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127 results for “wing venation”
Figs. 24–30. Asturodes wing venation and androconial organs. 24 in Asturodes Amsel (Lepidoptera: Crambidae: Spilomelinae): Three New Species From The Western Hemisphere And Food Plant Records From Area De Conservación Guanacaste, Costa Rica
Figs. 24–30. Asturodes wing venation and androconial organs. 24, Male venation, USNM wing slide #115728. 25, Genitalic slide preparation with petaloid scales (ps), filiform scales (fs), and parateguminal sclerite (pts). 26, Magnified androconial organ, parateguminal sclerite (pts). 27, Dorsal view of androconial organs, uncus base (ub). 28, Anal view of genitalia and androconial organs, uncus head (uh), valva (v). 29, Ventral view of androconial organs. 30, Lateral view of androconial organs.
FIGURES 66–75 in Intraspecific wing venation and phallosome taxonomy updates in species of Loneura Navás (Psocodea, Ptiloneuridae), with one new species from cave and key to Loneura species from Brazil
FIGURES 66–75. Loneura maracaensis García Aldrete Variations in the forewing veins of males and females. Scales in mm.
Fig. 5 in Evolutionary relationships of wing venation and wing size and shape in Aphidiinae (Hymenoptera: Braconidae)
Fig. 5 Phylogenetic hypothesis for the subfamily Aphidiinae based on the mtCOI gene and character states of wing venation allocated based on Parsimony ancestral state reconstruction method: left – unordered; right –
Fig. 2 in Evolutionary relationships of wing venation and wing size and shape in Aphidiinae (Hymenoptera: Braconidae)
Fig. 2 Nomenclature of Aphidiinae wing venation following Wharton et al. (1997). CU cubitus, M media, R radius, RS radial sector, m-cu transverse medio-cubital vein, r transverse radial vein, r + m transverse radio-medial vein; cells: I marginal, II 1st submarginal, III 2nd submarginal, IV 3rd submarginal, V basal, VI 1st discal, VII 2nd discal, VIII subbasal, IX 1st subdiscal, X 2nd subdiscal, XI anal
Fig. 6 in Evolutionary relationships of wing venation and wing size and shape in Aphidiinae (Hymenoptera: Braconidae)
Fig. 6 Distribution of species in the morphospace defined by three PC axes. Phylogeny is mapped over graph. a Mapped distribution of the species means in phylomorphospace. Ellipses of the symbols represent
Fig. 3 in Evolutionary relationships of wing venation and wing size and shape in Aphidiinae (Hymenoptera: Braconidae)
Fig. 3 Set of landmarks positioned on the forewing of a Ephedrus plagiator, species with fully developed venation, and forewing of b Binodoxys angelicae, species with a reduced wing venation. First five landmarks (landmarks 1 to 5) describe the proximal part of the wing; landmarks 5, 6 and 7 describe the stigma, 7 and 8 mark the length of metacarpus, 6 and 9 mark the radial vein and together from 6 to 11 represent the distal area of the wing
Figures 83–86. 83, generalized baridine hind wing venation. 84–86, hind wings. 84 in Delimiting baridine weevil evolution (Coleoptera: Curculionidae: Baridinae)
Figures 83–86. 83, generalized baridine hind wing venation. 84–86, hind wings. 84, Cryptorhynchus lapathi (Cryptorhynchinae); 85, Cholus rana (Molytinae); 86, Cylindrocopturus adspersus (Conoderinae).
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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.
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DANDI Archive for NWB datasets
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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.