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231 results for “Pseudophyllinae”
FIGURE 4, A – L. Chloracantha lampra Hebard. A, adult female. B in Studies in Australian Katydids: A Review of the Australian Snub-nosed Sylvan katydids (Tettigoniidae; Pseudophyllinae; Simoderini)
FIGURE 4, A – L. Chloracantha lampra Hebard. A, adult female. B, adult male lateral view, note colour of ventral margin of lateral pronotal lobe and tegminal spotting. C, head and pronotum. D, head. E, male tegmen, note stridulatory region. F, stridulatory file. G, male subgenital plate. H, tip of ovipositor. I, entire ovipositor. J, male titillator, note sheath. K, female subgenital plate, ventral view. L, female subgenital plate, lateral view.
FIGURE 3, A – D. Chloracantha lampra Hebard. A in Studies in Australian Katydids: A Review of the Australian Snub-nosed Sylvan katydids (Tettigoniidae; Pseudophyllinae; Simoderini)
FIGURE 3, A – D. Chloracantha lampra Hebard. A, holotype male, dorsal view. B, holotype male, lateral view. C, adult male, head and pronotum dorsal view. D, male tip of abdomen.
FIGURE 2 in Studies in Australian Katydids: A Review of the Australian Snub-nosed Sylvan katydids (Tettigoniidae; Pseudophyllinae; Simoderini)
FIGURE 2. Male and female Chloracantha lampra Hebard. illustrating both size discrepancy and the habit of males riding on females even when not in copulation. J. Hasenpusch photo.
FIGURE 16. A – C in Studies in Australian Katydids: A Review of the Australian Snub-nosed Sylvan katydids (Tettigoniidae; Pseudophyllinae; Simoderini)
FIGURE 16. A – C. Mastigaphoides vaginalis Rentz, Su, Ueshima, sp. nov. A, last instar female. B, adult female abroad at night. C, adult female illustrating features of prnotum and colour.
FIGURE 10, A – I in Studies in Australian Katydids: A Review of the Australian Snub-nosed Sylvan katydids (Tettigoniidae; Pseudophyllinae; Simoderini)
FIGURE 10, A – I. Tallebudgeroptera spininota Rentz, Su, Ueshima, gen. et sp. nov. A, dorsal view pronotum, holotype female. All female structures: B, lateral view pronotum. C, right foreleg. D, sternum. E, subgenital plate. F, subgenital plate. G, supra-anal plate. H, serrated portion of ovipositor. I, entire ovipositor.
FIGURE 8. A – H in Studies in Australian Katydids: A Review of the Australian Snub-nosed Sylvan katydids (Tettigoniidae; Pseudophyllinae; Simoderini)
FIGURE 8. A – H. Chloracantha garradunga Rentz, Su, Ueshima, sp. nov. A, fastigium of vertex, adult male. B, male stridulatory region, left tegmen. C, head and pronotum, adult male. D, male subgenital plate, lateral view. E, male subgenital plate, dorsal view. F, male tip of abdomen, lateral view. G, male titillator. H, egg.
FIGURE 13, A – I in Studies in Australian Katydids: A Review of the Australian Snub-nosed Sylvan katydids (Tettigoniidae; Pseudophyllinae; Simoderini)
FIGURE 13, A – I. Narea elongata (Brunner), comb. nov. A, head and pronotum. B, lateral view pronotum. C, frons and frontal fastigium. D, base of tegmen. E, fore femur. F, female supra-anal plate. G, female subgenital plate. H, sternum. I, ovipositor.
FIGURE 27 in Studies in Australian Katydids: A Review of the Australian Snub-nosed Sylvan katydids (Tettigoniidae; Pseudophyllinae; Simoderini)
FIGURE 27. Habitats where Australian simoderine katydids are likely to be found. A, Gap Ck., Qld. Mastigaphoides vaginalis, M. tuberculatus probably occur at this locality since they are known from nearby Shipton's Flat. Searching the understorey shrubbery after dark should reveal the katydids. B, Lake Barrine, Qld. Chloracantha lampra and C. nigrolinea as well as Mastigaphoides tuberculatus have been found in the understorey vegetation at this site. C, Near Picton Lakes, NSW. Searching the understory growth along the forest edge during the summer months may reveal the presence of the elusive Narea elongata, hitherto known only from the vicinity of the Jenolan Caves, NSW.
FIGURE 15, A – H in Studies in Australian Katydids: A Review of the Australian Snub-nosed Sylvan katydids (Tettigoniidae; Pseudophyllinae; Simoderini)
FIGURE 15, A – H. Mastigaphoides lewisensis Rentz, Su, Ueshima, sp. nov. A, fastigium of vertex and head, holotype male. B, pronotum, holotype male. C, lateral lobe pronotum, holotype male. D, sternum, holotype male. E, stridulatory region, holotype male. F, mirror region, holotype male. G, tip of abdomen, holotype male. H, subgenital plate, holotype male.
FIGURE 26 in Studies in Australian Katydids: A Review of the Australian Snub-nosed Sylvan katydids (Tettigoniidae; Pseudophyllinae; Simoderini)
FIGURE 26. Chromosome complements of Mastigaphoides haffneri DCFR 83 – 159: Condong Falls, Whian Whian State For., NNE of Lismore, NSW, 18. xi. 1983 (D. C. F. Rentz, M. S. Harvey, Stop 56). 2 n = 35. The karyotype consists of 6 metacentrics and 28 telocentric autosomes and a large metacentric X.
FIGURE 20 in Studies in Australian Katydids: A Review of the Australian Snub-nosed Sylvan katydids (Tettigoniidae; Pseudophyllinae; Simoderini)
FIGURE 20. Tegmina of simoderine species. A, Chloracantha lampra, male Mt Lewis. B, same, female, Mt Lewis, Qld., C, C. angularis Rentz, Su, Ueshima, sp nov., male. D, same species female. E, C. garradunga Rentz, Su, Ueshima, sp nov., topotype male. F, same species female topotype. G, C. hilleri, Rentz, Su, Ueshima, sp nov., male holotype. H, same species, female topotype. I, Narea kungaree Rentz, Su, Ueshima, sp nov., holotype male. J, same species, female, Powelltown, Vic., K, N. elongata no data, female. L, same species, female, Jenolan Caves, NSW. M, Tallebuderoptera spininota Rentz, Su, Ueshima, sp nov., female topotype.
FIGURE 19. A – O in Studies in Australian Katydids: A Review of the Australian Snub-nosed Sylvan katydids (Tettigoniidae; Pseudophyllinae; Simoderini)
FIGURE 19. A – O. Mastigaphoides tuberculatus Rentz, Su, Ueshima, sp nov. A, head, pronotum, holotype male. B, frons, holotype male. C, pronotum, lateral view, holotype male. D, coxal spine, female, Jepoon, Qld., E, sternal processes, holotype male. F, sternal processes, female, Jepoon, Qld., G, fore femur, holotype male. H, fore femur, female, Jepoon, Qld. I, stridulatory " blister ", male, Kuranda, Qld. J, stridulatory veins and mirror, Kuranda, Qld. K, tip of abdomen, ventral view, male, Kuranda, Qld. L, subgenital plate, holotype male. M, subgenital plate, female, Jepoon, Qld. N, egg, Kuranda, Qld. O, end of egg.
Fig. A1 in Auditory system biophysics in a new species of false-leaf katydid (Tettigoniidae: Pseudophyllinae) supports a hypothesis of broadband ultrasound reception
Fig. A1. Calling song of Eubliastes aethiops male. A, calling song, Top, waveform; middle, spectrogram; bottom, frequency power spectrum. PF = peak frequency; LF = low frequency (20 dB below PF); HF = high frequency (20 dB below PF); BW = bandwidth (HF-LF). B, male specimen in the field (photograph by Fernando Vargas- Salinas). Spectrogram parameters: FFT size = 512; Hamming window = 50% overlap; frequency resolution = 500 Hz
Fig. 2 in Auditory system biophysics in a new species of false-leaf katydid (Tettigoniidae: Pseudophyllinae) supports a hypothesis of broadband ultrasound reception
Fig. 2. Eubliastes viridicorpus sp. nov. acoustics. A, dorsal view of male stridulatory apparatus with tegmina closed; B, dorsal view of male stridulatory apparatus with tegmina open; C, male stridulatory file; D, male calling song waveform and spectrogram; E, waveform and spectrogram of single pulse, with high resolution inset of the dual tone waveform; F, male calling song frequency spectrum. Spectrogram parameters: FFT size = 512; Hamming window = 50% overlap; frequency resolution = 500 Hz.
Fig. 1 in Auditory system biophysics in a new species of false-leaf katydid (Tettigoniidae: Pseudophyllinae) supports a hypothesis of broadband ultrasound reception
Fig. 1. Eubliastes viridicorpus sp. nov. A. male face; B. female face; C, male alive; D. illustrated male habitus; E, illustrated male terminalia in ventral (i), dorsal (ii), and lateral (iii) views with lateral view of left cercus (iv); F, female terminalia in ventral (i), dorsal (ii), and lateral (iii) views with lateral close up of ovipositor tip (iv). Note, colours of the face in A and B are an artifact of alcohol preservation, but markings remain accurate. Illustrations by CW.
FIG. 5 in Panoploscelis scudderi Beier, 1950 and Gnathoclita vorax (Stoll, 1813): two katydids with unusual acoustic, reproductive and defense behaviors (Orthoptera, Pseudophyllinae)
FIG. 5. — Tegminal protest signals of Panoploscelis scudderi Beier, 1950: A, B, male; C, D, female. All from wild specimens in studio conditions at 24° C.
FIG. 4 in Panoploscelis scudderi Beier, 1950 and Gnathoclita vorax (Stoll, 1813): two katydids with unusual acoustic, reproductive and defense behaviors (Orthoptera, Pseudophyllinae)
FIG. 4. — Male of Panoploscelis scudderi Beier, 1950, call and stridulatory apparatus. A-D, call of a wild male in studio conditions at 24°C after a specimen collected in Mitaraka; E, male forewings in dorsal view; F, file in ventral view. Scale bars: 10 mm.
FIG. 3 in Panoploscelis scudderi Beier, 1950 and Gnathoclita vorax (Stoll, 1813): two katydids with unusual acoustic, reproductive and defense behaviors (Orthoptera, Pseudophyllinae)
FIG. 3. — Female of Panoploscelis scudderi Beier, 1950, after a specimen collected in Mitaraka: A, forewings in dorsal view; B, detail of forewings showing tu- bercules in dorsal view; C, defensive position. Scale bars: A, 10 mm; B, 5 m.
FIG. 6 in Panoploscelis scudderi Beier, 1950 and Gnathoclita vorax (Stoll, 1813): two katydids with unusual acoustic, reproductive and defense behaviors (Orthoptera, Pseudophyllinae)
FIG. 6. — Mandibular protest signals of Panoploscelis scudderi Beier, 1950: A-C, mandibular protest signals produced by a F2 adult female; D, pictures corre- sponding to the time points given in C illustrating the motion of mandibles, clypeus and labrum; E, right mandible (note the area with tubercles in E'; F, clypeus and labrum, inner view. Scale bars: 1 mm.
FIG. 8 in Panoploscelis scudderi Beier, 1950 and Gnathoclita vorax (Stoll, 1813): two katydids with unusual acoustic, reproductive and defense behaviors (Orthoptera, Pseudophyllinae)
FIG. 8. — Shelters of Gnathoclita vorax (Stoll, 1813) in the field: A, the face of a male in visible within a hollow shaft of Astrocaryum Meyer, 1818 leaf, antennae protruding from the entrance; A', when an aperture is made on the shaft, a female is visible behind the male (at the time of the picture, the male was already col- lected); B, entrance of a shelter (male removed); C, disturbed male escaping from the shelter; D, picture of the male singing in A-C during the call.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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