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Fig. 1 in Synonymisation Of Myotis Aurascens With M. Davidii (Chiroptera, Vespertilionidae) Is Premature
Fig. 1. Bivariate plots of the Myotis samples listed by Benda et al. (2012) to demonstrate the correspondence of Iranian steppe whiskered bats with M. mystacinus s. str. and M. davidii. LCr is the greatest length of skull; LMd is condylar length of mandible; CM3 is length of upper toothrow between C and M3 (incl.); CM is length 3 of lower toothrow between C and M3 (incl.); LaI is width of interorbital constriction; LaN is neurocranium width; CC is rostral width between canines (incl.); M3M3 is rostral width between the third upper molars (incl.). The measurements are in mm. All measurements are from Benda et al. (2012: 329, table 16). Fig. 1, A partly repeats Fig. 95 of Benda et al. (2012: 330), however Benda et al. also added the data given by DeBlase (1980) to this figure as well as to fig. 96. M. mystacinus s. str. specimens are shown in green; M. aurascens specimens from Iran attributed by Benda et al. (2012) to M. davidii are shown in yellow; type specimen of M. davidii is shown in black. See Benda et al. (2012: 329, table 16) for more details about these specimens. The figure was obtained using R software (R Core Team, 2021).
Figure 6 in Taxonomic reassessment of Eutropis macularia (Blyth, 1853) complex in the Western Ghats of India: Resurrection of Eutropis brevis (Günther, 1875), Eutropis dawsoni (Annandale, 1909) and synonymisation of Eutropis gansi (Das, 1991) (Reptilia: Squamata: Scincidae)
Figure 6. Profile photographs comparing the dorsal scales of (1) Eutropis macularia, (2) Eutropis brevis, and (3) Eutropis dawsoni. Note the differences in keel projections and scale differences. Images of type specimens – (A) Eutropis macularia (Holotype – ZSI 2344) (B, C & D) Eutropis brevis (Syntypes – NHMUK 1874.4.29.254-55 & 354) (E) Eutropis gansi (Holotype – ZSI 24826), and (F) Eutropis dawsonii (Lectotype – ZSI 16170).
Figure 1 in Taxonomic reassessment of Eutropis macularia (Blyth, 1853) complex in the Western Ghats of India: Resurrection of Eutropis brevis (Günther, 1875), Eutropis dawsoni (Annandale, 1909) and synonymisation of Eutropis gansi (Das, 1991) (Reptilia: Squamata: Scincidae)
Figure 1. Principal component analysis plot showing distinct clustering in Eutropis dawsoni near topotypical E. macularia and E. brevis.
Fig. 2 in Synonymised And Forgotten, The Bird'S Head Stout-Tailed Snakes, Calamophis Meyer (Squamata: Serpentes: Homalopsidae)
Fig. 2. Comparison of the tapering tail of Brachyorrhos (MSNG 30211) on left and the stout tail of Calamophis (BPBM 3850) on right.
Fig. 1. A in Synonymised And Forgotten, The Bird'S Head Stout-Tailed Snakes, Calamophis Meyer (Squamata: Serpentes: Homalopsidae)
Fig. 1. A comparison of Brachyorrhos A–C, FMNH 142323 (left) and Calamophis D–F, MSNG 3193-1(right). Brachyorrhos have a pentagonal/hexagonal frontal, divided internasal, and a narrow, long snout (A), a divided nasal that is bilobed, and two postoculars (B), and dorsal scales that are more juxtaposed than imbricate (C). Calamophis have a pentagonal/triangular frontal, a single internasal, and a broad, relatively short snout (D), an undivided nasal and a single postocular (F), and scales that are imbricate.
Fig. 4. A in Synonymised And Forgotten, The Bird'S Head Stout-Tailed Snakes, Calamophis Meyer (Squamata: Serpentes: Homalopsidae)
Fig. 4. A satellite image of West Papua, showing the geographic areas and the localities discussed in the article. Satellite image from OC® Product courtesy of TTI Production, 136 Rue Guy Arnaud, 30900 Nîmes, France.
Fig. 5. A in Synonymised And Forgotten, The Bird'S Head Stout-Tailed Snakes, Calamophis Meyer (Squamata: Serpentes: Homalopsidae)
Fig. 5. A comparison of the ventrals and body widths of Calamophis katesandersae (MSNG 56343-1) and Calamophis sharonbrooksae (MSNG 30193-1).
Figure 2 in Taxonomic reassessment of Eutropis macularia (Blyth, 1853) complex in the Western Ghats of India: Resurrection of Eutropis brevis (Günther, 1875), Eutropis dawsoni (Annandale, 1909) and synonymisation of Eutropis gansi (Das, 1991) (Reptilia: Squamata: Scincidae)
Figure 2. Eutropis brevis from Valparai, Anaimalai (Photo S.R.Ganesh).
Figure 3 in Taxonomic reassessment of Eutropis macularia (Blyth, 1853) complex in the Western Ghats of India: Resurrection of Eutropis brevis (Günther, 1875), Eutropis dawsoni (Annandale, 1909) and synonymisation of Eutropis gansi (Das, 1991) (Reptilia: Squamata: Scincidae)
Figure 3. Eutropis brevis from Parambikulum (Photo: N.S. Achyuthan).
Figure 5 in Taxonomic reassessment of Eutropis macularia (Blyth, 1853) complex in the Western Ghats of India: Resurrection of Eutropis brevis (Günther, 1875), Eutropis dawsoni (Annandale, 1909) and synonymisation of Eutropis gansi (Das, 1991) (Reptilia: Squamata: Scincidae)
Figure 5. Eutropis dawsoni from Srivilliputhur (Photo: S.R. Ganesh).
FIGURE 3. Ilyarachna zachsi Gurjanova, 1933. A, D–H, female 2, R.V. Vitjaz, stn. 6647 in Redescription of Ilyarachna zachsi Gurjanova, 1933 (Crustacea: Isopoda: Munnopsidae) from the Sea of Japan, with the synonymisation of I. starokadomskii Gurjanova, 1933
FIGURE 3. Ilyarachna zachsi Gurjanova, 1933. A, D–H, female 2, R.V. Vitjaz, stn. 6647; B, C, female 1, R.V. Vitjaz, stn. 6647; I, male 2, R.V. Vitjaz, stn. 7456. A, I, antenna 1; B, proximal part of antenna 2; C, distal part of antenna 2; D, left mandible; E, right mandible; F, maxilla 1; G, maxilla 2; H, maxilliped.
FIGURE 4. Ilyarachna zachsi Gurjanova, 1933. A–D, female 1, R.V. Vitjaz, stn. 6647 in Redescription of Ilyarachna zachsi Gurjanova, 1933 (Crustacea: Isopoda: Munnopsidae) from the Sea of Japan, with the synonymisation of I. starokadomskii Gurjanova, 1933
FIGURE 4. Ilyarachna zachsi Gurjanova, 1933. A–D, female 1, R.V. Vitjaz, stn. 6647; E–G, male 1, R.V. Vitjaz, stn. 7456. A–C, E–G, pereopods 1–3; D, pereopod 4.
FIGURE 2. Ilyarachna zachsi Gurjanova, 1933. A, B in Redescription of Ilyarachna zachsi Gurjanova, 1933 (Crustacea: Isopoda: Munnopsidae) from the Sea of Japan, with the synonymisation of I. starokadomskii Gurjanova, 1933
FIGURE 2. Ilyarachna zachsi Gurjanova, 1933. A, B, female, R.V. Vitjaz, stn. 6647; C, D, female, TINRO, stn 76, sample 2; E, female, R.V. Vitjaz, stn. 6647; F, G, male, TINRO stn. 91, sample 1; H, female, R.V. Vitjaz, stn. 6660; I, male, R.V. Vitjaz, Stn. 6647; J, female, R.V. Vitjaz, Stn. 6647; K–N, male, TINRO stn. 91, sample 2. A–C, F, G, M, N, dorsal and lateral views of body; D, K, cephalon, ventral view; E, H–J, cephalon and pereonites 1–4, dorsal view; L, pleotelson, ventral view. Scale line = 1 mm.
FIGURE 1. Ilyarachna zachsi Gurjanova, 1933. A in Redescription of Ilyarachna zachsi Gurjanova, 1933 (Crustacea: Isopoda: Munnopsidae) from the Sea of Japan, with the synonymisation of I. starokadomskii Gurjanova, 1933
FIGURE 1. Ilyarachna zachsi Gurjanova, 1933. A, male, syntype, ZIN 14 N 497664; B–D, female (?), syntype, ZIN 1 N 9748; E–G, female syntype, ZIN 1 N 9748; H, female, syntype, ZIN 1 N 9748. A, E, G, H, body fragments, dorsal and lateral views; B–D, cephalon with pereonites 1–2, ventral, lateral and dorsal views; F, pleotelson, ventral view. Scale line = 1 mm.
FIGURE 6. Ilyarachna zachsi Gurjanova, 1933. A, B, male 2, R.V. Vitjaz, stn. 7456 in Redescription of Ilyarachna zachsi Gurjanova, 1933 (Crustacea: Isopoda: Munnopsidae) from the Sea of Japan, with the synonymisation of I. starokadomskii Gurjanova, 1933
FIGURE 6. Ilyarachna zachsi Gurjanova, 1933. A, B, male 2, R.V. Vitjaz, stn. 7456; C–G, female 2, R.V. Vitjaz, stn. 6647. A, B, pleopods 1, 2; C, D, operculum, ventral and lateral views; G, uropod; E, F, pleopods 3, 4.
FIGURE 5. Ilyarachna zachsi Gurjanova, 1933. A, female 2, R.V. Vitjaz, stn. 6647 in Redescription of Ilyarachna zachsi Gurjanova, 1933 (Crustacea: Isopoda: Munnopsidae) from the Sea of Japan, with the synonymisation of I. starokadomskii Gurjanova, 1933
FIGURE 5. Ilyarachna zachsi Gurjanova, 1933. A, female 2, R.V. Vitjaz, stn. 6647; B, C, female 1, R.V. Vitjaz, stn. 6647; D–F, male 2, R.V. Vitjaz, stn. 7456. A–C, D–F pereopods 5–7.
FIGURE 6 in Taraxacum sect. Erythrosperma (Asteraceae, Cichorioideae) in Slovakia IV. Distribution of T. erythrospermum and synonymisation of T. slovacum
FIGURE 6. Detrended correspondence analysis of 105 phytosociological relevés with confirmed occurrence of the diploid species Taraxacum erythrospermum classified to habitat type with the Ellenberg-type indicator values displayed as a passive vectors. Blue square—TRB01 (Cirsio-Brachypodion pinnati and Bromion erecti), blue circle—TRB03 (Festucion valesiacae), blue diamond—TRB08 (Bromo pannonici-Festucion pallentis), blue star—TRB09 (Diantho lumnitzeri-Seslerion), green square—PIP05 (Alysso alyssoidisSedion albi), red square—LKP01 (Arrhenatherion elatioris), red circle—LKP03 (Cynosurion cristati), red diamond—LKP10a (Violion caninae). Ordination scores of the displayed species (species weight range) are more than 0.35, Taraery—Taraxacum erythrospermum, Carehum—Carex humilis, Festval—Festuca valesiaca, Koelmac—Koeleria macrantha, Poteare—Potentilla arenaria, Teuccha—Teucrium chamaedrys, Tithcyp—Tithymalus cyparissias. Axis eigenvalues: 0.529 and 0.239; DCA1 (abscissa) axis length: 4.034; DCA2 (ordinate) axis length: 2.390.
FIGURE 3 in Taraxacum sect. Erythrosperma (Asteraceae, Cichorioideae) in Slovakia IV. Distribution of T. erythrospermum and synonymisation of T. slovacum
FIGURE 3. Variation of the achene colour of Taraxacum erythrospermum. Left: typical form; right: greyish form. Bar scale = 1 mm.
FIGURE 4 in Taraxacum sect. Erythrosperma (Asteraceae, Cichorioideae) in Slovakia IV. Distribution of T. erythrospermum and synonymisation of T. slovacum
FIGURE 4. Distribution of Taraxacum erythrospermum in Slovakia (full dots); empty circles: T. cf. erythrospermum.
Figure 4 from: Sugita R, Tanaka K (2022) Thyridium revised: Synonymisation of Phialemoniopsis under Thyridium and establishment of a new order, Thyridiales. MycoKeys 86: 147-176. https://doi.org/10.3897/mycokeys.86.78989
Figure 4 Thyridium pluriloculosum (A–Y KT 3803 = HHUF 30648 Z–AL culture KT 3803 = MAFF 247508) A–R sexual morph A, B appearance of stromata on substrate (B transverse sections) C ascomata in longitudinal section D ostiolar neck of ascoma E paraphyses F ascomatal wall G pseudostromatic tissue H–J asci K apex of ascus L–Q ascospores R germinating ascospore S–AF coelomycetous asexual morph (S–Y nature Z–AF culture) S appearance of conidiomata on substrate T conidiomata in longitudinal section U conidiomatal wall V conidiophores W phialide X, Y conidia Z–AB conidiomata in culture (AB multiloculate conidiomata) AC setose hypha of conidiomata AD conidiophores with groups of phialides AE, AF conidia AG–AL hyphomycetous synasexual morph AG, AH sporulation in culture AI phialide AJ, AK conidia AL chlamydospores. Scale bars: 1 mm (A, B, S, AB); 500 µm (C, Z, AA); 100 µm (D, T); 20 µm (AG, AH); 10 µm (E–J, L–R, U, V); 5 µm (K, W–Y, AC–AF, AI–AL).
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