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443 results for “Cicadoidea”
Fig. 15 in Descriptions de trois espèces nouvelles de Cigales néocalédoniennes (Homoptera, Cicadoidea, Tibicinidae)
Fig. 15 à 18. - Ueana stasserae, n. sp.; 15 =opercule gauche; 16 = fémur antérieur gauche; 17 et 18 = segments génitaux.
Fig. 3 in Descriptions de trois espèces nouvelles de Cigales néocalédoniennes (Homoptera, Cicadoidea, Tibicinidae)
Fig. 3 à 6. - Kanakia parva, n. sp.; 3 = opercule gauche; 4 = fémur antérieur gauche; 5 et 6 = segments génitaux.
Fig. 9 in Descriptions de trois espèces nouvelles de Cigales néocalédoniennes (Homoptera, Cicadoidea, Tibicinidae)
Fig. 9 à 12. - Ueanafungigera, n. sp.; 9 = opercule gauche; 10 = fémur antérieur gauche; Il et 12 = segments génitaux.
Fig. 59 in An Appraisal of the Higher Classification of Cicadas (Hemiptera: Cicadoidea) with Special Reference to the Australian Fauna
Fig. 59 (continued on facing page). One of the 634 most parsimonious trees showing names of transformations for basal nodes. These nodes and characters transformations are identical for all 634 trees. Numbered nodes relate to discussion in the text. Proposed families and subfamilies are named at their respective nodes. Black bars = nonhomoplasious forward change; grey bars = homoplasious forward change; white bars = reversal (whether homoplasious or not). Numbered nodes refer to discussion in text.
Fig. 60. Character transformations within clade 4 in An Appraisal of the Higher Classification of Cicadas (Hemiptera: Cicadoidea) with Special Reference to the Australian Fauna
Fig. 60. Character transformations within clade 4 of the same tree shown in Fig. 59. Numbered nodes relate to discussion in the text. Note that resolution within this clade differs little from the strict consensus tree shown in Fig. 56. Tribal groupings are those proposed under this study. Black bars = non-homoplasious forward change; grey bars = homoplasious forward change; white bars = reversal (whether homoplasious or not).
Fig. 58 in An Appraisal of the Higher Classification of Cicadas (Hemiptera: Cicadoidea) with Special Reference to the Australian Fauna
Fig. 58. Strict consensus tree showing current tribal placements for genera, together with their proposed tribal placements under the revised classifications derived from this study. Numbered nodes are those referred to in the text.
Fig. 62. Character transformations within clade 13 in An Appraisal of the Higher Classification of Cicadas (Hemiptera: Cicadoidea) with Special Reference to the Australian Fauna
Fig. 62. Character transformations within clade 13 of the same tree shown in Fig. 59. Note that resolution within this clade differs little from the strict consensus tree shown in Fig. 56. Numbered nodes relate to discussion in the text. The tribal grouping is that proposed under this study. Black bars = nonhomoplasious forward change; grey bars = homoplasious forward change; white bars = reversal (whether homoplasious or not).
Figs. 54–55 in An Appraisal of the Higher Classification of Cicadas (Hemiptera: Cicadoidea) with Special Reference to the Australian Fauna
Figs. 54–55. Cyclochila australasiae: (54) stridulatory file on underside of lateral angles of pronotal collar; (55) stridulatory scraper on fore wing base.
Fig. 56 in An Appraisal of the Higher Classification of Cicadas (Hemiptera: Cicadoidea) with Special Reference to the Australian Fauna
Fig. 56. Strict consensus of the 634 most parsimonious trees with all characters unordered and equally weighted. Numbered nodes (bold print) relate to discussion in the text. Other numbers at nodes are jackknife values from 1000 jackknife replications (above) and T-PTP scores from 100 replications (below). Nodes lacking jackknife or bootstrap percentages fall below 50%.
Fig. 57 in An Appraisal of the Higher Classification of Cicadas (Hemiptera: Cicadoidea) with Special Reference to the Australian Fauna
Fig. 57. Strict consensus tree showing current subfamily placements for genera, together with their proposed subfamily placements under the revised classification derived from this study. Numbered nodes are those referred to in the text.
Fig. 52. Character 85 in An Appraisal of the Higher Classification of Cicadas (Hemiptera: Cicadoidea) with Special Reference to the Australian Fauna
Fig. 52. Character 85. Male reproductive system, accessory glands, states 0–2: (0) absent; (1) short; (2) long.
Fig. 51. Character 79 in An Appraisal of the Higher Classification of Cicadas (Hemiptera: Cicadoidea) with Special Reference to the Australian Fauna
Fig. 51. Character 79. Apical part of theca, states 0 and 1: (0) without leaf-like lobes; (1) with a pair of leaf-like lateral lobes.
Fig. 53. Character 86 in An Appraisal of the Higher Classification of Cicadas (Hemiptera: Cicadoidea) with Special Reference to the Australian Fauna
Fig. 53. Character 86. Female reproductive system, accessory glands of common oviduct, states 0–2: (0) absent; (1) short; (2) long.
Fig. 49. Character 71. Basal plate attachment, states 0–2 in An Appraisal of the Higher Classification of Cicadas (Hemiptera: Cicadoidea) with Special Reference to the Australian Fauna
Fig. 49. Character 71. Basal plate attachment, states 0–2: (0) entirely membranous, loosely attached; (1) completely fused with no mobility; (2) with a functional membranous "hinge".
Fig. 48. Character 70 in An Appraisal of the Higher Classification of Cicadas (Hemiptera: Cicadoidea) with Special Reference to the Australian Fauna
Fig. 48. Character 70. Aedeagal basal plate in lateral view showing ventral rib, states 0 and 1: (0) completely fused with basal plate; (1) rod-like, suspended with attachment only at ends.
Fig. 61. Character transformations within clade 7 in An Appraisal of the Higher Classification of Cicadas (Hemiptera: Cicadoidea) with Special Reference to the Australian Fauna
Fig. 61. Character transformations within clade 7 of the same tree shown in Fig. 59. Numbered nodes relate to discussion in the text. Note that resolution within this clade differs little from the strict consensus tree shown in Fig. 56. Tribal groupings are those proposed under this study. Black bars = non-homoplasious forward change; grey bars = homoplasious forward change; white bars = reversal (whether homoplasious or not).
Fig. 50. Character 75. Thecal pseudoparameres, states 0–3 in An Appraisal of the Higher Classification of Cicadas (Hemiptera: Cicadoidea) with Special Reference to the Australian Fauna
Fig. 50. Character 75. Thecal pseudoparameres, states 0–3: (0) dorsal of theca, originating closer to theca than its base, always much longer than theca; (1) dorsal of theca, originating near thecal base; (2) entirely lateral of theca, filiform or flat and usually very long; (3) lateral of theca, dorsally fused to near their apices.
Fig. 47. Character 68 in An Appraisal of the Higher Classification of Cicadas (Hemiptera: Cicadoidea) with Special Reference to the Australian Fauna
Fig. 47. Character 68. Aedeagal basal plate in dorsal view (apex at top), states 0–9: (0) parallel-sided, basal two-thirds without sclerotization except laterally; (1) apically broadened with "ears"; (2) basally divided into two discs, apical arms lobe-like; (3) deeply divided into two arms; (4) midline deeply furrowed, apically square or bilobed (dorsolateral view); (5) short, broad, usually rounded; (6) T-shaped; (7) Y-shaped; (8) broad, triangular with anterior angles elongate; (9) broad, apically broadly bilobed.
Fig. 43. Character 65. Uncal aedeagal restraint, states 0–3 in An Appraisal of the Higher Classification of Cicadas (Hemiptera: Cicadoidea) with Special Reference to the Australian Fauna
Fig. 43. Character 65. Uncal aedeagal restraint, states 0–3: (0) by tubular encapsulation on ventral surface of uncus; (1) by membrane prior to ventral surface of uncus; (2) by claspers; (3) by apical slit in uncus.
Fig. 46. Character 67 in An Appraisal of the Higher Classification of Cicadas (Hemiptera: Cicadoidea) with Special Reference to the Australian Fauna
Fig. 46. Character 67. Aedeagus basal plate in lateral view, states 0–4: (0) right-angled at distal end; (1) undulated, weakly depressed on dorsal midline; (2) sharply turned through more than 90°; (3) downturned at distal end; (4) basally very narrow becoming broad apically.
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OpenNeuro
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