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42 results for “Xysticus”

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zenodo32/100

FIGURES 15–20 in Reconsideration of Xysticus species described by Ehrenfried Schenkel from Mongolia and China in 1963 (Araneae: Thomisidae)

FIGURES 15–20. Male palp of Xysticus lesserti (15–17, holotype) and X. kurilensis (18–20). 15, 18—ventral; 16, 19—retrolateral; 17, 20—prolateral. Scale = 0.2 mm.

opennotspecifiedDec 2014View details →
zenodo32/100

FIGURES 14‒21. Xysticus spasskyi, specimens from the Crimea. 14‒15, 17‒18 in Redescription of the poorly known crab spider Xysticus spasskyi (Araneae: Thomisidae)

FIGURES 14‒21. Xysticus spasskyi, specimens from the Crimea. 14‒15, 17‒18 Male palp (14 ventral, 15 retrolateral, 17 anterior, 18 ventro-prolateral); 16 tip of embolus and tutaculum, ventral; 19‒21 Epigyne (19 after maceration, dorsal, 20 after maceration, ventral; 21 anterior-ventral). Scale = 0.1 mm. Abbreviations: Ap anterior pocket; Br brush of hairs; Em embolus, Fo fovea (pit); Ma median tegular apophysis; Pa prolateral tegular apophysis; RTA retrolateral tibial apophysis; Se septum; VTA ventral tibial apophysis.

opennotspecifiedDec 2016View details →
zenodo32/100

FIGURES 8‒13 in Redescription of the poorly known crab spider Xysticus spasskyi (Araneae: Thomisidae)

FIGURES 8‒13. Epigyne of Xysticus spasskyi, specimens from the Crimea. 8‒10 intact epigyne, ventral; 11 after macertaion, ventral; 12‒13 after maceration, dorsal. Scale = 0.2 mm. Abbreviations: Mp mating plug; Se septum.

opennotspecifiedDec 2016View details →
zenodo32/100

FIGURES 1‒7 in Redescription of the poorly known crab spider Xysticus spasskyi (Araneae: Thomisidae)

FIGURES 1‒7. Habitus and male palp of Xysticus spasskyi. 1‒3 Habitus dorsal (1‒2 male, 3 female); 4‒7 Male palp (4, 6 ventral, 5, 7 retrolateral). 1‒3, 6‒7 specimens from Crimea; 4‒5 specimens from Northern Ossetia. Scale = 0.2 mm if not otherwise indicated.

opennotspecifiedDec 2016View details →
zenodo32/100

Figure 3 in Phenology and impact of abiotic factors with a temporal lag on the abundance of common crab spider, Xysticus cristatus (Clerck, 1757) (Araneae: Thomisidae) in the agroecosystems of Kashmir

Figure 3. Carapace width frequency distribution of the monthly catches of Xysticus cristatus from April to September 2019.

opennotspecifiedFeb 2024View details →
zenodo32/100

Figure 4 in Phenology and impact of abiotic factors with a temporal lag on the abundance of common crab spider, Xysticus cristatus (Clerck, 1757) (Araneae: Thomisidae) in the agroecosystems of Kashmir

Figure 4. Activity pattern in terms of number of females caught in pitfall traps and abdominal width from March to July 2019 during the reproductive period in females of Xysticus cristatus.

opennotspecifiedFeb 2024View details →
zenodo32/100

Figure 2 in Phenology and impact of abiotic factors with a temporal lag on the abundance of common crab spider, Xysticus cristatus (Clerck, 1757) (Araneae: Thomisidae) in the agroecosystems of Kashmir

Figure 2. Circular histograms illustrating the frequency of age structure established for the population of Xysticus cristatus in agroecosystems of Kashmir from March 2018 to February 2020. The angular mean or direction of the data is indicated by the grey line vector inside the circle. The 95% confidence interval is indicated by the transverse line in the sector outside the circle.

opennotspecifiedFeb 2024View details →
zenodo32/100

Supplementary material 1 from: Ruch J, Riehl T, Michalik P (2014) Re-description of Xysticus bimaculatus L. Koch, 1867 (Araneae, Thomisidae) and characterization of its subsocial lifestyle. ZooKeys 427: 1-19. https://doi.org/10.3897/zookeys.427.7450

List of species examined: Explanation note: The table shows a list of all species examined as well as the location of the material. Sex (male, female or juvenile) and whether the material was type material (yes/no) is shown as well.

opencc-by-4.0Jul 2014View details →
zenodo32/100

FIGURES 14–21 in Elevation to species level and redescription of Xysticus alpinus Kulczyński, 1887 stat. n. (Araneae, Thomisidae)

FIGURES 14–21. Genitalia in comparison. 14–17 X. alpinus stat. n. from Vedrettino rock glacier (14 male palp ventral, 15 ditto retrolateral, 16 epigyne ventral, 17 vulva dorsal). 18–21 X. lanio from Marradi (18 male palp ventral, 18 ditto retrolateral, 20 epigyne ventral, 21 vulva dorsal).

opennotspecifiedOct 2018View details →
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FIGURE 22 in Elevation to species level and redescription of Xysticus alpinus Kulczyński, 1887 stat. n. (Araneae, Thomisidae)

FIGURE 22. Scree slope surrounding the Vedrettino rock glacier, habitat in which the largest population of Xysticus alpinus stat. n. was found (Photo by M. Gobbi).

opennotspecifiedOct 2018View details →
zenodo28/100

Fig. 6 in East meets West: on the true identity of Cheiracanthium rupestre and Xysticus albomaculatus (AraChnida: Araneae: EutiChuridae, Thomisidae)

Fig. 6: Habitus of a. female and b. male C. macedonicumı and C. female and d. male C. striolatum

opennotspecifiedDec 2015View details →
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FIGURE 22 in Redescription of the poorly known crab spider Xysticus spasskyi (Araneae: Thomisidae)

FIGURE 22. Distribution records of Xysticus spasskyi.

opennotspecifiedDec 2016View details →
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Figure 1 in Phenology and impact of abiotic factors with a temporal lag on the abundance of common crab spider, Xysticus cristatus (Clerck, 1757) (Araneae: Thomisidae) in the agroecosystems of Kashmir

Figure 1. Survey areas of Xysticus cristatus in Kashmir valley (ArcGIS package-version 10.2.2).

opennotspecifiedFeb 2024View details →
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Figure 1 in A barcode-based phylogenetic scaffold for Xysticus and its relatives (Araneae: Thomisidae: Coriarachnini)

Figure 1. Majority-rule consensus tree of Coriarachnini barcode sequences. Barcodes of all other members of Thomisidae are used as outgroup to root the tree, and support by each of the four phylogenetic inference methods (Neighbour Joining, MrBayes, Maximum Likelihood, and Maximum Parsimony) is indicated at each resolved branch (filled circles: supported; grey circle: not resolved by this method; open circle: not supported).

opencc-by-4.0Mar 2019View details →
zenodo28/100

Figure 5 from: Ruch J, Riehl T, Michalik P (2014) Re-description of Xysticus bimaculatus L. Koch, 1867 (Araneae, Thomisidae) and characterization of its subsocial lifestyle. ZooKeys 427: 1-19. https://doi.org/10.3897/zookeys.427.7450

Figure 5 - A Female Xysticus bimaculatus (AM, KS120583), habitus, scale bar = 1 mm B Male (AM, KS120583), habitus, scale bar = 1 mm C Female (AM, KS120583), frontal view, scale bar = 0.5 mm D Female (AM, KS120583), sternum and maxillae, scale bar = 0.4 mm E Female (AM, KS120583), ventral view, scale bar = 0.5 mm F Female (AM, KS120583), epigyne, scale bar = 0.25 mm G Female (AM, KS120583), vulva, scale bar = 0.1 mm.

opencc-by-4.0Jul 2014View details →
zenodo28/100

Figure 2 from: Ruch J, Riehl T, Michalik P (2014) Re-description of Xysticus bimaculatus L. Koch, 1867 (Araneae, Thomisidae) and characterization of its subsocial lifestyle. ZooKeys 427: 1-19. https://doi.org/10.3897/zookeys.427.7450

Figure 2 - A Male and female Xysticus bimaculatus B Spiders attach leaves with silk to construct a typical nest C Nest constructed from Alphitonia excelsa D Nest constructed from Acacia melanoxylon E Nest constructed from Acacia fimbriata. Scale bars = 1 cm.

opencc-by-4.0Jul 2014View details →
zenodo28/100

Figure 1 from: Ruch J, Riehl T, Michalik P (2014) Re-description of Xysticus bimaculatus L. Koch, 1867 (Araneae, Thomisidae) and characterization of its subsocial lifestyle. ZooKeys 427: 1-19. https://doi.org/10.3897/zookeys.427.7450

Figure 1 - Female holotype of Xysticus bimaculatus, (MG 2260, now ZMH). A Habitus, scale bar 1 mm B Ventral, scale bar = 0.5 mm C Epigyne, scale bar = 0.25 mm.

opencc-by-4.0Jul 2014View details →
zenodo28/100

Figure 4 from: Ruch J, Riehl T, Michalik P (2014) Re-description of Xysticus bimaculatus L. Koch, 1867 (Araneae, Thomisidae) and characterization of its subsocial lifestyle. ZooKeys 427: 1-19. https://doi.org/10.3897/zookeys.427.7450

Figure 4 - Number of spiderlings per nest is positively correlated with the presence of a caring female. The upper and lower whiskers show 1.5 times interquartile range, the box shows median and upper and lower quartile. Individual dots indicate outliers. *** P < 0.0001 indicates a statistically significant difference.

opencc-by-4.0Jul 2014View details →
zenodo28/100

Figure 6 from: Ruch J, Riehl T, Michalik P (2014) Re-description of Xysticus bimaculatus L. Koch, 1867 (Araneae, Thomisidae) and characterization of its subsocial lifestyle. ZooKeys 427: 1-19. https://doi.org/10.3897/zookeys.427.7450

Figure 6 - Left male palp of Xysticus bimaculatus (AM, KS120583) A Ventral view B Retro lateral view C Dorsal view D Colored surface models of different parts of the male superimposed on the volume rendering of the male palp (ventral, retrolateral, dorsal) E Longitudinal sections of the volume rendered male palp showing the two prominent hematodochae. Muscles are only present in tibia and attached to a large apodeme (see arrows in cross-sections). Abbreviations: bH basal hematodocha; Cy cymbium; Em embolus; iTA intermediate tibial apophysis; mH median hematodocha; rTA retrolateral tibial apophysis; S spermophor; vTA ventral tibial apophysis. Scale bars = 0.25 mm.

opencc-by-4.0Jul 2014View details →
zenodo28/100

Figure 3 from: Ruch J, Riehl T, Michalik P (2014) Re-description of Xysticus bimaculatus L. Koch, 1867 (Araneae, Thomisidae) and characterization of its subsocial lifestyle. ZooKeys 427: 1-19. https://doi.org/10.3897/zookeys.427.7450

Figure 3 - Average number of spiderlings per nest depending on spiderling size class (which reflects age). We found no significant decline in group size with increasing size class, indicating that spiderlings disperse shortly before maturation. The upper and lower whiskers show 1.5 times interquartile range, the box shows median and upper and lower quartile. Individual dots indicate outliers.

opencc-by-4.0Jul 2014View details →

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