly (Diptera: Curtonotidae), with a brief review of Diptera-associated species of the genus
Figs 1–5. (1, 2) Curtonotum balachowskyi Tsacas (Madagascar) bearing Laboulbenia curtonoti sp. n.: (1) habitus lateral (arrow indicates cluster of parasitic fungi on abdominal sternites); (2) same, detail (bulges of the insect's integument are clearly visible at the base of the thalli, caused by the spherical basal cells). (3–5) Laboulbenia curtonoti sp. n.: (3) cluster of thalli; (4) appendage; (5) single thallus (a portion of the large haustorium penetrating the host's abdomen is visible). Scale bar: Figs 1, 2 not to scale; Fig. 3, 650 µm; Fig. 4, 120 µm; Fig. 5, 500 µm.
Figs 4–7 in Five new species of scuttle fly (Diptera: Phoridae) from southern Africa
Figs 4–7. Diplonevra meridafricana sp. n., ♂: (4) left face of hypopygium; (5) inner face of left palp; (6) left antenna; (7) posterior face of tip of hind trochanter and base of femur. Scale bars = 0.1 mm.
Figs 13, 14 in Five new species of scuttle fly (Diptera: Phoridae) from southern Africa
Figs 13, 14. Phalacrotophora species: (13) P. petersoni sp. n., ♂, left face of hypopygium; (14) P. stuckenbergi sp. n., ♀, abdominal tergites 4–6. Scale bars = 0.1 mm.
Figs 8–14. Isalomyia irwini Stuckenberg. 8. Tergites 7 and 8 in A redescription of Isalomyia irwini Stuckenberg, the wormlion fly of Madagascar, related to an Arabian species for which the new genus Alhajarmyia is erected (Diptera: Vermileonidae)
Figs 8–14. Isalomyia irwini Stuckenberg. 8. Tergites 7 and 8, dorsal, setae on T8 shown. 9–12. Male genitalia. 9. Epandrium, ventral. 10. Synsternite with aedeagus, dorsal. 11. Aedeagus, lateral. 12. Aedeagus, posterior. 13. Spermatheca, lateral, membranous sac retracted. 14. Spermatheca, membranous sac everted.
Figs 4–7 in A redescription of Isalomyia irwini Stuckenberg, the wormlion fly of Madagascar, related to an Arabian species for which the new genus Alhajarmyia is erected (Diptera: Vermileonidae)
Figs 4–7. Antennae in lateral view; the shaded area on each one represents the distribution of a dense covering of proclinate setiform sensilla. 4 Male, 5 female, of Isalomyia irwini Stuckenberg; 6 male, 7 female, of Alhajarmyia umbraticola Stuckenberg & Fisher.
Figs 1–3. Isalomyia irwini Stuckenberg. 1 in A redescription of Isalomyia irwini Stuckenberg, the wormlion fly of Madagascar, related to an Arabian species for which the new genus Alhajarmyia is erected (Diptera: Vermileonidae)
Figs 1–3. Isalomyia irwini Stuckenberg. 1. Female head, lateral, the projecting paragular sclerite arrowed; internal recurved basal part of labium shown by dark line. 2. Complete male labium, anterior surface on right, recurved basal section at upper end; the arched form of exposed part is an artefact caused by detachment from the syntrophium which normally lies in the labial gutter and keeps the labium straight as in Fig. 1; dark line running internally over length of labium is produced by two narrow, parallel, sclerotised strips embedded in membrane of labial gutter; inset are two enlarged portions showing internal location of the strips which are closer to anterior surface basally where gutter is absent; corrugated posterior integument also shown. 3. Diagrammatic representation of form of stipital sclerites embedded in membrane under the head; they converge posteriorly and fuse.
Figs 10–12 in Five new species of scuttle fly (Diptera: Phoridae) from southern Africa
Figs 10–12. Diplonevra spp., ♂: (10) D. armipes (Brues), anterior face of hind tibia; (11) D. armipes (Brues), posterior face of base of hind femur and trochanter; (12) D. brincki Beyer, posterior face of base of hind femur and trochanter. Scale bars = 0.1 mm.
Fig. 15 in Five new species of scuttle fly (Diptera: Phoridae) from southern Africa
Fig. 15. Phalacrotophora stuckenbergi sp. n., ♀, patch of enlarged microtrichia between bases of wing veins 4 and 5.
Figs 8, 9 in Five new species of scuttle fly (Diptera: Phoridae) from southern Africa
Figs 8, 9. Diplonevra stuckenbergi sp. n., ♂: (8) right pedicel and postpedicel of antenna (with ventral side uppermost); (9) left face of hypopygium. Scale bar = 0.1 mm.
Figs 1–3 in Five new species of scuttle fly (Diptera: Phoridae) from southern Africa
Figs 1–3. Diplonevra longifistula sp. n., ♂: (1) left face of hypopygium; (2) posterior face of base of hind femur and tip of trochanter; (3) pedicel and postpedicel of antenna. Scale bars = 0.1 mm.
Figure 6 in A Remarkable New Species of Scuttle Fly and First Record of Microselia Schmitz (Diptera: Phoridae) from Australia
Figure 6. Microselia lorien sp. nov., line drawing of anterior view of head showing bristles and antennae.
Figures 7–13 in A Remarkable New Species of Scuttle Fly and First Record of Microselia Schmitz (Diptera: Phoridae) from Australia
Figures 7–13. Microselia lorien sp. nov. (7) caudal view of ovipositor, (8) dorsal view of ovipositor, (9) base of wing showing axillary bristles and forked vein, (10, 11) hind leg showing hair palisade, (12) mid leg, and (13) foreleg.
Figures 1–5 in A Remarkable New Species of Scuttle Fly and First Record of Microselia Schmitz (Diptera: Phoridae) from Australia
Figures 1–5. Microselia lorien sp. nov. (1) dorsal habitus, (2) lateral habitus flipped horizontally, (3) anterior view of frons and antennae, (4) ventral view of abdomen, and (5) lateral view of head and thorax. Scale bars: 500 μm for Figs 1–2, 200 μm scale for Figs 3–5.
Machine learning analysis of wing venation patterns accurately identifies Sarcophagidae, Calliphoridae and Muscidae fly species
<p>In medical, veterinary, and forensic entomology, the ease and affordability of image data acquisition have resulted in whole-image analysis becoming an invaluable approach for species identification. Krawtchouk moment invariants are a classical mathematical transformation that can extract local features from an image, thus allowing subtle species-specific biological variations to be accentuated for subsequent analyses. We extracted Krawtchouk moment invariant features from binarised wing images of 759 male fly specimens from the Calliphoridae, Sarcophagidae, and Muscidae families (13 species and a species variant). Subsequently, we trained the Generalized, Unbiased, Interaction Detection and Estimation (GUIDE) random forests classifier using linear discriminants derived from these features and inferred the species identity of specimens from the test samples. Five-fold cross validation results show a 98.56 ± 0.38% (standard error) mean identification accuracy at the family level, and a 91.04 ± 1.33% mean identification accuracy at the species level. The mean F1-score of 0.89 ± 0.02 reflects good balance of precision and recall properties of the model. The present study consolidates findings from previous small pilot studies of the usefulness of wing venation patterns for inferring species identities. Thus, the stage is set for the development of a mature data analytic ecosystem for routine computer image-based identification of fly species that are of medical, veterinary, and forensic importance.</p>
Figs 102–104 in A revision of Afrotropical Quasimodo flies (Diptera: Schizophora; Curtonotidae). Part III - the Malagasy species of Curtonotum Macquart, with descriptions of six new species
Figs 102–104. Distribution of Malagasy Curtonotom spp.: (102) C. griveaudi sp. n.; (103) C. pauliani; (104) C. sakalava. See Figs 92–101 for vegetation key.
Figs 97–101 in A revision of Afrotropical Quasimodo flies (Diptera: Schizophora; Curtonotidae). Part III - the Malagasy species of Curtonotum Macquart, with descriptions of six new species
Figs 97–101. Distribution of Malagasy Curtonotom spp.: (97) C. coronaeformis sp. n.; (98) C. balachowskyi; (99) C. gladiiformis sp. n.; (100) C. rinhatinana sp. n.; (101) C. boeny.
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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.