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323 results for “Venator”
FIGURE 2. Venation comparison. A in A review of the genera Amauta Houlbert, 1918 and Divana J.Y. Miller, 1982 (Lepidoptera: Castniidae) with description of a new genus
FIGURE 2. Venation comparison. A: ♂ Amauta cacica (coll. MGCL); B: ♂ Vadina hodeei (coll. RW); C: ♂ Divana diva (coll. MGCL); D: ♂ Telchin licus (coll. MGCL).
FIGURES 5–6. Wing venation. 5 in Revision of the Neotropical moth genus Ptychotrichos Schaus (Lepidoptera, Erebidae, Arctiinae, Arctiini, Ctenuchina)
FIGURES 5–6. Wing venation. 5) Fore- and hindwing venation of a female of P. elongata from Angra dos Reis (identical in males of this species and both sexes of P. zeus); 6) Fore- and hindwing venation of a male of H. fenestrifer comb. nov. from Pan de Azúcar
FIGURE 1. Fore wing venation. A in Recircumscription of the genera Goniozus and Sierola (Hymenoptera: Bethylidae) based on morphological and molecular evidence
FIGURE 1. Fore wing venation. A) Goniozus sensu stricto: G. williamsi (reversed image of left wing). B) "Parasierola": G. emigratus. C) Typical Sierola: S. oahuensis. D) Australian Sierola with cell 2R1 open: undescribed, BOLD process ID AUSMA313-14.
FIGURES 9–14. Venation. 9 in Two new species of the genus Chibiraga Matsumura, 1931 (Lepidoptera: Limacodidae) from China
FIGURES 9–14. Venation. 9. Forewing venation of C. banghaasi. 10. Hindwing venation of C. banghaasi. 11. Forewing venation of C. houshuaii sp. nov.. 12. Hindwind venation of C. houshuaii sp. nov. 13. Forewing venation of C. yukei sp. nov.. 14. Hindwind venation of C. yukei sp. nov..
FIGURES 16–19. Polyplectropus spp., wing venation. 16–17 in New species of the genus Polyplectropus Ulmer 1905 (Insecta: Trichoptera: Polycentropodidae) from Indian Himalaya
FIGURES 16–19. Polyplectropus spp., wing venation. 16–17, Pol. kailashchandrai sp. nov.: 16, right forewing, dorsal; 17, right hindwing, dorsal. 18–19, Pol. himachalica sp. nov.: 18, right forewing, dorsal, 19, right hindwing, dorsal. (abbreviations: Sc = subcostal vein; R1–R5 = radial veins 1–5; M1–M4 = medial veins 1–4; Cu = cubital vein; A = anal veins; I, II, III, IV, V = apical forks I–IV.
FIGURE 2 A–D. Robber fly wing venation and cells. A in Robber flies (Insecta: Diptera: Asilidae) of Wyoming, USA with keys to genera and species
FIGURE 2 A–D. Robber fly wing venation and cells. A. Leptogaster sp. (Leptogastrinae) (Hull 1962), B. Atomosia puella (Laphriinae) (Hull 1962), C. Pogonioefferia staminea (Asilinae) (Hine 1919), D. Backomyia limpidipennis (Stenopogoninae) (Hull 1962). Abbreviations: veins—C, costa; CuA, anterior branch of cubital (cubitus); CuP, posterior branch of cubital; R1, anterior branch of radius; R, radius branching into R2+3, R4, R5. Cross veins: m-cu, medio-cubital; r-m, radio-medial. Cells: cua, anterior cubital; cup, posterior cubital; d, discal; m, medial (m1, m2, m3, m4); r1, radial (marginal); r3, r4, r5 posterior (submarginal). Figures not to scale.
Fig. 8 in Evolutionary relationships of wing venation and wing size and shape in Aphidiinae (Hymenoptera: Braconidae)
Fig. 8 The distribution of the wing venation types relative to the species mean sizes (log centroid size). The phylogeny is superimposed according to the reconstructed ancestral values. The character states are colourcoded same as in the Fig. 5
Fig. 7 in Evolutionary relationships of wing venation and wing size and shape in Aphidiinae (Hymenoptera: Braconidae)
Fig. 7 Shape changes associated with the first three PCs are shown as extreme wing shapes (black shape) representing the shape of species with maximal positive and negative score of each axis comparing to the mean shape of the sample (grey shape)
Fig. 4 in Evolutionary relationships of wing venation and wing size and shape in Aphidiinae (Hymenoptera: Braconidae)
Fig. 4 Wing venation types in Aphidiinae and number of character state changes. Distribution of veins and cells in the medial and distal part of the wing were considered, as proximal part of the wing has the same structure in all Aphidiinae. a Four cells type. b Fork type. c Axe stigma type. d H letter type. e Horse head type. f Hook type. The changes in venation are highlighted in red and marked by smaller arrows
Fig. 1 in Evolutionary relationships of wing venation and wing size and shape in Aphidiinae (Hymenoptera: Braconidae)
Fig. 1 Diversity of wing types characterized by the presence/ absence of wing veins and cells. a Ephedrus plagiator. b Pseudephedrus sp.. c Praon barbatum. d Lysiphlebus fabarum. e Aphidius ervi. f Binodoxys angelicae. Detailed wing type definition is given in the text
Fig. 2 Yphthimoides gabriela. a Male wing venation. b Female wing venation. c Male palpus. d Male foreleg. e Male midleg. f in Uncovering the hidden diversity of the Neotropical butterfly genus Yphthimoides Forster (Nymphalidae: Satyrinae): description of three new species based on morphological and molecular data
Fig. 2 Yphthimoides gabriela. a Male wing venation. b Female wing venation. c Male palpus. d Male foreleg. e Male midleg. f Female foreleg
FIGURE 1. Erythroxylum lancifolium Peyr. A. Flowering branch. B. Leaf blade, detailing venation. C. Branch detail, showing stipules. D. Stipule, abaxial view. E in Lectotypification and notes on the distribution and conservation status of Erythroxylum lancifolium (Erythroxylaceae), species endemic to the Brazilian Atlantic Forest
FIGURE 1. Erythroxylum lancifolium Peyr. A. Flowering branch. B. Leaf blade, detailing venation. C. Branch detail, showing stipules. D. Stipule, abaxial view. E. Flower bud, showing bracteoles at the base F. Brevistylous flower, with petals removed. G. Petal, showing appendages. H. Ovary. I. Drupe. J. Drupe in cross-section. Vouchers: A–H—A.P. Fontana et al. 1191 (MBML 24468); I–J—L. Kollmann et al. 9567 (MBML 29170). Drawn by Lucas Marinho.
FIGURE 1. Calymmodon concinnus—A. Habitat. B. Adaxial lamina. C. Abaxial lamina. D. Venation. E in New species and records of grammitid ferns (Polypodiaceae) for Vietnam
FIGURE 1. Calymmodon concinnus—A. Habitat. B. Adaxial lamina. C. Abaxial lamina. D. Venation. E. Branched hairs. Scale bars: A = 1 cm, B, C, D = 1 mm, E = 0.1 mm.
FIGURE 2. Oreogrammitis parvula—A. Habitat. B. Adaxial lamina. C. Abaxial lamina. D. Venation. E in New species and records of grammitid ferns (Polypodiaceae) for Vietnam
FIGURE 2. Oreogrammitis parvula—A. Habitat. B. Adaxial lamina. C. Abaxial lamina. D. Venation. E. Portion of adaxial lamina showing the distribution of hairs. F. Sorus. Scale bars: A = 6 mm, B, C, D = 4mm, E = 1 mm, F = 0.5 mm.
FIGURE 5 in Leaf venation patterns in the genus Saxifraga (Saxifragaceae)
FIGURE 5. Ancestral character state reconstruction for venation type on a psbA-trnH, trnL-F, and ITS sequence phylogenetic tree of Saxifraga (redrawn from Gao et al. (2015)). Character state color: palinactinodromous—white; camptodromous—grey; acrodromous— black. Numbers at nodes are MP bootstrap values.
FIGURE 4 in Leaf venation patterns in the genus Saxifraga (Saxifragaceae)
FIGURE 4. Camptodromous venation (A–F) and intermediate forms (G & H). A: S. scardica; B: S. juniperifolia; C: S. aretioides; D & E: S. chionophila; F: S. cochlearis; G: S. aizoides; H: S. biflora.
FIGURE 2. Acrodromous venation. A in Leaf venation patterns in the genus Saxifraga (Saxifragaceae)
FIGURE 2. Acrodromous venation. A: S. gyalana; B: S. wallichiana; C: S. diversifolia; D: S. pasumensis; E: S. giraldiana.
FIGURE 2. A–C. Austroblechnum lehmannii. A. Habit. B. Pinna and venation pattern. C. Rhizome scale. D–F. Austroblechnum organense. D. Habit. E. Pinna pair showing venation. F in The family Blechnaceae (Polypodiopsida) in Brazil: key to the genera and taxonomic treatment of Austroblechnum, Cranfillia, Lomaridium, Neoblechnum and Telmatoblechnum for southern and southeastern Brazil
FIGURE 2. A–C. Austroblechnum lehmannii. A. Habit. B. Pinna and venation pattern. C. Rhizome scale. D–F. Austroblechnum organense. D. Habit. E. Pinna pair showing venation. F. Rhizome scale. (A–C from A. Salino et al. 14054, BHCB; D–F from A.L. Gasper et al. 2658, BHCB).
FIGURE 1. A–C. Austroblechnum andinum. A. Habit. B. Pinna pair showing venation. C. Rhizome scale. D–G. Austroblechnum divergens. D. Habit. E in The family Blechnaceae (Polypodiopsida) in Brazil: key to the genera and taxonomic treatment of Austroblechnum, Cranfillia, Lomaridium, Neoblechnum and Telmatoblechnum for southern and southeastern Brazil
FIGURE 1. A–C. Austroblechnum andinum. A. Habit. B. Pinna pair showing venation. C. Rhizome scale. D–G. Austroblechnum divergens. D. Habit. E. Base of sterile blade showing vestigial pinnae. F. Pinna pair showing venation. G. Rhizome scale. (A–C from A.C. Brade s.n., CESJ0003368; D–G from V.A.O. Dittrich et al. 1807, CESJ).
FIGURE 5. A–C. Lomaridium plumieri. A. Habit. B. Basal pinnae showing venation pattern. C. Rhizome scale. D–F. Neoblechnum brasiliense. D. Habit. E in The family Blechnaceae (Polypodiopsida) in Brazil: key to the genera and taxonomic treatment of Austroblechnum, Cranfillia, Lomaridium, Neoblechnum and Telmatoblechnum for southern and southeastern Brazil
FIGURE 5. A–C. Lomaridium plumieri. A. Habit. B. Basal pinnae showing venation pattern. C. Rhizome scale. D–F. Neoblechnum brasiliense. D. Habit. E. Pair of basal pinnae showing venation. F. Rhizome scale. (A–C from F.S. Souza et al. 613, CESJ0052285; D–F from C. Kozera 3992, CESJ0062336, CESJ0062336_01).
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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