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18,745 results for “Taxonomy”
Figs 13–14 in Integrative taxonomy of the genus Dyscolus (Coleoptera, Carabidae, Platynini) in Ecuadorian Andes
Figs 13–14. Dyscolus globoculus Moret sp. nov. 13. Habitus of the male holotype (MNHN, COI voucher CR064). 14. Aedeagus, median lobe in lateral view.
Figs 7–12. 7–8 in Integrative taxonomy of the genus Dyscolus (Coleoptera, Carabidae, Platynini) in Ecuadorian Andes
Figs 7–12. 7–8. Dyscolus aquator Moret sp. nov. 7. Habitus of the male holotype (QCAZ). 8. Aedeagus, median lobe in lateral view. 9–10. D. incommunis Moret sp. nov. 9. Aedeagus, median lobe in lateral view. 10. Habitus of the male holotype (QCAZ). 11–12. D. rivinus Moret sp. nov. 11. Apex of the elytra. 12. Aedeagus, median lobe in lateral view.
Figs 3–6. 3–4 in Integrative taxonomy of the genus Dyscolus (Coleoptera, Carabidae, Platynini) in Ecuadorian Andes
Figs 3–6. 3–4. Dyscolus eleonorae Moret sp. nov. 3. Habitus of the male holotype (QCAZ). 4. Aedeagus, median lobe in lateral view. 5–6. D. giselae Moret sp. nov. 5. Habitus of the male holotype (QCAZ). 6. Aedeagus, median lobe in lateral view.
Figs 15–18. 15–16 in Integrative taxonomy of the genus Dyscolus (Coleoptera, Carabidae, Platynini) in Ecuadorian Andes
Figs 15–18. 15–16. Dyscolus donosoi Moret sp. nov. 15. Habitus of the female holotype (QCAZ, COI voucher PM402-02). 16. Aedeagus, median lobe in lateral and ventral view. 17–18. D. danglesi Moret sp. nov. 17. Habitus of the male holotype (MNHN, COI voucher PM170-01). 18. Aedeagus, median lobe in lateral view.
Fig. 4 in Taxonomy and distribution of African chiggers (Acariformes, Trombiculidae)
Fig. 4. Specialized setae of legs I, II and III of an example of Ericotrombidium sp. Double circles represent the bases of unspecialized tactile setae; single circles correspond to the unspecialized setae situated on the opposite side of the leg. Abbreviations: ga = genualae I (solenidia σ); mga = microgenuala I; ta = tibialae I (solenidia φ); mta = microtibiala I; S1 = tarsala I (solenidion ω); f1 = microtarsala I (famulus ε); pST = parasubterminala; ST = subterminala (eupathidium ζ); PTʹ = pretarsala I (eupathidium ζ); gm = genuala II; tm = tibialae II; f2 = famulus II; S2 = tarsala II; PTʺ = pretarsala II; gp = genuala III; tp = tibiala III.
Figs 42–44. 42 in Integrative taxonomy of the genus Dyscolus (Coleoptera, Carabidae, Platynini) in Ecuadorian Andes
Figs 42–44. 42. Dyscolus gobbii Moret sp. nov., habitus of the female holotype (QACZ, COI voucher PM210-16). 43–44. D. barragani Moret sp. nov. 43. Habitus of the male paratype (CPM, COI voucher PM417-02). 44. Aedeagus, median lobe in lateral view.
Figs 25–28. 25–26 in Integrative taxonomy of the genus Dyscolus (Coleoptera, Carabidae, Platynini) in Ecuadorian Andes
Figs 25–28. 25–26. Dyscolus arborarius Moret sp. nov. 25. Habitus of the male holotype (MNHN, COI voucher PM170-02). 26. Aedeagus, median lobe in lateral view. 27–28. D. famelicus Moret sp. nov. 27. Habitus of a female paratype (CPM). 28. Aedeagus, median lobe in lateral view.
Fig. 18 in Uncovering hidden diversity: phylogeny and taxonomy of Physoderinae (Reduviidae, Heteroptera), with emphasis on Physoderes Westwood in the Oriental and Australasian regions
Fig. 18. Ventral habitus images for species of Physoderes Westwood, 1845 (partial). Scale bars = 2 mm.
Fig. 15 in Uncovering hidden diversity: phylogeny and taxonomy of Physoderinae (Reduviidae, Heteroptera), with emphasis on Physoderes Westwood in the Oriental and Australasian regions
Fig. 15. Dorsal habitus images for species of Physoderes Westwood, 1845 (partial). For an explanation of the colored arrows, see key on page 66. Scale bars = 2 mm.
Fig. 13 in Uncovering hidden diversity: phylogeny and taxonomy of Physoderinae (Reduviidae, Heteroptera), with emphasis on Physoderes Westwood in the Oriental and Australasian regions
Fig. 13. Distribution map for species of Nanophysoderes gen. nov., Paraphysoderes Villiers, 1962 and Physoderes Westwood, 1845 (in part).
Fig. 16 in Uncovering hidden diversity: phylogeny and taxonomy of Physoderinae (Reduviidae, Heteroptera), with emphasis on Physoderes Westwood in the Oriental and Australasian regions
Fig. 16. Dorsal habitus images for junior synonym holotypes of species in Physoderes Westwood, 1845 (except P. minor = paratype). Scale bars = 2 mm.
Fig. 10 in Uncovering hidden diversity: phylogeny and taxonomy of Physoderinae (Reduviidae, Heteroptera), with emphasis on Physoderes Westwood in the Oriental and Australasian regions
Fig. 10. Dorsal habitus images for species of Macrophysoderes gen. nov. and Nanophysoderes gen. nov. For an explanation of the colored arrows, see key on page 37. Scale bars = 2 mm.
Fig. 4 in Uncovering hidden diversity: phylogeny and taxonomy of Physoderinae (Reduviidae, Heteroptera), with emphasis on Physoderes Westwood in the Oriental and Australasian regions
Fig. 4. Dorsal habitus images for species of Breviphysoderes gen. nov. For an explanation of the colored arrows, see key on page 17. Scale bars = 2 mm.
Fig. 14 in Uncovering hidden diversity: phylogeny and taxonomy of Physoderinae (Reduviidae, Heteroptera), with emphasis on Physoderes Westwood in the Oriental and Australasian regions
Fig. 14. Dorsal habitus images for species of Paraphysoderes Villiers, 1962 and Physoderes Westwood, 1845 (partial). For an explanation of the colored arrows, see keys on page 63 and 66. Scale bars = 2 mm.
Fig. 3 in Uncovering hidden diversity: phylogeny and taxonomy of Physoderinae (Reduviidae, Heteroptera), with emphasis on Physoderes Westwood in the Oriental and Australasian regions
Fig. 3. Dorsal habitus images of other specimens examined for morphological coding. Images by Jean-Michel Berenger, except Leptophysoderes sarapiqui Davranoglou, Hwang & Weirauch, 2015 and Aradomorpha crassipes Champion, 1899. Scale bars = 2 mm.
Fig. 11 in Uncovering hidden diversity: phylogeny and taxonomy of Physoderinae (Reduviidae, Heteroptera), with emphasis on Physoderes Westwood in the Oriental and Australasian regions
Fig. 11. Ventral habitus images for species of Macrophysoderes gen. nov. and Nanophysoderes gen. nov. Scale bars = 2 mm.
Fig. 8 in Uncovering hidden diversity: phylogeny and taxonomy of Physoderinae (Reduviidae, Heteroptera), with emphasis on Physoderes Westwood in the Oriental and Australasian regions
Fig. 8. Dorsal view of the male pygophore in species of Breviphysoderes gen. nov., Macrophysoderes gen. nov., Paraphysoderes Villiers, 1962 and Physoderes Westwood, 1845. For an explanation of the colored arrows, see keys on pages 37 and 66.
Fig. 2 in Uncovering hidden diversity: phylogeny and taxonomy of Physoderinae (Reduviidae, Heteroptera), with emphasis on Physoderes Westwood in the Oriental and Australasian regions
Fig. 2. Phylogeny of Physoderinae based on 57 morphological characters for 57 taxa analyzed using parsimony on TNT. Open white circles denote homoplastic characters, black circles denote characters that are not homoplastic. Numbers above the circles refer to character number (Table 1) and numbers below the circles refer to the character states (Table 3). Numbers in bold indicate symmetric resampling values.
Fig. 1 in Uncovering hidden diversity: phylogeny and taxonomy of Physoderinae (Reduviidae, Heteroptera), with emphasis on Physoderes Westwood in the Oriental and Australasian regions
Fig. 1. In situ images of Physoderes curculionis China, 1936 in Singapore on mossy substrate (left) and vegetation debris (right).
Fig. 29 in Taxonomy, systematics and biology of the Australian halotolerant wolf spider genus Tetralycosa (Araneae: Lycosidae: Artoriinae)
Fig. 29. Tetralycosa halophila sp. nov. and T. williamsi sp. nov., distribution records in Australia.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.