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446 results for “taxonomic position”
Figs. 25–28 in Taxonomic Position of a Taiwanese Ceutorhynchine, Mecysmoderes consularis Pascoe (Coleoptera: Curculionidae), with Description of an Allied New Species from Lanhsu Island
Figs. 25–28. Male genitalia of Xenysmoderes ruficollis. 25) Aedeagus, dorsal view; 26)
Figs. 5–8. Xenysmoderes consularis, male. 5 in Taxonomic Position of a Taiwanese Ceutorhynchine, Mecysmoderes consularis Pascoe (Coleoptera: Curculionidae), with Description of an Allied New Species from Lanhsu Island
Figs. 5–8. Xenysmoderes consularis, male. 5) Pronotum; 6) elytron; 7) pro-, meso- and
Figs. 13–14 in Taxonomic Position of a Taiwanese Ceutorhynchine, Mecysmoderes consularis Pascoe (Coleoptera: Curculionidae), with Description of an Allied New Species from Lanhsu Island
Figs. 13–14. Antennae of Xenysmoderes spp. 13) Xenysmoderes consularis; 14) Xenysmo-
Figs. 1–4 in Taxonomic Position of a Taiwanese Ceutorhynchine, Mecysmoderes consularis Pascoe (Coleoptera: Curculionidae), with Description of an Allied New Species from Lanhsu Island
Figs. 1–4. Habitus of Xenysmoderes spp. 1–2) Xenysmoderes consularis, male. 1) Dorsal
Figure 1 from: Qiao G, Chen J, Jiang L (2011) Taxonomic position of Hormaphis similibetulae Qiao & Zhang, 2004 (Hemiptera, Aphididae): molecular and biological evidence. ZooKeys 111: 11-18. https://doi.org/10.3897/zookeys.111.1284
Figure 1 - Phylogenetic tree reconstructed from the combined dataset of EF-1α and tRNA/COII sequences. The Bayesian topology and branch lengths are shown. Values above the branches are MP and ML bootstrap percentages, respectively, and Bayesian posterior probabilities are shown below the branches. The broken line indicates inconsistent branch.
Figure 6 from: Ron S, Toral E, Venegas P, Barnes C (2010) Taxonomic revision and phylogenetic position of Osteocephalus festae (Anura, Hylidae) with description of its larva. ZooKeys 70: 67-92. https://doi.org/10.3897/zookeys.70.765
Figure 6 - Adult Osteocephalus festae showing variation in dorsal coloration of preserved specimens. Left to right, upper row: QCAZ 39804, 39811, 39810, 39802, 39798 (females); lower row: QCAZ 39799, 26552, 26488, 26561 (males), 39364 (female). Provincia Loja and Morona Santiago, Ecuador. See Appendix I for locality data.
Figure 5 from: Ron S, Toral E, Venegas P, Barnes C (2010) Taxonomic revision and phylogenetic position of Osteocephalus festae (Anura, Hylidae) with description of its larva. ZooKeys 70: 67-92. https://doi.org/10.3897/zookeys.70.765
Figure 5 - Tadpoles of Osteocephalus festae and Osteocephalus verruciger. A–D, G–J are in preservative; E–F in life. A–D: Osteocephalus festae, stage 39, QCAZ 30511; E–F: Osteocephalus festae, stage 33, QCAZ 38074; G–J: Osteocephalus verruciger,stage 36, QCAZ 36751. A, G: dorsal view; B, H: lateral view; C, I: ventral view; D, J:oral apparatus. Photos in life by SRR.
Figure 2 from: Ron S, Toral E, Venegas P, Barnes C (2010) Taxonomic revision and phylogenetic position of Osteocephalus festae (Anura, Hylidae) with description of its larva. ZooKeys 70: 67-92. https://doi.org/10.3897/zookeys.70.765
Figure 2 - Bayesian consensus phylogram depicting relationships within Osteocephalus. Phylogram derived from analysis of 1975 bp of mtDNA (genes ND1 and 12S). Numbers in parenthesis corresponds to those on Table 1 and Figure 1. Posterior probabilities resulting from Bayesian Markov chain Monte Carlo searches appear above branches. An asterisk represents a value of 1. The outgroup species Hypsiboas heilprini is not shown.
Figure 8 from: Ron S, Toral E, Venegas P, Barnes C (2010) Taxonomic revision and phylogenetic position of Osteocephalus festae (Anura, Hylidae) with description of its larva. ZooKeys 70: 67-92. https://doi.org/10.3897/zookeys.70.765
Figure 8 - Principal components from analysis of seven size-corrected morphological variables. See Table 5 for character loadings on each component.
Figure 1 from: Ron S, Toral E, Venegas P, Barnes C (2010) Taxonomic revision and phylogenetic position of Osteocephalus festae (Anura, Hylidae) with description of its larva. ZooKeys 70: 67-92. https://doi.org/10.3897/zookeys.70.765
Figure 1 - Records of Osteocephalus festae (circles), Osteocephalus verruciger (squares), and Osteocephalus buckleyi (triangles). Locality data from Trueb and Duellman (1970) and specimens deposited at the Museo de Zoología of Pontificia Universidad Católica del Ecuador, the Herpetology Collection, Escuela Politécnica Nacional, and CORBIDI (Appendix 1). Numbers correspond to those on Table 1 and Figure 2.
Figure 4 from: Ron S, Toral E, Venegas P, Barnes C (2010) Taxonomic revision and phylogenetic position of Osteocephalus festae (Anura, Hylidae) with description of its larva. ZooKeys 70: 67-92. https://doi.org/10.3897/zookeys.70.765
Figure 4 - Ventral views of the right hand and foot of Osteocephalus festae. Adult female from Río Napinaza, Ecuador, SVL = 84.93 mm, QCAZ 39811. Hand and foot are shown at the same scale.
Figure 7 from: Ron S, Toral E, Venegas P, Barnes C (2010) Taxonomic revision and phylogenetic position of Osteocephalus festae (Anura, Hylidae) with description of its larva. ZooKeys 70: 67-92. https://doi.org/10.3897/zookeys.70.765
Figure 7 - Ventral views of adult Osteocephalus festae showing variation in ventral coloration of preserved specimens. Specimen identity and arrangement is the same as in Figure 6.
Figure 3 from: Ron S, Toral E, Venegas P, Barnes C (2010) Taxonomic revision and phylogenetic position of Osteocephalus festae (Anura, Hylidae) with description of its larva. ZooKeys 70: 67-92. https://doi.org/10.3897/zookeys.70.765
Figure 3 - Dorsolateral and ventral views of Osteocephalus festae. A QCAZ 41039, adult female, SVL = 79.81 mm B Amplectant pair (not collected) from Chonza Alta, Peru C–D QCAZ 45674, subadult, SVL = 36.54 mm E–F QCAZ 38081, juvenile, SVL = 13.37 mm G–H MZUT An208 (holotype), adult female, (SVL = 78.00 mm; Peracca 1904). Holotype photographs by Franco Andreone and photographs of the amplectant pair by PJV. See Appendix I for locality data.
Figure 3 from: Kaboli M, Farashi A, Rezaei H, Naghavi M, Coad B (2014) Reassessment of the taxonomic position of Iranocypris typhlops Bruun & Kaiser, 1944 (Actinopterygii, Cyprinidae). ZooKeys 374: 69-77. https://doi.org/10.3897/zookeys.374.6617
Figure 3 - Phylogenetic relationships of Iranocypris typhlops based on cyt b. The posterior probability values on the branches are the results of BI. Iranocypris typhlops-ND = specimens without a mental disc, Iranocypris typhlops-D = specimens with a mental disc.
Figure 1 from: Kaboli M, Farashi A, Rezaei H, Naghavi M, Coad B (2014) Reassessment of the taxonomic position of Iranocypris typhlops Bruun & Kaiser, 1944 (Actinopterygii, Cyprinidae). ZooKeys 374: 69-77. https://doi.org/10.3897/zookeys.374.6617
Figure 1 - (Left) Ventral view of heads of putative Iranocypris typhlops, with (D) and without (ND) a disc, adapted from Sargeran et al. (2008); (Right) Iranocypris typhlops, adapted from (Coad 2013).
Figure 6 from: Moon S, Youn S, Soh H (2014) Description of Parvocalanus leei sp. n. (Copepoda, Calanoida, Paracalanidae) in Western Korea, with comments on the taxonomic position of Paracalanus arabiensis Kesarkar & Anil, 2010. ZooKeys 456: 29-47. https://doi.org/10.3897/zookeys.456.7741
Figure 6 - Parvocalanus leei sp. n., paratype adult male. A Leg 1, dorsal view B Leg 2, dorsal view C Leg 3, dorsal view D Leg 4, dorsal view E Leg 5, dorsal view. All scale bars 0.05 mm.
Figure 2 from: Moon S, Youn S, Soh H (2014) Description of Parvocalanus leei sp. n. (Copepoda, Calanoida, Paracalanidae) in Western Korea, with comments on the taxonomic position of Paracalanus arabiensis Kesarkar & Anil, 2010. ZooKeys 456: 29-47. https://doi.org/10.3897/zookeys.456.7741
Figure 2 - Parvocalanus leei sp. n., paratype adult female. A habitus, dorsal view B habitus, lateral view C Antennule D P5. Scale bars: A, B = 0.1 mm; C = 0.05 mm; D = 0.025 mm.
Figure 4 from: Moon S, Youn S, Soh H (2014) Description of Parvocalanus leei sp. n. (Copepoda, Calanoida, Paracalanidae) in Western Korea, with comments on the taxonomic position of Paracalanus arabiensis Kesarkar & Anil, 2010. ZooKeys 456: 29-47. https://doi.org/10.3897/zookeys.456.7741
Figure 4 - Parvocalanus leei sp. n., paratype adult female. A maxilliped B leg 1, dorsal view C leg 2, dorsal view D leg 3, dorsal view E leg 4, dorsal view. All scale bars 0.05 mm.
Figure 3 from: Moon S, Youn S, Soh H (2014) Description of Parvocalanus leei sp. n. (Copepoda, Calanoida, Paracalanidae) in Western Korea, with comments on the taxonomic position of Paracalanus arabiensis Kesarkar & Anil, 2010. ZooKeys 456: 29-47. https://doi.org/10.3897/zookeys.456.7741
Figure 3 - Parvocalanus leei sp. n., paratype adult female. A rostrum, ventral view B urosome, dorsal view C genital double-somite, ventral view D antenna E mandible F mandibular palp G maxillule. Scale bars: A–C = 0.05 mm; D–G = 0.025 mm.
Figure 5 from: Moon S, Youn S, Soh H (2014) Description of Parvocalanus leei sp. n. (Copepoda, Calanoida, Paracalanidae) in Western Korea, with comments on the taxonomic position of Paracalanus arabiensis Kesarkar & Anil, 2010. ZooKeys 456: 29-47. https://doi.org/10.3897/zookeys.456.7741
Figure 5 - Parvocalanus leei sp. n., paratype adult male. A habitus, dorsal view B habitus, lateral view C antennule D antenna E mandible F maxillule G maxilliped. Scale bars: A, B = 0.1 mm; C–G = 0.025 mm.
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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
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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.