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142 results for “paraphyly”
Fig. 49 in Polybia, Paraphyly, and Polistine Phylogeny
Fig. 49. Consensus tree for eight cladograms resulting from analysis of the adult character matrix in table 1.
Figs. 37–38. Protonectarina sylveirae. 37 in Polybia, Paraphyly, and Polistine Phylogeny
Figs. 37–38. Protonectarina sylveirae. 37. Prothorax in frontal view. 38. Metasomal tergum I in dorsal view. Fig. 39. Polybia rejecta, prothorax in frontal view. Fig. 40. Brachygastra lecheguana, metasomal tergum I in dorsal view.
Figs. 45– 48. Metasomal tergum I in Polybia, Paraphyly, and Polistine Phylogeny
Figs. 45– 48. Metasomal tergum I in dorsal view. 45. Polybia rejecta. 46. Polybia dimidiata. 47. Polybia jurinei. 48. Polybia nidulatrix.
Figs. 29 –32 in Polybia, Paraphyly, and Polistine Phylogeny
Figs. 29 –32. Propodeum in posterior view. 29. Chartergus globiventris. 30. Synoecoides depressus. 31. Polybia emaciata. 32. Polybia liliacea.
Fig. 51. Consensus tree for 13 in Polybia, Paraphyly, and Polistine Phylogeny
Fig. 51. Consensus tree for 13 cladograms resulting from simultaneous analysis of the combined character data in tables 1–3.
Figs. 33–36 in Polybia, Paraphyly, and Polistine Phylogeny
Figs. 33–36. Propodeum in posterior view. 33. Polybia nidulatrix. 34. Polybia rejecta. 35. Polybia jurinei. 36. Polybia bifasciata.
Figs. 21–24 in Polybia, Paraphyly, and Polistine Phylogeny
Figs. 21–24. Mesosoma in lateral view. 21. Synoecoides depressus. 22. Polybia liliacea. 23. Polybia bifasciata. 24. Polybia rejecta.
Fig. 17 in Polybia, Paraphyly, and Polistine Phylogeny
Fig. 17. Polybia jurinei. scutum in dorsal view. Figs. 18–19. Mesosoma in lateral view. 18. Epipona niger. 19. Brachygastra lecheguana. Fig. 20. Brachygastra lecheguana. dorsum of mesosoma in lateral view.
Figs. 13–16 in Polybia, Paraphyly, and Polistine Phylogeny
Figs. 13–16. Head in lateral view. 13. Polybia rejecta. 14. Polybia jurinei. 15. Polybia liliacea (Fabricius). 16. Polybia bifasciata de Saussure.
Figs. 9 –12 in Polybia, Paraphyly, and Polistine Phylogeny
Figs. 9 –12. Head in lateral view. 9. Protonectarina sylveirae. 10. Synoecoides depressus. 11. Brachygastra lecheguana (Latreille). 12. Polybia chrysothorax.
Figs. 41– 44. Metasomal tergum I in Polybia, Paraphyly, and Polistine Phylogeny
Figs. 41– 44. Metasomal tergum I in dorsal view. 41. Epipona niger. 42. Polybia bifasciata. 43. Synoecoides depressus. 44. Polybia liliacea.
Figs. 5–8 in Polybia, Paraphyly, and Polistine Phylogeny
Figs. 5–8. Head in frontal view. 5. Polybia dimidiata. 6. Polybia chrysothorax (Lichtenstein). 7. Polybia nidulatrix Bequaert. 8. Polybia richardsi Cooper.
Figs. 1–4 in Polybia, Paraphyly, and Polistine Phylogeny
Figs. 1–4. Head in frontal view. 1. Synoecoides depressus Ducke. 2. Epipona niger (Brèthes). 3. Protonectarina sylveirae (de Saussure). 4. Polybia procellosa Zavattari.
Fig. 50. Consensus tree for 79 in Polybia, Paraphyly, and Polistine Phylogeny
Fig. 50. Consensus tree for 79 strictly supported cladograms resulting from analysis of the larval character matrix in table 2, excluding the three terminals that have all missing values.
Figs. 25–28 in Polybia, Paraphyly, and Polistine Phylogeny
Figs. 25–28. Mesosoma in lateral view. 25. Polybia dimidiata. 26. Polybia richardsi. 27. Polybia emaciata. 28. Polybia jurinei.
Fig. 53 in Polybia, Paraphyly, and Polistine Phylogeny
Fig. 53. Cladogram resulting from implied weighting of the combined character data. Plotting conventions as in fig. 52.
Fig. 52 in Polybia, Paraphyly, and Polistine Phylogeny
Fig. 52. Cladogram resulting from successive weighting of the combined character data. Characters have been optimized with only unambiguous changes plotted. Character numbers are above the hashmarks; state changes are shown below, with the respective primitive and derived conditions separated by a greater than sign. Filled hashmarks denote uncontroverted changes whereas open hashmarks indicate homoplasy in the character.
Figure 3. The phylogenetic relationship between G in The Complete Mitochondrial Genome of Glischropus bucephalus (Vespertilionidae; Chiroptera) Provides New Evidence for Pipistrellus Paraphyly
Figure 3. The phylogenetic relationship between G. bucephalus and the other Pipistrellini species is inferred by maximum likelihood analysis based on cytb sequences. The numbers in the branches show the bootstrap values. Vespertilio species are used as outgroups.
Figure 1 in The Complete Mitochondrial Genome of Glischropus bucephalus (Vespertilionidae; Chiroptera) Provides New Evidence for Pipistrellus Paraphyly
Figure 1. Map of the G. bucephalus mitogenome. Gray color indicates the PCG regions; red color— tRNAs; yellow color—rRNAs. The heavy strand in the outer circle encodes 28 genes, whereas 9 genes are encoded in the light strand in the inner circle.
Figure 2. The phylogenetic relationship between G in The Complete Mitochondrial Genome of Glischropus bucephalus (Vespertilionidae; Chiroptera) Provides New Evidence for Pipistrellus Paraphyly
Figure 2. The phylogenetic relationship between G. bucephalus and the other Vespertilioninae species is inferred by the maximum likelihood analysis based on the concatenated protein-coding gene sequences. The bootstrap values (indicated by the slashes on the branches) correspond to the trees constructed on full sequences (three codon positions), the first two codon positions (third positions omitted), and two positions with the exclusion of the Nd6 gene. The asterisks mark branches that in the second or third case have a different topology than shown. Myotis species are used as outgroups.
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