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663 results for “Julida”
Fig. 1 in New records of millipedes of the order Julida (Diplopoda) from Asian Russia and adjacent regions
Fig. 1. Distribution of Julus azarovae Mikhaljova, 2009 (circle) and Leptoiulus tigirek Mikhaljova, Nefediev, Nefedieva et Dyachkov, 2015 (diamond). Previously known localities
figure 10 in Morphology and mating behaviour in the millipede Megaphyllum unilineatum (C.L. Koch, 1838) (Myriapoda, Diplopoda, Julida) under laboratory conditions
figure 10 Canonical variate analysis (cva) of differences in promere shape between males with different mating status (bars: grey – mated males; white –non-mated males).
figure 9 in Morphology and mating behaviour in the millipede Megaphyllum unilineatum (C.L. Koch, 1838) (Myriapoda, Diplopoda, Julida) under laboratory conditions
figure 9 Canonical variate analysis (cva) of differences in walking leg shape between males and females with different mating status (rectangles: black – mated males, white – non-mated males; circles: black – mated females, white – non-mated females).
figure 7 in Morphology and mating behaviour in the millipede Megaphyllum unilineatum (C.L. Koch, 1838) (Myriapoda, Diplopoda, Julida) under laboratory conditions
figure 7 Canonical variate analysis (cva) of differences in antennal shape between males and females with different mating status (rectangles: black – mated males, white – non-mated males; circles: black – mated females, white – non-mated females).
figure 8 in Morphology and mating behaviour in the millipede Megaphyllum unilineatum (C.L. Koch, 1838) (Myriapoda, Diplopoda, Julida) under laboratory conditions
figure 8 Canonical variate analysis (cva) of differences in head shape between males and females with different mating status (rectangles: black – mated males, white – non-mated males; circles: black – mated females, white – non-mated females). Downloaded from Brill.com 06/24/2024 12:52:58AM via Open Access. This is an open access article distributed under the terms of the CC-BY 4.0 license. https://creativecommons.org/licenses/by/4.0/
figure 3 in Morphology and mating behaviour in the millipede Megaphyllum unilineatum (C.L. Koch, 1838) (Myriapoda, Diplopoda, Julida) under laboratory conditions
figure 3 Individuals of both sexes and sequences of sexual behaviour in M. unilineatum. A – male; B – female; C, D, E – contact; F, G, H, I, J, K – extrusion of gonopods (arrows); L, M, N – copulation. photo by B. Ilić
figure 2 in Morphology and mating behaviour in the millipede Megaphyllum unilineatum (C.L. Koch, 1838) (Myriapoda, Diplopoda, Julida) under laboratory conditions
figure 2 Digitalized landmarks on antenna (A) and leg (C) of the species M. unilineatum are shown, as well as digitalized landmarks and semi-landmarks on its head (B), promere (D), and opisthomere (E). See supplementary text S1 for descriptions of landmarks and Downloaded semi-landmarksfrom.Brill.com 06/24/2024 12:52:58AM via Open Access. This is an open access article distributed under the terms of the CC-BY 4.0 license. https://creativecommons.org/licenses/by/4.0/
figure 6 in Morphology and mating behaviour in the millipede Megaphyllum unilineatum (C.L. Koch, 1838) (Myriapoda, Diplopoda, Julida) under laboratory conditions
figure 6 Morphological variation in centroid size (CS) of antennae (A), head (B), walking legs (C), promeres (D), and opisthomeres (E) between individuals with different mating status. The median with the first and the third quartiles is shown (in boxes), together with the range of variation and outliers.
figure 5 in Morphology and mating behaviour in the millipede Megaphyllum unilineatum (C.L. Koch, 1838) (Myriapoda, Diplopoda, Julida) under laboratory conditions
figure 5 Morphological variation of body mass (A), body length (B), antennal length (C), walking leg length (D), trunk width (E), and trunk height (F) between males and females with different mating status. Morphological variation of flagellum length (FL) between mated and non-mated males (G) is also depicted. The median with the first and the third quartiles is shown (in boxes), together with the range of variation and outliers.
figure 4 in Morphology and mating behaviour in the millipede Megaphyllum unilineatum (C.L. Koch, 1838) (Myriapoda, Diplopoda, Julida) under laboratory conditions
figure 4 Percentage of copulations in female and male choice tests (grey bars – mating with previous partner; white bars – mating with new partner).
Figure 8 in Mating behaviour and its relationship with morphological features in the millipede Pachyiulus hungaricus (Karsch, 1881) (Myriapoda, Diplopoda, Julida)
Figure 8. Canonical variate analysis (CVA) of gonopod shape in relation with mating status (circle: black – nonmated males; grey – mated males).
Figure 7 in Mating behaviour and its relationship with morphological features in the millipede Pachyiulus hungaricus (Karsch, 1881) (Myriapoda, Diplopoda, Julida)
Figure 7. Principal component analysis (PCA) of gonopod shape in relation with mating status (circle: black – nonmated males; grey – mated males).
Figure 4 in Mating behaviour and its relationship with morphological features in the millipede Pachyiulus hungaricus (Karsch, 1881) (Myriapoda, Diplopoda, Julida)
Figure 4. Percentage of copulations achieved with the previous partner (white bars) and with a new partner (black bars) in female and male choice tests.
Figure 3 in Mating behaviour and its relationship with morphological features in the millipede Pachyiulus hungaricus (Karsch, 1881) (Myriapoda, Diplopoda, Julida)
Figure 3. Positions of mating pairs of P. hungaricus. A – male and female in parallel position; B, C – male coiling around female (photo: B. Ilić).
Figure 1. A in Mating behaviour and its relationship with morphological features in the millipede Pachyiulus hungaricus (Karsch, 1881) (Myriapoda, Diplopoda, Julida)
Figure 1. A – position of landmarks on the walking leg in P. hungaricus. B – position of landmarks on the gonopodal promere, mesocaudal view.
Figure 2 in Mating behaviour and its relationship with morphological features in the millipede Pachyiulus hungaricus (Karsch, 1881) (Myriapoda, Diplopoda, Julida)
Figure 2. Mating in P. hungaricus. A – male; B – female; C, D – contact; E, F – extrusion of gonopods (arrowheads); G – copulation (arrowhead) (photo: B. Ilić).
Linked collectors and determiners for: A new genus of mongoliulid millipedes from the Far East of Russia, with a list of species in the family (Diplopoda, Julida, Mongoliulidae).
Natural history specimen data linked to collectors and determiners held within, "A new genus of mongoliulid millipedes from the Far East of Russia, with a list of species in the family (Diplopoda, Julida, Mongoliulidae)". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/73e59eea-95df-4001-9e89-7d0396faa0ea">https://bionomia.net/dataset/73e59eea-95df-4001-9e89-7d0396faa0ea</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/73e59eea-95df-4001-9e89-7d0396faa0ea">https://gbif.org/dataset/73e59eea-95df-4001-9e89-7d0396faa0ea</a>. Formatted as a Frictionless Data package.
Linked collectors and determiners for: The millipede genus Leucogeorgia Verhoeff, 1930 in the Caucasus, with descriptions of eleven new species, erection of a new monotypic genus and notes on the tribe Leucogeorgiini (Diplopoda: Julida: Julidae).
Natural history specimen data linked to collectors and determiners held within, "The millipede genus Leucogeorgia Verhoeff, 1930 in the Caucasus, with descriptions of eleven new species, erection of a new monotypic genus and notes on the tribe Leucogeorgiini (Diplopoda: Julida: Julidae)". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/1d5fdead-d612-4c66-b482-4f051f990351">https://bionomia.net/dataset/1d5fdead-d612-4c66-b482-4f051f990351</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/1d5fdead-d612-4c66-b482-4f051f990351">https://gbif.org/dataset/1d5fdead-d612-4c66-b482-4f051f990351</a>. Formatted as a Frictionless Data package.
Figures 15–22 in Parajulid milliped studies XII: Initial assessment of Ptyoiulus Cook 1895 and neotype designations for Julus impressus Say 1821 and J. montanus Cope 1869 (Diplopoda: Julida)
Figures 15–22. Gonopodal variation in P. montanus. 15) Distal extremity of right anterior gonopod of male from Montgomery Co., Virginia, caudal view. 16) The same of male from Tishomingo Co., Mississippi. 17) The same of male from DeKalb Co., Georgia. 18) The same of male from Craighead Co., Arkansas. 19) The same of male from Clay Co., Arkansas. 20) Right posterior gonopod of male from Mason Co., Tennessee, lateral view. 21) The same of male from Tishomingo Co., Mississippi. 22) The same of male from Montgomery Co., Virginia. Abbreviations as in Fig. 5–6.
Figures 7–13 in Parajulid milliped studies XII: Initial assessment of Ptyoiulus Cook 1895 and neotype designations for Julus impressus Say 1821 and J. montanus Cope 1869 (Diplopoda: Julida)
Figures 7–13. Gonopodal variation in P. impressus. 7) Distal extremity of right anterior gonopod of neotype, caudal view. 8) The same of male from Rabun Co., Georgia. 9) The same of male from Liberty Co., Florida. 10) The same of male from Leon Co., Florida. 11) The same of male from Greene Co., Arkansas. 12) Right posterior gonopod of male from Rabun Co., Georgia, lateral view. 13) The same of male from Greene Co., Arkansas. Abbreviations as in Fig. 5–6.
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