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Fig. 3. 50 in Fig. 8 in Stiatoandricus nievesaldreyi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022

Fig. 3. 50% Majority consensus tree from the 15 most parsimonious trees produced from a heuristic search of 51 morphological characters in PAUP. The proportion of 1,000 bootstrap replicates above 70% are shown.

opencc-by-4.0Apr 2020View details →
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Fig. 2. Paralbunea chani n in Fig. 4 in Striatoandricus sanchezi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022, n. sp.

Fig. 2. Paralbunea chani n. sp., holotype intersex specimen, 13.6 mm CL (NTOU A01450). A, habitus. B, ocular peduncles and median frontal margin. C, left maxilliped III. D, right pereopod I. E, left pereopod II dactylus and propodus. F, right pereopod III dactylus and propodus. G, right pereopod IV dactylus and propodus. H, abdominal somite VI, uropods and telson. Scale bars: A = 2 mm; B–H = 1 mm. Habitus photograph courtesy of Tin-Yam Chan.

opencc-by-4.0May 2020View details →
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Fig. 3. Paralbunea chirotheca n in Fig. 4 in Striatoandricus sanchezi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022, n. sp.

Fig. 3. Paralbunea chirotheca n. sp., holotype female (ZRC 2016.0421). A, habitus. B, ocular peduncles and median frontal margin. C, right maxilliped III. D, right pereopod I. E, right pereopod II. F, right pereopod III. G, left pereopod IV. H, abdominal somites, uropods and telson. Scale bars = 1 mm. Habitus photograph courtesy of Tin-Yam Chan.

opencc-by-4.0May 2020View details →
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Fig. 1. A in Fig. 4 in Striatoandricus sanchezi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022, n. sp.

Fig. 1. A, Albunea microps Miers, 1878, male, CL unknown (fragmented when examined) (ZRC 2016.0115). B, Albunea symmysta (Linnaeus, 1758), female, 19.0 mm CL (ZRC 2016.0114). Photographs courtesy of Tin-Yam Chan.

opencc-by-4.0May 2020View details →
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Fig. 2 in Fig. 4 in Striatoandricus sanchezi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022, n. sp.

Fig. 2. (a) Zizina otis and Zizeeria maha roosting gregariously on Tridax procumbens. (b) Zizina otis and Z. maha roosting gregariously on Vernonia cinerea. (c) A Z. otis roosting on a flower of T. procumbens. (d) A Z. otis roosting on a flower of V. cinerea. (e) A Z. maha roosting on a flower of T. procumbens. (f) A Z. otis roosting on the fruits of T. procumbens. (g) A Z. otis roosting on a fruit of V. cinerea (left) and a Z. otis roosting on the receptacle of T. procumbens (right). (h) A Z. otis roosting on a leaf of V. cinerea. (i) Two Z. otis roosting on a leaf of Mimosa pudica. (j) Two Z. otis roosting on a leaf of Imperata cylindrica. (k) A Z. otis roosting on a peduncle of T. procumbens. The red dots in (a) and (b) are the roosting blues.

opencc-by-4.0Apr 2020View details →
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Fig. 1 in Fig. 4 in Striatoandricus sanchezi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022, n. sp.

Fig. 1. (a) Map of Rongyu Campus, National University of Tainan. White squares indicate the plots for the night roosting surveys of butterflies from November 2015 to March 2016 (n = 10). Red squares (plots a–f) are subsites used for the random patterns test, confirming the non-random distribution of the roosting blues within roosting aggregations, as well as for observation of the social and behavioral interactions among individuals during roost-assembly. (b) A closer look of plots a, b, and c. (c) A closer look of plots d, e, and f.

opencc-by-4.0Apr 2020View details →
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Fig. 2 in Fig. 8 in Stiatoandricus nievesaldreyi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022

Fig. 2. Bayesian inference phylogeny based on 16S, 12S, and 28S. Nodes with filled circles indicate sister taxon relationships composed of basal broad and narrow range sister taxa. Posterior probabilities: *p = 0.90–0.94; **p = 0.95–0.99; ***p = 1.0.

opencc-by-4.0Apr 2020View details →
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Fig. 3 in Fig. 4 in Striatoandricus sanchezi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022, n. sp.

Fig. 3. The observed spatial patterns and the grid of the flowers and fruits of Tridax procumbens and blues at three subsites (a, b, c), and the spatial patterns and the grid processed of flowers and fruits of Vernonia cinerea and blues at three subsites (d, e, f).

opencc-by-4.0Apr 2020View details →
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Fig. 6 in Stiatoandricus nievesaldreyi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022

Fig. 6. Changes in the gonadosomatic index (GSI) in red swamp crayfish Procambarus clarkii females (A) and males (B) from April to December 2011. Data are shown for the different sexual morphotypes, reproductive form I and non-reproductive form II.

opencc-by-4.0Mar 2020View details →
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Fig. 8 in Stiatoandricus nievesaldreyi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022

Fig. 8. Changes in the proportions of reproductive form I females and males after sexual maturity (females,> 22 mm POCL; males,> 21 mm POCL) and the sex ratio [number of males / number of total crayfish] in red swamp crayfish Procambarus clarkii.

opencc-by-4.0Mar 2020View details →
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Fig. 2 in Striatoandricus sanchezi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022, n. sp.

Fig. 2. The video clips from the housing Polaroid CUBE+ and handy cameras. (a) Intraspecific mating pair; (b) two paired chubs spawning nearby; (c) satellites trying to engage with paired chubs; (d) O. evolans mating; (e) Z. platypus mating. Clips (a–c) were captured on the housing camera. Clips (d– e) were captured on handy cameras.

opencc-by-4.0Mar 2020View details →
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Fig. 7 in Stiatoandricus nievesaldreyi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022

Fig. 7. Changes in the proportions of reproductive form I females (A) and males (B) in different body size groups (postorbital carapace length, POCL) after sexual maturity (females,> 22 mm POCL; males,> 21 mm POCL) in red swamp crayfish Procambarus clarkii.

opencc-by-4.0Mar 2020View details →
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Fig. 1 in Striatoandricus sanchezi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022, n. sp.

Fig. 1. Study area map showing (a) Location of Askot landscape in India and Uttarakhand; Digital Elevation Model (DEM) of (b) Askot landscape and (c) Johar Valley.

opencc-by-4.0Apr 2020View details →
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Fig. 3 in Stiatoandricus nievesaldreyi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022

Fig. 3. Inter-sexual dimorphism of the chela propodus width (A) and chela propodus length (B) in red swamp crayfish Procambarus clarkii. Allometric growth curves were calculated based on the equations estimated for females and males in the respective sexual morphotypes shown in table 3.

opencc-by-4.0Mar 2020View details →
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Fig. 1 in Striatoandricus sanchezi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022, n. sp.

Fig. 1. Character identification of two species. a, O. evolans male; b, O. evolans female; c, Z. platypus male; and d, Z. platypus female. All morphological features for species identification were labeled using Arabic numerals and mentioned as follows. The mature male of O. evolans has: 1, 11–13 vertical greenish-blue stripes; 2, elongated pectoral fin; 3, independent pearl organs on the cheek and snout; 4, yellowish green caudal peduncle. The mature female of O. evolans has: 5, shorter vertical stripes; 6, usually grayish white snout tip. The mature male of Z. platypus has: 7, several vertical grayish-blue stripes and some of these stripes fuse into a wide bar; 8, medium length of pectoral fin; 9, aligned pearl organs on cheek and snout. The mature female of Z. platypus has: 10, a rather indistinct pale yellow or gray stripe; 11, usually orange red snout tip.

opencc-by-4.0Mar 2020View details →
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Fig. 2 in Stiatoandricus nievesaldreyi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022

Fig. 2. Growth in the chela propodus width (A), chela propodus length (B) and first gonopod length (C) relative to the postorbital carapace length in male red swamp crayfish Procambarus clarkii. Data are shown for the different sexual morphotypes, reproductive form I and non-reproductive form II.

opencc-by-4.0Mar 2020View details →
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Fig. 1 in Stiatoandricus nievesaldreyi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022

Fig. 1. Growth of the chela propodus width (A), chela propodus length (B) and pleon width (C) relative to the postorbital carapace length in female red swamp crayfish Procambarus clarkii. Data are shown for the different sexual morphotypes, reproductive form I and non-reproductive form II, the potentially reproductive females with GSI values> 3 and the reproductive females carrying juveniles. Allometric growth curves discriminating the different sexual morphotypes are shown for chela propodus width and length. See figure S6 for discriminant functions.

opencc-by-4.0Mar 2020View details →
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Fig. 5 in Stiatoandricus nievesaldreyi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022

Fig. 5. Relationships between the postorbital carapace length and gonad weight (A) and the gonadosomatic index (GSI) (B) in male red swamp crayfish Procambarus clarkii. Data are shown for the different sexual morphotypes, reproductive form I and non-reproductive form II.

opencc-by-4.0Mar 2020View details →
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Fig. 4 in Striatoandricus sanchezi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022, n. sp.

Fig. 4. Map showing intensity of resource selection probability of (a) Blue sheep (Output = 0.47 * Distance to escape terrain raster layer – 0.43 * Vegetation type raster layer) and (b) Livestock (Output = 0.55 * Distance to escape terrain raster layer – 1.29 * Elevation raster layer – 0.36 * Vegetation type raster layer).

opencc-by-4.0Apr 2020View details →
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Fig. 3 in Striatoandricus sanchezi Cuesta-Porta & Melika & Nicholls & Stone & Pujade-Villar 2022, n. sp.

Fig. 3. Coefficient plot of covariates used in the point process model of livestock. Table 3. Selection index (Wi values) of use vs availability for blue sheep and livestock

opencc-by-4.0Apr 2020View details →

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