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478 results for “micrographs”
Fig. 3. Scalponotatus maturus, scanning electron micrographs. A in Revision And Phylogenetic Analysis Of The North American Genus Slaterocoris Wagner With New Synonymy, The Description Of Five New Species And A New Genus From Mexico, And A Review Of The Genus Scalponotatus Kelton (Heteroptera: Miridae: Orthotylinae)
Fig. 3. Scalponotatus maturus, scanning electron micrographs. A. Hemelytron, vestiture and cuticular sculpture, dorsal view. B. Head and thorax, lateral view. C. Mesothoracic spiracle and metathoracic scentefferent system, lateral view. D. Pretarsus, apical view.
Fig. 14. Slaterocoris ambrosiae, scanning electron micrographs. A in Revision And Phylogenetic Analysis Of The North American Genus Slaterocoris Wagner With New Synonymy, The Description Of Five New Species And A New Genus From Mexico, And A Review Of The Genus Scalponotatus Kelton (Heteroptera: Miridae: Orthotylinae)
Fig. 14. Slaterocoris ambrosiae, scanning electron micrographs. A. Head and thorax, lateral view. B. Head and thorax, lateral view. C. Vestiture and cuticular sculpture of hemelytron. D. Mesothoracic spiracle and metathoracic scent-efferent system. E. Pygophore with left and right parameres, posterior view.
Fig. 20. Slaterocoris species, scanning electron micrographs. A–C. Head, anterior view. A. S. croceipes. B. S. pilosus. C. S. rubrofemoratus. D. S in Revision And Phylogenetic Analysis Of The North American Genus Slaterocoris Wagner With New Synonymy, The Description Of Five New Species And A New Genus From Mexico, And A Review Of The Genus Scalponotatus Kelton (Heteroptera: Miridae: Orthotylinae)
Fig. 20. Slaterocoris species, scanning electron micrographs. A–C. Head, anterior view. A. S. croceipes. B. S. pilosus. C. S. rubrofemoratus. D. S. pilosus, pronotum, scutellum, and hemelytra. E. S. croceipes, mesothoracic spiracle and metathoracic scent-efferent system, lateral view. F. S. fuscomarginalis, pretarsus, apical view.
Fig. 9. Josephinus reinhardi, scanning electron micrographs. A, B. Head. A. Anterior view. B. Lateral view. C in Revision And Phylogenetic Analysis Of The North American Genus Slaterocoris Wagner With New Synonymy, The Description Of Five New Species And A New Genus From Mexico, And A Review Of The Genus Scalponotatus Kelton (Heteroptera: Miridae: Orthotylinae)
Fig. 9. Josephinus reinhardi, scanning electron micrographs. A, B. Head. A. Anterior view. B. Lateral view. C. Hemelytron, vestiture and cuticular sculpture, dorsal view. D. Mesothoracic spiracle and metathoracic scent-efferent system, lateral view. E. Pretarsus, apical view. F. Pygophore with endosomal spicule, left and right parameres, posterior view.
Figure 1 Micrographs showing a in Morphological observations of fluorescence in different tick species (Family: Ixodidae)
Figure 1 Micrographs showing a dorsal view of Dermacentor variabilis (male) to compare each light source. White light (left), royal blue (RB, 440-460 nm) (middle) and ultraviolet (UV, 360-380 nm) (right). Variation in ornamentation illuminated by the different light sources can
Text-fig. 2. Light micrographs of Pinus spp. cuticles prepared with the modified, gentle bleaching procedure. a: Cuticle 1, Pinus sp. 1. Nearly the entire width of the leaf has been preserved. Five parallel rows of stomata are visible. b: Cuticle 1, close-up of (a). Two guard cells are visible around each stoma. c: Cuticle 1, close-up of eight stomata. Two guard cells and eight subsidiary cells are visible around each stoma. d: Cuticle 2, Pinus sp. 2. Some folding of the cuticle occurred during preparation, but many parallel rows of stomata on both sides of a thin, central midvein are evident. e: Cuticle 2, close-up of (d). Pairs of guard cells surround each stoma. f: Cuticle 2, close-up of (e). Subsidiary and epithelial cells can be observed around the stomata. in A Modified, Step-By-Step Procedure For The Gentle Bleaching Of Delicate Fossil Leaf Cuticles
Text-fig. 2. Light micrographs of Pinus spp. cuticles prepared with the modified, gentle bleaching procedure. a: Cuticle 1, Pinus sp. 1. Nearly the entire width of the leaf has been preserved. Five parallel rows of stomata are visible. b: Cuticle 1, close-up of (a). Two guard cells are visible around each stoma. c: Cuticle 1, close-up of eight stomata. Two guard cells and eight subsidiary cells are visible around each stoma. d: Cuticle 2, Pinus sp. 2. Some folding of the cuticle occurred during preparation, but many parallel rows of stomata on both sides of a thin, central midvein are evident. e: Cuticle 2, close-up of (d). Pairs of guard cells surround each stoma. f: Cuticle 2, close-up of (e). Subsidiary and epithelial cells can be observed around the stomata.
Fig. 37. Scanning electron micrographs for assumed outgroup taxa for Diognetus. A−C in Revision of the plant bug genus Diognetus, with descriptions of thirteen new species from the Oriental and Eastern Palearctic Regions (Hemiptera: Heteroptera: Miridae)
Fig. 37. Scanning electron micrographs for assumed outgroup taxa for Diognetus. A−C − Argenis incisuratus (Walker, 1873) (from Nakhon Ratchasima, Thailand); D−E − Tinginotopsis sp. (Java, Indonesia); F−L − Tinginotum formosanum Poppius, 1915 (Ryukyus, Japan); M−O − T. perlatum Linnavuori, 1961 (Nagasaki, Japan). A − left lateral habitus; B, G, M − pleura and scent efferent system, left lateral view; C, H − metatarsus; D − anterior body, left lateral view; F − anterior body, dorsal view; I − posterior body, left lateral view; J − sclerotized ring; K, M − posterior wall; L. O − interramal lobe.
Fig. 30. Scanning electron micrographs for Diognetus intonsus Distant, 1904 in Revision of the plant bug genus Diognetus, with descriptions of thirteen new species from the Oriental and Eastern Palearctic Regions (Hemiptera: Heteroptera: Miridae)
Fig. 30. Scanning electron micrographs for Diognetus intonsus Distant, 1904, ♀ from Chiang Mai, Thailand (A−I) and D. laureus sp. nov., J from Nagasaki, Japan (J−O). A, K − anterior body, left lateral view; J − left lateral habitus; B, L − scutellum and adjacent structures, left lateral view; C − head and anterior pronotum, dorsal view; D − scutellum and adjacent structures; E−F − metatarsus; G − sclerotized ring; H − posterior wall; I − dorsal structure and interramal lobe; M − dorsal habitus; N − corium; O − posterior corium and anterior cuneus.
Figs 14–15. Mythicomyiidae antennae, scanning electron micrographs. 14. Leylaiya mimnermia Efflatoun. 15 in Annotated keys to the genera of African Bombylioidea (Diptera: Bombyliidae; Mythicomyiidae)
Figs 14–15. Mythicomyiidae antennae, scanning electron micrographs. 14. Leylaiya mimnermia Efflatoun. 15. Platypygus natalensis Hesse.
Figure 4 SEM micrographs ofLinotetranus sibiriensis n in First record of Linotetranidae (Acari: Tetranychoidea) from Russia, with description of a new species
Figure 4 SEM micrographs ofLinotetranus sibiriensis n. sp., female: A – general view dorsally, B – prosoma, dorsal aspect, C – general view ventrally, D – hysterosoma, ventral aspect.
Figure 5 SEM micrographs ofLinotetranus sibiriensis n in First record of Linotetranidae (Acari: Tetranychoidea) from Russia, with description of a new species
Figure 5 SEM micrographs ofLinotetranus sibiriensis n. sp., female: A – ano-genital area, B – gnathosoma, ventral aspect, C – tibia and tarsus of right palp, ventrolateral aspect, D – right tarsus I, ventral aspect.
Fig. 6. Kushia zosteraphila. Scanning electron micrographs. A in New record of the family Porcellidiidae Boeck, 1865 (Harpacticoida, Copepoda) in Korea
Fig. 6. Kushia zosteraphila. Scanning electron micrographs. A: Female, habitus; B: Male, habitus; C: Female, caudal rami, ventral view; D: Male, maxilla. Scale bar in μm.
Fig. 14. Ascarophis arctica Polyanskiy, 1952 from Gasterosteus aculeatus Linnaeus, scanning electron micrographs. A in Rhabdochona angusticaudata sp. n. (Nematoda: Rhabdochonidae) from the Japanese eel Anguilla japonica, and new records of some other nematodes from inland fishes in Japan
Fig. 14. Ascarophis arctica Polyanskiy, 1952 from Gasterosteus aculeatus Linnaeus, scanning electron micrographs. A – posterior end of male, ventral view; B – tail of male, subventral view (arrows indicate postanal papillae); C – precloacal region, subventral view (arrows indicate preanal papillae; note weakly-developed ventral precloacal ridges); D – posterior end of male, sublateral view (arrows indicate two posteriormost pairs of postanal papillae; note ventral precloacal ridges); E – broken female body with eggs; F – egg with filaments on both poles; G – egg with filaments only on one pole.
Fig. 13. Ascarophis arctica Polyanskiy, 1952 from Gasterosteus aculeatus Linnaeus, scanning electron micrographs. A–C in Rhabdochona angusticaudata sp. n. (Nematoda: Rhabdochonidae) from the Japanese eel Anguilla japonica, and new records of some other nematodes from inland fishes in Japan
Fig. 13. Ascarophis arctica Polyanskiy, 1952 from Gasterosteus aculeatus Linnaeus, scanning electron micrographs. A–C – cephalic end of female, lateral, apical and dorsoventral views, respectively; D – region of female mouth (another specimen), sublateral view; E – tail of female, ventral view; F – deirid; G – distal end of left spicule, ventral view. Abbreviations: a – amphid; b – cephalic papilla c – phasmid; d – anus; l – labium; p – pseudolabium with anterior tooth-like projection; s – sublabium.
Raw electron microscopy micrographs of the Nup84 subcomplex
<p>Raw electron microscopy micrographs of the Nup84 subcomplex of the <em>Saccharomyces cerevisiae </em>Nuclear Pore Complex.</p>
VMXi Classification Dataset: Micrographs of Protein Crystallisation Experiments with Labels of Experimental Outcomes
<p>The VMXi Classification Dataset consists of images of protein crystallisation experiments collected on a Rock Imager 1000 (Formulatrix, USA) automated microplate imager at the VMXi experimental facility at Diamond Light Source, UK. These images were used to train the CHiMP (Crystal Hits in My Plate) Classifier network that classifies images into categories of experimental outcome.</p> <ul> <li>The directory named "VMXi_Classification_Images", consists of 18,782 JPEG images with a resolution of 3376 × 2704 pixels. </li> <li>13,951 of these images are associated with a label describing the experimental outcome depicted in the images. The labels are Clear, Crystals, Precipitate or Other.</li> <li>The file "VMXi_Classification_Train.csv" contains filenames and labels for the 11,161 images in the training set used for the CHiMP Classifier network.</li> <li>The file "VMXi_Classification_Validation.csv" contains filenames and labels for the 2,790 images in the validation set used for the CHiMP Classifier network.</li> </ul> <p>In addition, an independent test set of images are included in the directory named "VMXI_Classification_Test_Dataset". Within this direcectory:</p> <ul> <li>The subdirectory named "VMXi_Classification_Test_Images" contains 1000 JPEG images with a resolution of 3376 × 2704 pixels.</li> <li>Each image is associated with a label describing the experimental outcome depicted in the images. The labels are Clear, Crystals, Precipitate or Other.</li> <li>The file "unambiguous_test_dataset.csv" contains filenames and labels for the 632 images in the test set where three experts independently agreed on a label.</li> <li>The file "mostly_unambiguous_test_dataset.csv" contains filenames and labels for the 949 images in the test set where at least two experts independently agreed on a label.</li> <li>The file "original_expert_labels.csv" contains filenames for all 1000 images and the labels given by three experts independently. The column headed "expert_1_1" refers to labels given by expert number 1 at a timepoint 6 months prior to categorising the images again, given in the column "expert_1_2". The columns "expert_2" and "expert_3" contain the labels given by experts 2 and 3 respectively.</li> <li>The <em>unambiguous</em> and <em>mostly unambiguous</em> test sets were created from the categories chosen by "expert_1_2", "expert_2" and "expert_3"</li> </ul>
Figure 4 Micrograph ofTanytydeus nothofagi n in First record of the genus Tanytydeus (Acari: Paratydeidae) from South America with description of a new species from the Patagonian forests of Argentina
Figure 4 Micrograph ofTanytydeus nothofagi n. sp., male dorsal view.
Micrographs of empty cryo-EM grids that are used in training of crYOLO
<p>Micrographs of empty cryo-EM grids that are used in training of <a href="http://sphire.mpg.de/wiki/doku.php?id=downloads:cryolo_1&redirect=1">crYOLO</a>. The micrographs do not contain any protein, only ice and contamination. Datasets were recorded with different cameras (Falcon 3 / K2) and grid types.</p>
FIG. 5. Electron micrograph ofa T. aquaticus rod, showing presence ofslime. Bar represents I J in Thermus aquaticus gen. n. and sp. n., a Nonsporulating Extreme Thermophile
FIG. 5. Electron micrograph ofa T. aquaticus rod, showing presence ofslime. Bar represents I J,um.
Dataset for: Synthetic Micrographs of Bacteria (SyMBac) Allows Accurate Segmentation of Bacterial Cells Using Deep Neural Networks
<p>Datasets for the paper Synthetic Micrographs of Bacteria (SyMBac) Allows Accurate Segmentation of Bacterial Cells Using Deep Neural Networks, published in BMC Biology.</p>
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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.