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27 results for “3-simplex”
Regular full triangulations of the 3-dilated 3-simplex
<p>This dataset contains the 21 125 102 regular full triangulations of the 3-dilated 3-simplex, computed by mptopcom. The data is given up to symmetry, i.e. we have one triangulation from every orbit. The file `3d3.dat` is the input file for mptopcom, which was called with the `--regular` and `--full` flags. The output is in the file `3d3_regular_full.result.xz`.</p>
Regular unimodular triangulations of the 3-dilated 3-simplex
<p>This dataset contains the 14 373 645 regular unimodular triangulations of the 3-dilated 3-simplex, computed by mptopcom. The data is given up to symmetry, i.e. we have one triangulation from every orbit. The file `3d3.dat` is the input file for mptopcom, which was called with the `--regular` and `--full` flags. This output was then filtered by a perl script to receive the unimodular triangulations only. The output is in the file `3d3_regular_unimodular.result.xz`.</p>
Figure 3. A, Stenostomum paraguayense. B, S. rosulatum. C, S. simplex. D, S. tenuicauda. E, S. uronephrium. F, S in A taxonomic revision of South American species of the genus Stenostomum O. Schmidt (Platyhelminthes: Catenulida) based on morphological characters
Figure 3. A, Stenostomum paraguayense. B, S. rosulatum. C, S. simplex. D, S. tenuicauda. E, S. uronephrium. F, S. virginianum. Scale bars = 200 Mm.
FIGURE 3 in Description of a new species of Tatia from rio Tocantins drainage, central Brazil, with notes on Tatia simplex Mees, 1974 (Siluriformes, Auchenipteridae)
FIGURE 3 | Left suspensorium, lateral view, of Tatia akroa, UFOPA-I 670, 34.3 mm SL. Abbreviations: hy, hyomandibula; io, interopercle; mt, metapterygoid; op, opercle; po, preopercle; qu, quadrate; sp, suprapreopercle.
Figure 3 in Redescription of Centruroides granosus (Thorell, 1876) and identity of Centrurus granosus simplex Thorell, 1876 (Scorpiones: Buthidae)
Figure 3: Centruroides granosus. Female from Chitré. A, prosoma and first tergites; B, femur and patella of pedipalp, dorsal aspect; C, pedipalpal chela, dorsal aspect; D, coxasternal area and first abdominal sternites; E, metasomal segments I–IV, ventrolateral aspect; F, metasomal segment V and telson, lateral aspect.
Fig. 3. Pleioplectron simplex Hutton, 1896, type specimens. A–C in Diversity and distribution of Pleioplectron Hutton cave wētā (Orthoptera: Rhaphidophoridae: Macropathinae), with the synonymy of Weta Chopard and the description of seven new species
Fig. 3. Pleioplectron simplex Hutton, 1896, type specimens. A–C. Lectotype, ♂ (CMNZ 000280). A. Lateral view. B. Terminalia, dorsal view. C. Terminalia, ventral view. D–E. Paratype of Pleioplectron pectinatum Hutton, 1896, ♂ (CMNZ 000266a). D. Lateral view. E. Terminalia, dorsal view. F. Holotype of Pleioplectron pectinatum Hutton, 1896, ♂ (CMNZ 000266), terminalia, ventral view. Scale bar = 2 mm (applies to B–C, E–F only).
Fig. 3 in Location and elimination of Anisakis simplex third stage larvae in Atlantic herring Clupea harengus L
Fig. 3. The association of nematode larvae with musculature and body cavity organs in herring (unprocessed).
Fig. 3 in A revision of the simplex species group of the cleptoparasitic bee genus Triepeolus Robertson, 1901 (Hymenoptera: Apidae)
Fig. 3. Head of male, frontal view. A. Triepeolus michiganensis Mitchell, 1962 (CNC 719805), which has a strong glabrous clypeal midline (blue arrow). B. T. obliteratus Graenicher, 1911 (WRME WRME_ EJH02370), which does not have a glabrous clypeal midline.
FIG. 3. — Jurathauma simplex n. gen., n in A new fossil eomeropid (Insecta, Mecoptera) from the Jiulongshan Formation, Inner Mongolia, China
FIG. 3. — Jurathauma simplex n. gen., n. sp.: A, holotype (CNU-MEC-NN2009001);B, paratype (CNU-MEC-NN2009002); C, left antenna of paratype; D, right fore leg of paratype; E, right middle leg of paratype. Scale bars: A, 4 mm; B, 5 mm; C, D, E, 1 mm.
Text-fig. 41. Scanning electron microscope (SEM) images of monocolpate pollen of Piercipollis simplex gen. et sp. nov. from a pollen clump; Torres Vedras locality, Portugal. a) Holotype; pollen clump that yielded the pollen in this Text-figure; b–d) Pollen grains in distal (b), proximal (c) and lateral views (d) showing the very long colpus and the well-developed reticulum that is only loosely attached to the smooth surface of the foot layer; note the large angular lumina, smooth muri and short, sparsely scattered, columellae; note also that main body of pollen grains (foot layer) does not fill out the whole space of the reticulum; e) Reticulum showing the smooth muri loosely attached to the smooth surface of the foot layer by short, sparsely scattered, columellae. Specimen, TV44-S136755 (holotype). Scale bars 300 Μm (a), 6 Μm (b–d), 3 Μm (e). in The Early Cretaceous Mesofossil Flora Of Torres Vedras (Ne Of Forte Da Forca), Portugal: A Palaeofloristic Analysis Of An Early Angiosperm Community
Text-fig. 41. Scanning electron microscope (SEM) images of monocolpate pollen of Piercipollis simplex gen. et sp. nov. from a pollen clump; Torres Vedras locality, Portugal. a) Holotype; pollen clump that yielded the pollen in this Text-figure; b–d) Pollen grains in distal (b), proximal (c) and lateral views (d) showing the very long colpus and the well-developed reticulum that is only loosely attached to the smooth surface of the foot layer; note the large angular lumina, smooth muri and short, sparsely scattered, columellae; note also that main body of pollen grains (foot layer) does not fill out the whole space of the reticulum; e) Reticulum showing the smooth muri loosely attached to the smooth surface of the foot layer by short, sparsely scattered, columellae. Specimen, TV44-S136755 (holotype). Scale bars 300 Μm (a), 6 Μm (b–d), 3 Μm (e).
Fig. 3. Dysidea simplex n in Seven new species of genus Dysidea (Demospongiae: Dictyoceratida: Dysideidae) from Korea
Fig. 3. Dysidea simplex n. sp. A, external morphology; B, surface close up under the dissect- ing microscope; C, D, skeletal structure; E, thin secondary fibres; F, web type secondary fibres; G, H, secondary fibres cored with sands and spicules. Scale bars: A = 1 cm, B = 2 mm, C- F = 100 μm, G, H = 50 μm.
FIGURES 3–8 in Newman with discussion of the taxonomic position of the Australian species, O. simplex White (Coleoptera: Cerambycidae: Cerambycinae)
FIGURES 3–8. Forms of spines on internal sac of male genitalia: 3, simple spines; 4, long simple spines; 5, hairlike spines; 6, sawshaped spines; 7, multibranched spines; 8, fingershaped spines.
FIGURE 3. Protoplanella simplex Reisinger, 1924 in Dalytyphloplanida (Platyhelminthes: Rhabdocoela) from Andalusia, Spain, with the description of four new species
FIGURE 3. Protoplanella simplex Reisinger, 1924. Habitus based on observations on live animals and serial sections.
FIGURE 3 in New records of Anthalona acuta Van Damme, Sinev & Dumont 2011 and Anthalona brandorffi (Sinev & Hollwedel, 2002) in Brazil, with description of a new species of the simplex - branch (Crustacea: Cladocera: Chydoridae)
FIGURE 3. Anthalona neotropica sp. nov., parthenogenetic female. A, lateral view, Sobradinho Stream, Distrito Federal, Brazil. B, lateral view, Tijuca River, Rio de Janeiro, Brazil. C, lateral view, juvenile from San Pedro, Argentina. D, carapace, posteroventral corner. E–I, head pores. J, labral keel. K, postabdomen, Sobradinho Stream, Distrito Federal, Brazil. L, postabdomen, Tijuca River, Rio de Janeiro, Brazil. M, terminal claw, Sobradinho Stream, Distrito Federal, Brazil. N, antennule, Sobradinho Stream, Distrito Federal, Brazil. O, antenna II, Sobradinho Stream, Distrito Federal, Brazil. P, antenna II, Cachoeira do Palmito, Pirenópolis, Goiás, Brazil. Scale bars = 50 µm.
Fig. 3 in Digestive system of the marine blood fluke, Aporocotyle simplex (Odhner, 1900) (Digenea: Aporocotylidae) with consideration of the digenean digestive morphology
Fig. 3. Ultrastructure of middle and posterior esophagus of Aporocotyle simplex (A) Section through middle esophagus surrounded by large area of compact cellular aggregation, note esophageal lumen filled with epithelial cytoplasmic protrusions (B) Section through posterior esophagus surrounding compact cellular aggregation, note blood cells between esophageal cytoplasmic protrusions within duct lumen (C) Esophageal sunken perikaryon showing large area with different stages of secretory granule development in perinuclear cytoplasm, note muscle fibres near cell, insert Large secretory granule surrounded vacuolar area (D, F) Blood cell disintegration within lumen of posterior esophagus, note conglomerations of moderately dense substance around cells permeated with thin terminal protrusions (E) Esophageal perikariya and axonemal and muscle fibres (G) Nascent and forming secretory granules surrounding vacuolar areas, note cellular tubular structures (H) Esophageal perikaryon at the beginning stage of the development (I) Part of posterior esophageal cytoplasmic lining, note large scattered conglomerations of moderately dense substance. Abbreviations: anf, axonemal nerve fibres; bc, blood cells; fg, forming granules; mf, muscle fibres; n, nucleus; ng, nascent granules; tp, protrusion terminal portion; vm, vacuolated matrix around granules; other abbreviations in Figs. 1 and 2. Scale bars: A, B = 10 μm; С – E, G, I = 1 μm; insert, F, H = 0.5 μm.
Figure 3 in Reinstatement of Ehlersileanira simplex (Ehlers, 1887) comb. nov. reinst., distinct from E. incisa (Grube, 1877) (Annelida: Sigalionidae), with a key to all the species of Ehlersileanira
Figure 3. Ehlersileanira incisa, non-type specimen (UMML 6504–259): (a) segment 22, anterior view; (b) drawing of a (chaetae omitted); (c) segment 22, posterior view; (d) drawing of c (chaetae omitted); (e) diagrammatic end view of same; (f) notochaeta, same; (g) detail of f; (h) compound supra-acicular neurochaeta, same; (i) compound infra-acicular neurochaeta, same; (j) simple neurochaeta, same; (k) diagrammatic of elytron from median segment; (l) elytron from median segment. Ehlersileanira simplex, non-type specimen (UMML22.1090): (m) segment 21, anterior view; (n) drawing of m (chaetae omitted); (o) segment 21, posterior view; (p) drawing of o (chaetae omitted); (q) diagrammatic end view of same; (r) notochaeta, same; (s) compound supra-acicular neurochaeta, same; (t) compound infra-acicular neurochaeta, same; (u) simple neurochaeta, same. Non-type specimen (UMML 6518–576, Florida, same length as UMML 22.1090): (v) diagrammatic of elytron from median segment; (w) elytron from median segment. Scale bars: a–e, m–q, v, w = 500 µm; f = 200 µm; g–j, r–u = 100 µm; k, l = 1 mm. Abbreviations: al: anterior lower lobe; as: anterior side; au: anterior upper lobe; pl: posterior lower lobe; ps: posterior side; pu: posterior upper lobe.
FIGURE 3 in Morphology and infraciliature of two new earthworm ciliates, Hoplitophrya polymorphus sp. nov. and Anoplophrya simplex sp. nov. (Ciliophora: Oligohymenophorea: Astomatia)
FIGURE 3. Hoplitophrya polymorphus sp. nov. A. ciliature of the ventral face with the skeletal apparatus in elongated form; B. ciliature of the ventral face in stocky form; C. ciliature of the dorsal face of elongated form; D. details of the skeletal apparatus; Fk. folding of kineties; Sl. suture line; Ss. Secant system. Scale bar: 20 µm.
FIGURE 3 in Three new ameirid harpacticoids from Korea and first record of Proameira simplex (Crustacea: Copepoda: Ameiridae) *
FIGURE 3. Ameira zahaae sp. nov., holotype female: A, first swimming leg, anterior view; B, second swimming leg, anterior view; C, third endopodal segment of third swimming leg, anterior view; D, fourth swimming leg, anterior view; E, antenna, posterior view. Arrow pointing minute inner distal seta.
Figure 3 from: Bien S, Damm U (2020) Arboricolonus simplex gen. et sp. nov. and novelties in Cadophora, Minutiella and Proliferodiscus from Prunus wood in Germany. MycoKeys 63: 119-161. https://doi.org/10.3897/mycokeys.63.46836
Figure 3 Phylogeny of dataset 3 obtained by Bayesian Inference analysis of the combined LSU, ITS, TUB sequence alignment of Phaeomoniellales, including Minutiella. Capronia fungicola strain CBS 614.96 is used as outgroup. BI posterior probability support values above 90% (bold), ML and MP bootstrap support values above 70% are shown at the nodes. The strains analysed in this study are emphasised in bold. Numbers of ex-type strains are emphasised with a superscript T. Branches that are crossed by diagonal lines are shortened by 50%.
Plate III. Rhinolophus simpleX group; skulls; front views f, all other figures f. Fig.. Rh. simpleX (p. 76); Lombok; type of the species. Front view. 2 a, b, c. Rh. megaphyllus f. typica (p. 79); Cooktown; B.M. no. 3.8.3.3. Upper, lateral, and front views. 3. Rh. nanus (p. 82); Goram; type. Front view. 4a, b. Rh. celebensis (p. 83); Makassar; type. Upper and front views. 5 a, 6, c. Rh. borneensis f. typica (p. 84); Labuan; topotype; B.M. no. 65.5.9.15. Upper, lateral, and front views. 6. Rh. malayanus (p. 89); Biserat; topotype; B.M. no. 3.2.6.84. Front view. 7 a, b, c. Rh. nereis (p. 90); Siantan, Anambas; type. Upper, lateral, and front views. 8 a, b. Rh. stheno (p. 91); Selangor; topotype; B.M. no. 98.3.13.2. Lateral and front views. 9 a, b, c, d. Rh. rouXi f. typica (p. 93); Ceylon. Upper, lower, lateral, and front views. 10. Rh.thomasi (p. 100); Talio, Karin Hills; topotype; B.M. no. 90.4.7.9. Upper view. 11 a, b. Rh. affinis himalayanus (p. 103); Nepal. Lower and front views. 12. Rh. a. tener (p. 103); Pegu; type. Upper view. 13. Rh. a. princeps (p. 106); Lombok; type. Upper view. in On some Bats of the Genus Rhinolophus, with Remarks on their Mutual Affinities, and Descriptions of Twenty-six new Forms.
Plate III. Rhinolophus simpleX group; skulls; front views f, all other figures f. Fig.. Rh. simpleX (p. 76); Lombok; type of the species. Front view. 2 a, b, c. Rh. megaphyllus f. typica (p. 79); Cooktown; B.M. no. 3.8.3.3. Upper, lateral, and front views. 3. Rh. nanus (p. 82); Goram; type. Front view. 4a, b. Rh. celebensis (p. 83); Makassar; type. Upper and front views. 5 a, 6, c. Rh. borneensis f. typica (p. 84); Labuan; topotype; B.M. no. 65.5.9.15. Upper, lateral, and front views. 6. Rh. malayanus (p. 89); Biserat; topotype; B.M. no. 3.2.6.84. Front view. 7 a, b, c. Rh. nereis (p. 90); Siantan, Anambas; type. Upper, lateral, and front views. 8 a, b. Rh. stheno (p. 91); Selangor; topotype; B.M. no. 98.3.13.2. Lateral and front views. 9 a, b, c, d. Rh. rouXi f. typica (p. 93); Ceylon. Upper, lower, lateral, and front views. 10. Rh.thomasi (p. 100); Talio, Karin Hills; topotype; B.M. no. 90.4.7.9. Upper view. 11 a, b. Rh. affinis himalayanus (p. 103); Nepal. Lower and front views. 12. Rh. a. tener (p. 103); Pegu; type. Upper view. 13. Rh. a. princeps (p. 106); Lombok; type. Upper view.
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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.