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822 results for “systematic position”
FIGURE 6 in Taxonomic position and circumscription of Cardamine barbaraeoides (Brassicaceae), a systematically challenging taxon from the Balkan Peninsula
FIGURE 6. Drawings of Cardamine barbaraeoides (A), C. acris subsp. acris (B), and C. amara subsp. balcanica (C). Scale bar − 5 cm. Drawn by Jana Ficová.
FIGURE 1. A, B in New species of Kamopanorpa Martynov from the Permian of South Siberia with comments on the systematic position of Microptysmatidae (Protomeropina = Permotrichoptera)
FIGURE 1. A, B, Kamopanorpa rasnitsyni sp. nov. A, Holotype PIN 5386/9. B, Paratype PIN 5386/3. C, K. rotunda sp. nov., holotype PIN 5386/5. D, K. sivchikovi sp. nov., holotype PIN 5386/1. E, F, Kamopanorpa spp. E, 5386/8. F, 5386/11. All to the same scale.
FIGURE 2. A in New species of Kamopanorpa Martynov from the Permian of South Siberia with comments on the systematic position of Microptysmatidae (Protomeropina = Permotrichoptera)
FIGURE 2. A, Kamopanorpa rasnitsyni sp. nov. Holotype PIN 5386/9. B, K. sivchikovi sp. nov., holotype PIN 5386/1. C, K. rotunda sp. nov., holotype PIN 5386/5. SEM images.
FIGURE 31 in Systematic position of Bombyx incomposita (Lepidoptera: Bombycidae), with notes on its immature biology and hostplant association
FIGURE 31. Phylogenetic tree of the Bombycinae for 6 genera (11 species) constructed using maximum likelihood and Bayesian inference for the combined 6 genes (COI, CAD, EF-1α, GAPDH, RpS5 and wgl). Bombyx incomposita is sister to B. huttoni. Support values are indicated by bootstrap and Bayesian posterior probability on respective branches. Branch lengths are proportional to inferred substitution rate.
FIGURES 24–30 in Systematic position of Bombyx incomposita (Lepidoptera: Bombycidae), with notes on its immature biology and hostplant association
FIGURES 24–30. Genitalia and wing venation of Bombyx incomposita: 24, male genitalia; 25, phallus (posterior on the right, anterior on the left); 26, tergum VIII; 27, sternum VIII; 28, female genitalia; 29, forewing; 30, hindwing. Scale bars = 2 mm and 10 mm (Figs. 29–30).
FIGURES 16–23 in Systematic position of Bombyx incomposita (Lepidoptera: Bombycidae), with notes on its immature biology and hostplant association
FIGURES 16–23. Egg and the first instar of Bombyx incomposita under scanning electron microscopy: 16, general view of egg; 17, surface structure of chorion; 18, general view of larva in lateral; 19, head in lateral view; 20, head in anterior view; 21, T1 shield in lateral view; 22, lateral view of A3–A10; 23, D group on A8.
FIGURES 1–4 in Systematic position of Bombyx incomposita (Lepidoptera: Bombycidae), with notes on its immature biology and hostplant association
FIGURES 1–4. Adults of Bombyx incomposita (Perak, Malasia): 1, dorsal view of male; 2, ventral view of male; 3, dorsal view of female; 4, ventral view of female. Scale bar = 10 mm.
FIGURES 5–15 in Systematic position of Bombyx incomposita (Lepidoptera: Bombycidae), with notes on its immature biology and hostplant association
FIGURES 5–15. Immature stages of Bombyx incomposita: 5, eggs; 6, first instar in lateral view; 7, first instar in dorsal view; 8, second instar; 9, third instar; 10, fourth instar in lateral view; 11, fourth instar in dorsal view; 12, fifth instar in lateral view; 13, fifth instar in dorsal view; 14, head capsule of fifth instar in frontal view; 15, A8 middorsal horn of fifth instar. Scale bars = 1 mm (Figs. 5–7) and 5 mm (Figs. 8–15).
FIGURE 2. Lacertopontonia chadi Marin, 2011, dactylus ambulatory pereiopod. A–C in A second discovery of Lacertopontonia chadi Marin, 2011 (Crustacea: Decapoda: Palaemonidae), with remarks on its systematic position
FIGURE 2. Lacertopontonia chadi Marin, 2011, dactylus ambulatory pereiopod. A–C, male (RMNH.CRUS.D.53857), Semporna; D, male paratype (RMNH.CRUS.D.54783), Lizard Island; ovigerous female paratype (RMNH.CRUS.D.54783), Lizard Island. A, third right pereiopod, lateral view; B, same, median view; C, fifth left pereiopod, median view D, fifth right pereiopod, median view; E, right exopod of uropod, distolateral part. Scale bar = 0.5 mm.
FIGURE 1. Lacertopontonia chadi Marin, 2011. A, B, D in A second discovery of Lacertopontonia chadi Marin, 2011 (Crustacea: Decapoda: Palaemonidae), with remarks on its systematic position
FIGURE 1. Lacertopontonia chadi Marin, 2011. A, B, D, male (RMNH.CRUS.D.53857), Semporna; C, male paratype (RMNH.CRUS.D.54783), Lizard Island. A, second pereiopod, left major chela, median view; B, second pereiopod, right minor chela, median view; C, second pereiopod, right major chela, median view; D, telson. Scale bar = 1.0 mm.
FIGURE 3 in A second discovery of Lacertopontonia chadi Marin, 2011 (Crustacea: Decapoda: Palaemonidae), with remarks on its systematic position
FIGURE 3. Maximum-likelihood tree based on COI sequence data with the GTR+I+G substitution model with host taxa indicated on the right; bootstrap values>50% are shown; bootstrap values are shown in the order ME/ML/MP.
FIGURE 4 in First record of the African-Indian centipede genus Digitipes Attems, 1930 (Scolopendromorpha: Otostigminae) from Myanmar, and the systematic position of a new species based on molecular phylogenetics
FIGURE 4. Maximum likelihood consensus tree based on combined COI and 16S sequences. Numbers at nodes are bootstrap support in maximum likelihood (ML) and posterior probabilities in Bayesian inference (BI). Black circles refer to nodes supported from both ML and BI; grey circle refers to a node supported only by ML.
FIGURE 3 in First record of the African-Indian centipede genus Digitipes Attems, 1930 (Scolopendromorpha: Otostigminae) from Myanmar, and the systematic position of a new species based on molecular phylogenetics
FIGURE 3. Drawings depicting variation in some morphological characters; A. Cephalic plate and T1 (Holotype). B. Forcipular segment (Holotype). C. Tooth-plate with five teeth on right side (Paratype; CUMZ 00234). D. Articles 1–3 of telopodite of second maxilla (Paratype; CUMZ 00241). E. Tergites 9–11 (Holotype). F. Sternite 10 (Paratype; CUMZ 00240). G. Coxopleural pore area (Holotype). H. Sternite of ultimate leg-bearing segment with ultimate legs (Holotype; ventral view). I. Left ultimate leg (Paratype; CUMZ 00234).
FIGURE 2 in First record of the African-Indian centipede genus Digitipes Attems, 1930 (Scolopendromorpha: Otostigminae) from Myanmar, and the systematic position of a new species based on molecular phylogenetics
FIGURE 2. Morphological characters of Digitipes kalewaensis n. sp.; A. Forcipular coxosternite (Paratype; CUMZ 00234). B- C. Tergites and sternites 9–11 (Paratype; CUMZ 00241). D. Antenna, cephalic plate and T1 (Holotype). E-G. Spiracles 3, 5 and 8, respectively (Holotype). H, J. Ultimate legs (Paratypes; CUMZ 00234-00235). I. Projection on femur of ultimate leg in male (Holotype). K. Pore-field of coxopleuron (left and right; Paratype; CUMZ 00235). L-M. Ventral and dorsal view of ultimate leg-bearing segment (Paratype; CUMZ 00234).
FIGURE 1 in First record of the African-Indian centipede genus Digitipes Attems, 1930 (Scolopendromorpha: Otostigminae) from Myanmar, and the systematic position of a new species based on molecular phylogenetics
FIGURE 1. Collecting area of Digitipes kalewaensis n. sp.; A. Location of collection area in Myanmar. B. Collecting locality (expanded magnification). C. Habitat type.
FIGURES 56–60 in Diagnosis, variability, distribution and systematic position of Labiobaetis pulchellus (Müller-Liebenau & Hubbard 1985) (Ephemeroptera, Baetidae, Baetis s. l.)
FIGURES 56–60. Labiobaetis pulchellus, genitalia of male imagines (56, non-reared specimen from Madurai; 57, reared specimen from Uva; 58–59, reared specimen from Madurai; 60, reared specimen from Karnataka).
FIGURES 27–36. Labiobaetis pulchellus, larval exuviae. 27 in Diagnosis, variability, distribution and systematic position of Labiobaetis pulchellus (Müller-Liebenau & Hubbard 1985) (Ephemeroptera, Baetidae, Baetis s. l.)
FIGURES 27–36. Labiobaetis pulchellus, larval exuviae. 27, fore leg; 28, outer side of its femur; 29, inner side of its femur; 30, its tibia; 31–36, posterior margins of male abdominal terga and sterna: 31, tergum III; 32, tergum VIII; 33, tergum IX; 34, sternum VII; 35, sternum VIII; 36, sternum IX.
FIGURES 1–12. Labiobaetis pulchellus, larva. 1–10 in Diagnosis, variability, distribution and systematic position of Labiobaetis pulchellus (Müller-Liebenau & Hubbard 1985) (Ephemeroptera, Baetidae, Baetis s. l.)
FIGURES 1–12. Labiobaetis pulchellus, larva. 1–10, larval exuviae: 1, head; 2, 5, thorax with legs; 3, 6, 9, half of pronotum and mesonotum; 4, 7–8, 10, abdomen and caudalii (1–4, specimen from Karnataka, India; 5–8 and 9–10, two specimens from Sri Lanka; 11–12, larvae from India).
FIGURES 44–55. Labiobaetis pulchellus, imagines. 44–47 in Diagnosis, variability, distribution and systematic position of Labiobaetis pulchellus (Müller-Liebenau & Hubbard 1985) (Ephemeroptera, Baetidae, Baetis s. l.)
FIGURES 44–55. Labiobaetis pulchellus, imagines. 44–47, males; 48–50, male abdomina; 51, female; 52, 54, male fore legs; 53, 55, hind legs (44, reared specimen from Madurai; 48, 54–55, non-reared specimen from Madurai; 45, 47, reared specimen from Sri Pada; 49 and 51, two reared specimens from Uma; 46, 59, 53, 53, reared specimen from Karnataka).
FIGURES 17–26. Labiobaetis pulchellus. 17 in Diagnosis, variability, distribution and systematic position of Labiobaetis pulchellus (Müller-Liebenau & Hubbard 1985) (Ephemeroptera, Baetidae, Baetis s. l.)
FIGURES 17–26. Labiobaetis pulchellus. 17, hypopharynx with superlingua; 18, maxilla; 19–26, half of larval metathorax with hind protopteron and hind wing of the same individual with the same magnification: 19–20 and 21–22, two males from India; 23–24, male from Sri Lanka; 25–26, female from Sri Lanka.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.