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1,063 results for “fig wasp”
Figs 12–16. Male genital capsule. 12 in New records of cuckoo wasps (Hymenoptera, Chrysididae) from Russia with taxonomic notes
Figs 12–16. Male genital capsule. 12 – Chrysis inaequalis Dahlbom, ♂ (Italy, Aosta Valley); 13 – C. poetica Semenov, ♂ (Karachayevo-Cherkess Rep., Teberda Nat. Res.); 14 – C. mysticalis Linsenmaier (Spain, Girona); 15 – C. placida Mocsáry, ♂ (Orenburg Prov., Semenovka); 16 – C. sapphirina Semenov, ♂ (Tajikistan, Kondara). Scale bar: 1.0 mm.
Figs 17–22. Metasomal tergum 3. 17 in New records of cuckoo wasps (Hymenoptera, Chrysididae) from Russia with taxonomic notes
Figs 17–22. Metasomal tergum 3. 17 – Chrysis inaequalis Dahlbom, ♂ (Italy, Emilia- Romagna); 18 – C. poetica Semenov, ♂ (Stavropol Terr., Mineralnye Vody); 19 – C.
Fig. 7 in Preliminary revision of the Indian cuckoo wasp genera Trichrysis Lichtenstein, 1876 and Chrysidea Bischoff, 1910, with description of a new species (Hymenoptera, Chrysididae)
Fig. 7. Species of Trichrysis Lichtenstein, 1876, shape of black spots on S2. A. T. inops (Gribodo, 1884). B. T. imperiosa (Smith, 1874). C. T. lusca (Fabricius, 1804). D. T. poseidonia sp. nov. E. T. lanka (Bingham, 1903). F. T. hexapholis Bohart, 1988 (modified from Bohart 1988). G. T. scioensis (Gribodo, 1879). H. T. tonkinensis (Mocsáry, 1914). I. T. triacantha (Mocsáry, 1889). J. T. excisifrons (Mocsáry, 1912).
Fig. 9. A in Preliminary revision of the Indian cuckoo wasp genera Trichrysis Lichtenstein, 1876 and Chrysidea Bischoff, 1910, with description of a new species (Hymenoptera, Chrysididae)
Fig. 9. A. Chrysidea furiosa, ♀, (RMNH), head in frontal view. B. Chrysidea mendicalis, ♀, holotype (OUMNH), apex of T3 in dorsal view. C. Chrysidea falsa, ♀, holotype (SCAU), apex of T3 in dorsal view. Scale bars: 0.5 mm.
Fig. 8 in Preliminary revision of the Indian cuckoo wasp genera Trichrysis Lichtenstein, 1876 and Chrysidea Bischoff, 1910, with description of a new species (Hymenoptera, Chrysididae)
Fig. 8. Chrysidea mendicalis (Cameron, 1897), ♀, holotype (OUMNH). A. Habitus, lateral view. B. Head, frontal view. C. Mesosoma, dorsal view. D. Metasoma, dorsal view. E. T3, posterior view. F. Metasoma, ventral view.
Fig. 6 in Preliminary revision of the Indian cuckoo wasp genera Trichrysis Lichtenstein, 1876 and Chrysidea Bischoff, 1910, with description of a new species (Hymenoptera, Chrysididae)
Fig. 6. Madayipara, Kannur, Kerala, type locality of Trichrysis poseidonia sp. nov. A. Madayipara, laterite plateau. B. Collecting place on dry wall.
Fig. 5 in Preliminary revision of the Indian cuckoo wasp genera Trichrysis Lichtenstein, 1876 and Chrysidea Bischoff, 1910, with description of a new species (Hymenoptera, Chrysididae)
Fig. 5. Trichrysis poseidonia sp. nov., ♀, holotype (NHME). A. Habitus, dorsal view. B. Habitus, lateral view. C. Head, frontal view. D. Metasoma, postero-lateral view. E. Metasoma, dorsal view. F. Metasoma, ventral view. Scale bars: 1.0 mm.
Fig. 3. Chrysis spectrum Wickar, 1908 in Preliminary revision of the Indian cuckoo wasp genera Trichrysis Lichtenstein, 1876 and Chrysidea Bischoff, 1910, with description of a new species (Hymenoptera, Chrysididae)
Fig. 3. Chrysis spectrum Wickar, 1908, ♀, lectotype (NHMUK). A. Habitus, lateral view. B. Habitus, posterior view. Scale bars: 1.0 mm.
Fig. 4 in Preliminary revision of the Indian cuckoo wasp genera Trichrysis Lichtenstein, 1876 and Chrysidea Bischoff, 1910, with description of a new species (Hymenoptera, Chrysididae)
Fig. 4. Trichrysis lusca (Fabricius, 1804), ♀, holotype (HNHM). A. Habitus, lateral view. B. Mesosoma and T1, dorso lateral view. C. Habitus, dorsal view. D. Metasoma, posterior view. Scale bars: 1.0 mm.
Fig. 1 in Preliminary revision of the Indian cuckoo wasp genera Trichrysis Lichtenstein, 1876 and Chrysidea Bischoff, 1910, with description of a new species (Hymenoptera, Chrysididae)
Fig. 1. Trichrysis bengalensis (Mocsáry, 1889), ♀, holotype (HNHM). A. Habitus, lateral view. B. Head, frontal view. C. Mesosoma, dorsal view. D. Head and mesosoma, lateral view. E. Metasoma, dorsal view. F. Metasoma, lateral view. Scale bars: 1.0 mm.
Fig. 11 in Catalogue of type specimens of braconid wasps (Hymenoptera: Braconidae) deposited in the National Museum, Prague, Czech Republic
Fig. 11. Holotype of Apanteles murinanae Čapek & Zwölfer, 1957 with its labels (scale bar = 2.5 mm).
Fig. 34 in Catalogue of type specimens of braconid wasps (Hymenoptera: Braconidae) deposited in the National Museum, Prague, Czech Republic
Fig. 34. Characteristic determination labels used by Maximilian Fischer which are under the type material deposited in NMPC.
Fig. 33 in Catalogue of type specimens of braconid wasps (Hymenoptera: Braconidae) deposited in the National Museum, Prague, Czech Republic
Fig. 33. Different types of locality labels used by P. Starý in 1950s and locality label used by A. Hoffer with paratype labels by A. Taeger.
Fig. 8 in Catalogue of type specimens of braconid wasps (Hymenoptera: Braconidae) deposited in the National Museum, Prague, Czech Republic
Fig. 8. Paratype of Ropalophorus wisconsinensis Shenefelt, 1960 with its labels (scale bar = 2.5 mm).
Fig. 1 in Surprising morphological diversity in ceraphronid wasps revealed by a distinctive new species of Aphanogmus (Hymenoptera: Ceraphronoidea)
Fig. 1. Aphanogmus kretschmanni Moser sp. nov.; holotype, ♀ (SMNS_Hym_Cer_000227). a. Habitus, lateral view. b. Habitus, dorsal view. Scale bars = 200 µm.
Fig. 3 in Surprising morphological diversity in ceraphronid wasps revealed by a distinctive new species of Aphanogmus (Hymenoptera: Ceraphronoidea)
Fig. 3. Digital reconstruction of A. kretschmanni Moser sp. nov. based on synchrotron micro-CT; holotype, ♀ (SMNS_Hym_Cer_000227). a–d. Habitus in left (a), right (b), ventral (c) and dorsal (d) aspect. e. Left antenna. f. Left foreleg. g. Left midleg. h. Left hindleg. i–k. Ovipositor in left (i), ventral (j) and dorsal (k) aspect. Abbreviations: 1vf = first valvifer; 1vv = first valvulae; asf = anterior section of dorsal flange of the second valvifer; bl = basal line of the second valvifer; bulb = bulbous anterior area of the dorsal valve; MPMM = metanoto-propodeo-metapecto-mesopectal complex; res = venom gland reservoir of the second valvifer; S7 = 7th metasomal sternite. Scale bars: a–h = 0.5 mm; i–k = 250 µm.
Fig. 2 in Surprising morphological diversity in ceraphronid wasps revealed by a distinctive new species of Aphanogmus (Hymenoptera: Ceraphronoidea)
Fig. 2. Detailed images of A. kretschmanni Moser sp. nov. (a, d = SMNS_Hym_Cer_000466; b = SMNS_Hym_Cer_000465; c = SMNS_Hym_Cer_000469). a. Wing interference patterns of left fore- and hindwing. b. Fore- and hindwing. c. CLSM image of ovipositor with sclerites in red. Abbreviations: 1vf = 1st valvifer; 1vv = 1st valvulae; ang = anterior angle of the 1st valvifer; asf = anterior section of the dorsal flange of the second valvifer; bl = basal line of the second valvifer; bulb = bulbous anterior area of the dorsal valve; iva = intervalvifer articulation; tva = tergo-valvifer articulation. d. Waterston's evaporatorium on T6. Abbreviations: at cx = acrotergal calyx; ta = tergal apodeme. Scale bars: a–b = 200 µm; c–d = 50 µm.
Figure 3 in Community structure and specialization in fig wasps (Hymenoptera: Chalcidoidea) in a region of Cerrado
Figure 3 Hierarchical grouping (UPGMA) of the Jaccard distance matrix of the presence-absence data of fig wasps in the sampled crops.
Figure 2 in Community structure and specialization in fig wasps (Hymenoptera: Chalcidoidea) in a region of Cerrado
Figure 2 Bipartite quantitative trophic network associating wasps with their fig trees. Rectangles represent the species of wasps (upper level) and fig trees (lower level). Gray strokes represent the presence of interaction. A. Abundance calculated as the average number of individuals per fig analyzed. B Total wasps divided by the number of pistillate flowers. The colors of the upper level indicate the natural history: blue: pollinator; red:early gall-inducer; orange: receptive phase gall-inducer; purple: Kleptoparasite/parasitoid. An = Anidarnes; He = Heterandrium; Ic = Idarnes groupcarme; If = Idarnes groupflavicollis; Ii = Idarnes groupincertus; Cr = Critogaster; Pe = Pegoscapus; Te = Tetrapus; Ph = Physothorax; Sy = Sycophila; Tr = Torymidae. Species: Aeem = Aepocerus emarginatus; Andi = Anidarnes dissidens; Hefl = Heterandrium flavum; Iidi = Idarnes dimorphicus; Iffl = Idarnes flavicollis; Iima = Idarnes maximus; Peae = Pegoscapus aerumnosus.
Figure 4 in Community structure and specialization in fig wasps (Hymenoptera: Chalcidoidea) in a region of Cerrado
Figure 4 Histograms comparing the index values obtained in null models with the observed values (dashed lines). HL = higher level (wasps); LL = lower level (plants); † null models for connectance obtained using Patefield algorithm.
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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)
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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.