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Fig. 2 in Contribution to the Willowsia species having body scales of the long basal rib type: four new species and a redescription of W. qui (Collembola: Entomobryidae)
Fig. 2. Willowsia fascia Zhang & Pan sp. nov. A. Ant. III organ. B. Labral papillae. C. Clypeal chaetae. D. Dorsal cephalic chaetotaxy. E. Maxillary outer lobe. F. Chaetae on ventral side of head. G. Trochanteral organ. H. Hind claw. I–J. Ventral tube. I. Posterior face. J. Lateral flap. K. Manubrium and base of dens, dorsal view. L. Mucro. Scale bars: A–C, E–J, L = 20 μm; D, K = 100 μm.
Figs 5–12 in Calidolipeurus, new genus for Lipeurus megalops Piaget, 1880 (Phthiraptera: Ischnocera: Oxylipeurus-complex), with a redescription of the type species and a preliminary key to the Oxylipeurus-complex
Figs 5–12. Calidolipeurus megalops (Piaget, 1880) gen. et comb. nov., based on specimens on slide NHMUK010682491 (NHMUK). 5. Male head, dorsal and ventral views. 6. Male antennae, ventral view. 7. Female antenna, ventral view. 8. Male genitalia (mesosome everted), dorsal view. 9. Male mesosome (everted), ventral view. 10. Male mesosome (not everted), dorsal view. 11. Male mesosome (not everted), ventral view. 12. Male paramere, dorsal view. Male and female antenna at same scale as male head; all genitalic elements at same scale.
Figs 19–26. 19 in Calidolipeurus, new genus for Lipeurus megalops Piaget, 1880 (Phthiraptera: Ischnocera: Oxylipeurus-complex), with a redescription of the type species and a preliminary key to the Oxylipeurus-complex
Figs 19–26. 19. Outline of head and temporal macrosetae (cut off distally) of male Chelopistes meleagridis (Linnaeus, 1758), redrawn from Kéler (1939). 20. Outline of head and temporal macrosetae (cut off distally) of female Trichodomedea setosus Carriker, 1946, redrawn from original description. 21. Outline of head and dorsal preantennal suture of male Reticulipeurus mesopelios (Nitzsch, 1866), redrawn from Gustafsson et al. (2020). 22. Outline of head and dorsal preantennal suture of male Cataphractomimus junae Gustafsson et al., 2020, redrawn from original description. 23. Female terminalia of Reticulipeurus mesopelios (Nitzsch, 1866), redrawn from Gustafsson et al. (2020); vulval margin, lateral macrosetae, and subvulval plates not illustrated. 24. Ventral view of preantennal area in Gallancyra dentata (Sugimoto, 1934) (redrawn from Gustafsson & Zou 2020a). 25. Outline of stylus in Gallancyra dentata (Sugimoto, 1934) (redrawn from Gustafsson & Zou 2020a). 26. Outline of preantennal area and dorsal preantennal suture of Splendoroffula ampullaceal Kéler, 1955, redrawn from Kéler (1958). Antennae not included in any illustration. Abbreviations used: C = conus; CLS = clypeo-labral suture; DPS = dorsal preantennal suture; E = eye; ES = epistomal suture; HM = hyaline margin; mts3 = marginal temporal seta 3; os = ocular seta. Illustrations are not to scale.
Figs 1–2 in Calidolipeurus, new genus for Lipeurus megalops Piaget, 1880 (Phthiraptera: Ischnocera: Oxylipeurus-complex), with a redescription of the type species and a preliminary key to the Oxylipeurus-complex
Figs 1–2. Calidolipeurus megalops (Piaget, 1880) gen. et comb. nov., based on specimens on slide NHMUK010682491 (NHMUK). 1. Habitus, ♂, dorsal and ventral views. 2. Habitus, ♀, dorsal and ventral views.
Figs 13–18 in Calidolipeurus, new genus for Lipeurus megalops Piaget, 1880 (Phthiraptera: Ischnocera: Oxylipeurus-complex), with a redescription of the type species and a preliminary key to the Oxylipeurus-complex
Figs 13–18. Calidolipeurus megalops (Piaget, 1880) gen. et comb. nov., based on specimens on slide NHMUK010682494 (NHMUK). 13. Male leg I, dorsal view. 14. Male leg I, ventral view. 15. Male leg II, dorsal view. 16. Male leg II, ventral view. 17. Male leg III, dorsal view. 18. Male leg, III, ventral view.
Figs 1-10 in On the Aleochara subgenera Ceranota and Xenochara. IV. A revision of types, a new species, and additional records (Coleoptera: Staphylinidae: Aleocharinae)
Figs 1-10: Aleochara plicelytrata: (1) forebody; (2) median portion of head; (3) antenna; (4) medi- an portion of pronotum; (5) postero-median portion of elytra; (6) abdomen; (7) median lobe of aedeagus in lateral view; (8-9) apical portion of median lobe of aedeagus in ventral view; (10) spermatheca. Scale bars: 1, 6: 1.0 mm; 3: 0.5 mm; 2, 4-5, 7-10: 0.2 mm.
Figs 11-19 in On the Aleochara subgenera Ceranota and Xenochara. IV. A revision of types, a new species, and additional records (Coleoptera: Staphylinidae: Aleocharinae)
Figs 11-19: Aleochara citellorum (15-16: lectotype; 14, 18: paralectotype): (11) forebody; (12) antenna; (13) abdomen; (14) tergite VIII; (15) male sternite VIII; (16-17) median lobe of aedeagus in lateral view; (18) female sternite VIII; (19) spermatheca. Scale bars: 13: 1.0 mm; 11-12: 0.5 mm; 14-18: 0.2 mm; 19: 0.1 mm.
Figure 2 in Two new species of Bonnetina tarantulas (Theraphosidae: Theraphosinae) from Mexico: contributions to morphological nomenclature and molecular characterization of types
Figure 2. Bonnetina tenuiverpis sp. n. Male holotype. (A) Carapace; (B) posterior margin of carapace, showing thick erect setae; (C) ocular area, lateral view; (D) ocular area, dorsal view; (E) sternum; (F) labium and maxillae; (G) left pedipalp, dorsal view, showing retrolateral tibia nodule. Scale lines: 1 mm.
Figure 3 in Two new species of Bonnetina tarantulas (Theraphosidae: Theraphosinae) from Mexico: contributions to morphological nomenclature and molecular characterization of types
Figure 3. Bonnetina tenuiverpis sp. n. Male holotype, left pedipalpal bulb, stereomicroscope images. (A) Prolateral view; (B) retrolateral view; (C) dorsal view; (D) ventral view. Scale line: 1 mm.
Figure 1 in Bombus rubriventris: type locality, different histories of bumblebees in the New World, and a likely invertebrate extinction
Figure 1. Dorsal aspect of the holotype female of Bombus rubriventris showing the 'St. Domingue.' label (photo: NHM photo unit). Scale divisions in mm.
Accounting for New Types of Resource Consumption in a Federated Cloud
<p>As infrastructures and cloud services evolve, resource consumption is more flexible and users are often allowed to reserve resources without actual consumption. Relevant standardization bodies have developed new types of accounting record specifications, and new or updated tools are required to keep track of resource usage. The reaction to this is the development of a new accounting tool – GOAT.</p> <p>GOAT – GO Accounting Tool – is a service running in the background and waiting for a connection from a compatible client. The client connects to a cloud management framework, extracts computing data about projects, servers, networks, and storages, filters them accordingly, and sends them to a server for further processing. Multiple clients can use the server at once. When the server receives accounting data, it is transformed into the configured format and writes them to the destination file. The consumer collects data into a central accounting database where it is processed to generate statistical summaries.<br> For now, the GOAT project supports two cloud computing platforms on the client side – OpenNebula and Openstack. Thanks to its use of standard accounting record formats it can work with different consumers. The ones used in the real world are APEL and Prometheus.</p> <p>This Demonstration shows how the GOAT client extracts accounting data from a cloud management platform, sends them to the GOAT server where they are transformed, and how Prometheus and Grafana process them and present various views of resource usage.</p>
Fig. 4. Types. A–B in All-inclusive descriptions of new freshwater snail taxa of the hyperdiverse family Tateidae (Gastropoda, Caenogastropoda) from the South Island of New Zealand
Fig. 4. Types. A–B. Catapyrgus jami sp. nov. C–D. Opacuincola lisannea sp. nov. (D from northern locality). E–F. Op. gretathunbergae sp. nov. G–H. Op. mete kahurangi subsp. nov. I–J. Obtusopyrgus farri sp. nov. A, C, E, G, I, holotypes, rest paratypes.
Fig. 7. Hisonotus notatus, DZSJRP 13874 in Redescription of Hisonotus notatus Eigenmann & Eigenmann, 1889 (Loricariidae: Hypoptopomatinae), the type species of the genus, and description of a new species from coastal drainages of southeastern Brazil
Fig. 7. Hisonotus notatus, DZSJRP 13874, non-type, 43.5 mm SL, female, Brazil, Rio de Janeiro, Silva Jardim Municipality, rio São João drainage.
Fig. 3 in Redescription of Hisonotus notatus Eigenmann & Eigenmann, 1889 (Loricariidae: Hypoptopomatinae), the type species of the genus, and description of a new species from coastal drainages of southeastern Brazil
Fig. 3. Lateral plates of trunk of Hisonotus notatus, DZSJRP 13852, 31.5 mm SL, male (a) and Hisonotus thayeri, DZSJRP 20157, paratype, 32.4 mm SL, female (b), left side. Scale bars = 1mm.
Fig. 6. Hisonotus notatus, MCZ 7764 in Redescription of Hisonotus notatus Eigenmann & Eigenmann, 1889 (Loricariidae: Hypoptopomatinae), the type species of the genus, and description of a new species from coastal drainages of southeastern Brazil
Fig. 6. Hisonotus notatus, MCZ 7764, paralectotype, 29.2 mm SL, female, Brazil, Rio de Janeiro, Santa Cruz district.
Fig. 2 in Redescription of Hisonotus notatus Eigenmann & Eigenmann, 1889 (Loricariidae: Hypoptopomatinae), the type species of the genus, and description of a new species from coastal drainages of southeastern Brazil
Fig. 2. Scanning electron micrographs of tip of snout of Hisonotus notatus, DZSJRP 13852, 34.6 mm SL (a, c) and Hisonotus thayeri, MNRJ 14752, 38.4 mm SL, paratype (b, d).
Fig. 4 in Redescription of Hisonotus notatus Eigenmann & Eigenmann, 1889 (Loricariidae: Hypoptopomatinae), the type species of the genus, and description of a new species from coastal drainages of southeastern Brazil
Fig. 4. Sexual dimorphism in body depth in Hisonotus notatus, MNRJ 38147, female, 37.2 mm SL (above), and male 32.3 mm SL (below).
Fig. 5 in Redescription of Hisonotus notatus Eigenmann & Eigenmann, 1889 (Loricariidae: Hypoptopomatinae), the type species of the genus, and description of a new species from coastal drainages of southeastern Brazil
Fig. 5. Geographic distribution of Hisonotus notatus (black squares, and star for type locality) and Hisonotus thayeri (red dots, and triangle for type locality) in southeastern Brazilian costal drainages. Symbols can represent more than one sampling locality.
Fig. 1 in Redescription of Hisonotus notatus Eigenmann & Eigenmann, 1889 (Loricariidae: Hypoptopomatinae), the type species of the genus, and description of a new species from coastal drainages of southeastern Brazil
Fig. 1. Hisonotus thayeri, new species, MNRJ 42382, holotype, 36.7 mm SL, female, Brazil, Espírito Santo State, Guarapari Municipality, rio Benevente drainage.
FIGURES 27 – 29. Type localities. 27 in Three new species of Inseliellum (Diptera: Simuliidae) from Polynesia
FIGURES 27 – 29. Type localities. 27. Simulium adelaideae. Above Lac Vaihiria on crossTahiti road. Larva collected in denselyshaded portion of stream in background. 28. S. sublonckei. Second cascade on road to Maroto River barrage, Vaitamanu Valley, Papenoo River catchment. 29. S. englundi. Unnamed stream, Mohotani Island, Hiva Oa, Marquesas Islands. Photograph courtesy of R. Englund.
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.