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FIGURE 12 in Generic classification for the Gasteruptiinae (Hymenoptera: Gasteruptiidae) based on a cladistic analysis, with the description of two new Neotropical genera and the revalidation of Plutofoenus Kieffer
FIGURE 12. Mesonotum in dorsal view. a: Plutofoenus chaeturus; b: P. e d w a rd s i; c: P. paraguayensis; d: Spinolafoenus ruficornis; e: Trilobitofoenus alvarengai; f: T. plaumanni; g: T. sericeus. Scale bar: 1.0 mm. Numbers indicate characters and respective synapomorphic states (within brackets).
FIGURE 7. a–b in Generic classification for the Gasteruptiinae (Hymenoptera: Gasteruptiidae) based on a cladistic analysis, with the description of two new Neotropical genera and the revalidation of Plutofoenus Kieffer
FIGURE 7. a–b: Left fore wing (scale bar: 1.0 mm). a: Pseudofoenus infumatus; b: Gasteruption bispinosum; c–h: Left fore wing discal cell (without scale); c: G. bispinosum; d: G. p a r v u m; e: Plutofoenus edwardsi; f: Spinolafoenus ruficornis; g: Trilobitofoenus plaumanni; h: T. alvarengai. Numbers indicate characters and respective synapomorphic
FIGURE 5. a–b in Generic classification for the Gasteruptiinae (Hymenoptera: Gasteruptiidae) based on a cladistic analysis, with the description of two new Neotropical genera and the revalidation of Plutofoenus Kieffer
FIGURE 5. a–b: Trilobitofoenus plaumanni habitus. Numbers indicate characters and respective synapomorphic states (within brackets).
FIGURE 6. a–g in Generic classification for the Gasteruptiinae (Hymenoptera: Gasteruptiidae) based on a cladistic analysis, with the description of two new Neotropical genera and the revalidation of Plutofoenus Kieffer
FIGURE 6. a–g: Head in anterior view. a: Aulacus sp. A; b: Pseudofoenus infumatus; c: Gasteruption bispinosum; d: G. nasutum (without scale); e: Plutofoenus edwardsi; f: Spinolafoenus ruficornis; g: Trilobitofoenus plaumanni; h–i: Left mandible in frontal view (without scale). h: G. bispinosum; i: Plutofoenus edwardsi. Scale bar: 1.0 mm. Numbers indicate characters and respective synapomorphic states (within brackets).
FIGURE 4. a–b in Generic classification for the Gasteruptiinae (Hymenoptera: Gasteruptiidae) based on a cladistic analysis, with the description of two new Neotropical genera and the revalidation of Plutofoenus Kieffer
FIGURE 4. a–b: Spinolafoenus ruficornis habitus. Numbers indicate characters and respective synapomorphic states (within brackets).
FIGURE 2. a–c in Generic classification for the Gasteruptiinae (Hymenoptera: Gasteruptiidae) based on a cladistic analysis, with the description of two new Neotropical genera and the revalidation of Plutofoenus Kieffer
FIGURE 2. a–c: Gasteruption bispinosum, delimitation of the measurements and some characters of cladistic analysis. a: lateral view; b: head in dorsal view; c: propleuron in ventral view; d: Gasteruption nasutum, left hind tarsus. Measurements: Head: i: head length; ii: eye length; iii: malar space height; iv: distance between posterior ocellus and occipital margin (dorsal view); v: distance between posterior ocelli (dorsal view); vi: scape length; vii: pedicel length; viii: first flagellomere length; ix: second flagellomere length; Mesosoma: x: propleuron length; xi: propleuron width (ventral view); xii: mesosoma length (excluding propleuron); xiii: mesosoma height (distance between metasoma insertion and base of middle coxa); xiv: pronotum length (distance between anterior margin of pronotum and tegula); xv: distance between anterior margin of pronotum and metasoma insertion; xvi: hind coxa length; xvii: hind coxa width; xviii: hind femur length; xix: hind tibia length; xx: hind tibia width; xxi: hind first tarsomere length; Metasoma: xxii: metasoma length; xxiii: ovipositor sheath length; xxiv: body length (measurements i+x+xv+xxii). The following ratios were used in the species descriptions: xxiv/xxiii, i/ii, ii/iii, iv/v, viii/vi, viii/vii, viii/ix, xii/xiii, x/xi, x/xiv; xvi/xvii, xix/xx, xix/xviii, xix/xxi, xxii/xii, and xxiii/xxii. Arabic numbers indicate characters and respective synapomorphic states (within brackets).
FIGURE 1 in Generic classification for the Gasteruptiinae (Hymenoptera: Gasteruptiidae) based on a cladistic analysis, with the description of two new Neotropical genera and the revalidation of Plutofoenus Kieffer
FIGURE 1. Most parsimonious tree for the cladistic analysis of Gasteruptiinae (length=116 steps; CI=0.448, RI=0.806). Character numbers are above circles and respective synapomorphic states are below circles; black circles indicate exclusive synapomorphies and white circles indicate shared synapomorphies or reversions. Absolute Bremer support values are given between parentheses. AT: Afrotropical; AU: Australasian-continental; AU-NG: Australasian-Papua- New Guinea; NA: Nearctic; NT: Neotropical; PA: Paleartic; OR: Oriental.
FIGURE 13 in Generic classification for the Gasteruptiinae (Hymenoptera: Gasteruptiidae) based on a cladistic analysis, with the description of two new Neotropical genera and the revalidation of Plutofoenus Kieffer
FIGURE 13. Mesosoma in lateral view. a: Gasteruption bispinosum; b: G. guildingi; c: Plutofoenus chaeturus; d: P. edwardsi, e: P. paraguayensis; f: Spinolafoenus ruficornis; g: Trilobitofoenus alvarengai; h: T. plaumanni; i: T. sericeus. Scale bar: 1.0 mm. Lobes of pronotum: vl: ventral lobe; dl: dorsal lobe; ll: lateral lobe. Numbers indicate characters and respective synapomorphic states (within brackets).
FIGURE 11 in Generic classification for the Gasteruptiinae (Hymenoptera: Gasteruptiidae) based on a cladistic analysis, with the description of two new Neotropical genera and the revalidation of Plutofoenus Kieffer
FIGURE 11. Head in dorsal and lateral views. a–b: Plutofoenus chaeturus; c–d: P. e d w a rd s i; e–f: P. paraguayensis; g–h: Spinolafoenus ruficornis; i–j: Trilobitofoenus alvarengai; k–l: T. plaumanni; m–n: T. sericeus. Scale bar: 1.0 mm. Numbers indicate characters and respective synapomorphic states (within brackets).
FIGURE 1 in A cladistic analysis and classification of the subfamily Bembicinae (Hymenoptera: Crabronidae), with a key to the genera
FIGURE 1. (Completed). Strict consensus tree (344 steps, consistency index = 27, retention index = 77) of 18800 equally parsimonious trees (each with 302 steps, consistency index = 31, retention index = 81). Character-state changes optimized as unambiguous (filled circles = unreversed apomorphies; empty circles = homoplasious apomorphies).
FIGURE 1 in A cladistic analysis and classification of the subfamily Bembicinae (Hymenoptera: Crabronidae), with a key to the genera
FIGURE 1. (Continued). Strict consensus tree (344 steps, consistency index = 27, retention index = 77) of 18800 equally parsimonious trees (each with 302 steps, consistency index = 31, retention index = 81). Character-state changes optimized as unambiguous (filled circles = unreversed apomorphies; empty circles = homoplasious apomorphies).
FIGURE 1 in A cladistic analysis and classification of the subfamily Bembicinae (Hymenoptera: Crabronidae), with a key to the genera
FIGURE 1. Strict consensus tree (344 steps, consistency index = 27, retention index = 77) of 18800 equally parsimonious trees (each with 302 steps, consistency index = 31, retention index = 81). Character-state changes optimized as unambiguous (filled circles = unreversed apomorphies; empty circles = homoplasious apomorphies).
FIGURE 26 in Two new species of Geodiscelis Michener & Rozen (Hymenoptera: Apoidea: Colletidae) with a phylogenetic analysis and subgeneric classification of the genus
FIGURE 26. Phylogeny for xeromelissine genera related to Geodiscelis and for the species of Geodiscelis. Filled in squares represent unique synapomorphies, open squares indicate homoplasious apomorphies. Small numbers above and below the squares indicate the character number and state, respectively, as given in the appendix. Large numbers above and below the internodes are GC values and BS percentages respectively, see text for further explanation.
FIGURES 27−35 in Two new species of Geodiscelis Michener & Rozen (Hymenoptera: Apoidea: Colletidae) with a phylogenetic analysis and subgeneric classification of the genus
FIGURES 27−35. Figures illustrating phylogenetic character states (in brackets), see appendix 1 for details. 27. Geodiscelis thaumaskelos male metasoma (8-1 and 9-1), 28. G. thaumaskelos mesoscutum to show surface sculpture (14-0, 15-0), 29. G. nazcalinea sp. nov. mesoscutum to show surface sculpture (14-1, 15-1), 30. G. megacephala mesoscutum to show surface sculpture (15-2), 31. Patagonicola aenigma head side view to show long compound eye (31-0), 32. G. megacephala S6 to show absence of apical angulation or spine (48-0), 33. Patagonicola aenigma mesotarsus to show absence of rake (62-0); 34. Xeromelissa wilmattae mesotarsus to show weakly developed rake (62-1); 35. G. longiceps to show strongly developed mesotarsal rake (62-2). Scale bar = 1mm for Figs. 27−31, 33−35. Scale bar = 0.5mm for Fig. 32.
FIGURES 36−37 in Two new species of Geodiscelis Michener & Rozen (Hymenoptera: Apoidea: Colletidae) with a phylogenetic analysis and subgeneric classification of the genus
FIGURES 36−37. Geodiscelis thaumaskelos mesosomal venter to show sexual dimorphism in metasternum. 36. Male; 37. Female. Scale bar = 0.5mm. Note that the magnification differs between the two images.
FIGURES 16−20 in Two new species of Geodiscelis Michener & Rozen (Hymenoptera: Apoidea: Colletidae) with a phylogenetic analysis and subgeneric classification of the genus
FIGURES 16−20. Head, side view of males of Geodiscelis megacephala, G. thaumaskelos, G. nazcalinea sp. nov., G. phisquiri sp. nov. and G. longiceps respectively. Scale bar = 1mm.
FIGURES 21−25. Geodiscelis 21 and 22 in Two new species of Geodiscelis Michener & Rozen (Hymenoptera: Apoidea: Colletidae) with a phylogenetic analysis and subgeneric classification of the genus
FIGURES 21−25. Geodiscelis 21 and 22: metasoma side views to show development of sternal scopa in G. megacephala and it reduced nature in G. thaumaskelos. 23 and 24. Apex of metatibiae to show metatibial spurs, two in Fig. 23 of G. megacephala and one in Fig. 24 of G. thaumaskelos. 25. G. thaumaskelos male side view to show enormously enlarged metafemur, metatibia and metabasitarsus. Scale bar = 1mm.
FIGURES 10−15 in Two new species of Geodiscelis Michener & Rozen (Hymenoptera: Apoidea: Colletidae) with a phylogenetic analysis and subgeneric classification of the genus
FIGURES 10−15. Geodiscelis phisquiri sp. nov., male holotype. 10. Habitus, side view, 11. head, frontal view, 12. S6, 13. S7, 14. S8, 15. genital capsule. Scale bar = 1mm for Figs. 10, 11 and 15. Scale bar = 0.5mm for Figs. 12−14.
FIGURES 1−9 in Two new species of Geodiscelis Michener & Rozen (Hymenoptera: Apoidea: Colletidae) with a phylogenetic analysis and subgeneric classification of the genus
FIGURES 1−9. Geodiscelis nazcalinea sp. nov. 1−8. Male, 9. Female. 1. Habitus, side view, 2. head, frontal view, 3. head, side view, 4. proctiger, 5. S6, 6. S7, 7. S8, 8. genital capsule, 9 habitus, dorsal view. Scale bar = 1mm for Figs. 1−3 and 9. Scale bar = 0.5mm for Figs. 4−8. Figs. 1–3 are of the holotype, 4–9 are from paratypes.
multi class dataset_Dipper Throated Optimization with Deep Convolutional Neural Network-based Crop Classification on Remote Sensing Image Analysis
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OpenNeuro
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