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Figs 14–29. 14–21 in Eleven New Mirax Haliday, 1833 Species From Colombia And Honduras And Key To The Sixteen Neotropical Mirax Species (Hymenoptera: Braconidae: Miracinae)
Figs 14–29. 14–21: Mirax (Centistidea) brasiliensis Brues (female): 14 = scape, 15 = head in dorsal view, 16 = mesoscutum with notaulix, 17 = propodeum, 18 = hind femur, 19 = pterostigma and 2–SR of right fore wing, 20 = first discal cell, 21 = tergites 1–2. – 22–29: Mirax (Centistidea) carinatus sp. n. (female holotype): 22 = flagellomeres 1–3, 23 = head in dorsal view, 24 = head in lateral view, 25 = propodeum, 26 = hind femur, 27 = pterostigma and
Figs 15–18 in Four New Species Of The Genus Athlophorus Burmeister, 1847 From The Indian Himalayas (Hymenoptera: Symphyta: Tenthredinidae: Allantinae) With A Key To Indian Species
Figs 15–18. Athlophorus adults in dorsal view: 15 = A. smithi sp. n., female, 16 = A. taegeri sp. n., male, 17 = A. weii sp. n., male, 18 = A. toongensis sp. n., female
Figs 6–10. Temnothorax species. 6 in Three New Species Of Genus Temnothorax (Hymenoptera: Formicidae) From Indian Himalayas With A Revised Key To The Indian Species
Figs 6–10. Temnothorax species. 6 = T. kashmirensis sp. n., worker, body, dorsal view; 7–9 = T. kashmirensis sp. n., queen: 7 = head, full face view, 8 = body, lateral view, 9 = body, dorsal view; 10 = T. microreticulatus sp. n., worker, head, full face view
Figs 1–5. Temnothorax workers. 1–3 in Three New Species Of Genus Temnothorax (Hymenoptera: Formicidae) From Indian Himalayas With A Revised Key To The Indian Species
Figs 1–5. Temnothorax workers. 1–3 = T. himachalensis sp. n.: 1 = head, full face view, 2 = body, lateral view, 3 = body, dorsal view; 4–5 = T. kashmirensis sp. n.: 4 = head, full face view, 5 = body, lat-
Figs 11–15. Temnothorax species. 11–12 in Three New Species Of Genus Temnothorax (Hymenoptera: Formicidae) From Indian Himalayas With A Revised Key To The Indian Species
Figs 11–15. Temnothorax species. 11–12 = T. microreticulatus sp. n., worker: 11 = body, lateral view, 12 = body, dorsal view. 13–15 = T. microreticulatus sp. n., queen: 13 = head, full face view, 14 = body,
Figs 1–14. Athlophorus spp. A in Four New Species Of The Genus Athlophorus Burmeister, 1847 From The Indian Himalayas (Hymenoptera: Symphyta: Tenthredinidae: Allantinae) With A Key To Indian Species
Figs 1–14. Athlophorus spp. A. taegeri sp. n.: 1 = penis valve, 2 = gonoforcep, 7 = clypeus, 11 = tarsal claw. A. weii sp. n.: 3 = penis valve, 4 = gonoforcep, 8 = clypeus, 12 = tarsal claw. A. smithi sp. n.: 5 = lancet, 9 = clypeus, 13 = tarsal claw. A. toongensis sp. n.: 6 = lancet, 10 = clypeus, 14 = tarsal claw
Figs 1–6 in On The Subgenus Eurysunius Reitter Of Turkey Iv. A New Species From Southwestern Anatolia With A Key To Species (Coleoptera: Staphylinidae, Paederinae, Astenus)
Figs 1–6. Details of Astenus (Eurysunius) goeki sp. n.: 1 = habitus, 2 = forebody, 3 = male sternite VII, 4 = male sternite VIII, 5 = aedeagus, lateral view, 6 = aedeagus, ventral view. Scale bars: 0.5 mm for Figs (1–2) and 0.2 mm for Figs 3–6
FIG. 5 in Shrews (Mammalia, Eulipotyphla) from a biodiversity hotspot, Mount Nimba (West Africa), with a field identification key to species
FIG. 5. — Plot between the two first axes of the CVA performed upon four external body measurements (head and body, tail, hindfoot, and tail lengths) for 252 shrew specimens from Mount Nimba, Ziama and surrounding areas. Each species is represented by a color dot. Yellow dots indicate class barycenter and ellipses at 0.05% confidence; b, C. buettikoferi Jentink, 1888; d, C. douceti Heim de Balsac, 1958; e, C. eburnea Heim de Balsac, 1958; g, C. grandiceps Hutterer, 1983; j, C. jouvenetae Heim de Balsac, 1958; C. muricauda (Miller, 1900); mu, S. megalura (Jentink, 1888); n, C. nimbae Heim de Balsac, 1956; o, C. obscurior Heim de Balsac, 1958; ol, C. olivieri (Lesson, 1827); sy, C. nimbasilvanus Hutterer, 2003; t, C. theresae Heim de Balsac, 1968.
FIG. 1 in Shrews (Mammalia, Eulipotyphla) from a biodiversity hotspot, Mount Nimba (West Africa), with a field identification key to species
FIG. 1. — Detail of the trapping localities at Mount Nimba with respect to elevation. Sampling sites are shown in black circles. Light and dark grey shading refer to areas above 600 m and 1000 m, respectively. Names of localities used in this work as follows: G, Guinea; L, Liberia, Gbié: G1-A, B; Gouan: G2-A, B; Seringbara:G3; Gblayougouma G4; Ziéla: G5; East Nimba Nature Reserve L1-A, B, C; Bentor: L2; Bonlah: L3; Yekepa: L4; Tailings: L5; Camp4: L6; Liabala: L7; Gbapa: L8; Zolowee: L9; Grassfield: L10; Border (Yekepa): L11.
APPENDIX 8 in Shrews (Mammalia, Eulipotyphla) from a biodiversity hotspot, Mount Nimba (West Africa), with a field identification key to species
APPENDIX 8. — Nimba shrews skins with field numbers: A, MNHN-ZM-2014-900 (LB07) C. buettikoferi Jentink, 1888 Camp 4; B, MNHN-ZM-2012-1079 (NIM217) C. grandiceps Hutterer, 1983 Gouan; C, MNHN-ZM-2012-1158 (NIM201) C. olivieri (Lesson, 1827) Gbié; D, MNHN-ZM-2012-1111 (NIM232) C. muricauda (Miller, 1900) Gouan; E, MNHN-ZM-2012-1180 (NIM 301) C. theresae Heim de Balsac, 1968 Gouan; F, MNHN-ZM-MO-1981-492 C. nimbae Heim de Balsac, 1956 Holotype Zouguepo; G, MNHN-ZM-MO-1981-483 C. eburnea Heim de Balsac, 1958 Mt Tonkui; H, MNHN-ZM-2012-1123 (NIM 219) C. obscurior Heim de Balsac, 1958 Gouan.
FIG. 4 in Shrews (Mammalia, Eulipotyphla) from a biodiversity hotspot, Mount Nimba (West Africa), with a field identification key to species
FIG. 4. — Standard karyotypes from Mount Nimba shrews: A, male C. buettikoferi Jentink, 1888 MNHN-ZM-2012-1071, 2n = 52, NFa = 66; B, male C. grandiceps Hutterer, 1983 MNHN-ZM-2012-1077, 2n = 46, NFa = 64; C, male C. jouvenetae Heim de Balsac, 1958 MNHN-ZM-2012-1091, 2n = 44, NFa = 68; D, male C. olivieri (Lesson, 1827) MNHN-ZM-2012-1164, 2n = 50, NFa = 60; E, female C. theresae Heim de Balsac, 1968 MNHN-ZM-2012-1171, 2n = 50, NFa = 70.
FIG. 7 in Shrews (Mammalia, Eulipotyphla) from a biodiversity hotspot, Mount Nimba (West Africa), with a field identification key to species
FIG. 7. — Comparison of the relative abundance (% on y axis) of shrew species between four different surveys. Nimba this work (N = 226), Taï: Churchfield et al. (2004) (N = 553), Ziama: Nicolas et al. (2009) (N = 2571), Dodo-Haut Cavally: Decher et al. (2005) (N = 15). For authorships of the species, see Table 5.
FIG. 3 in Shrews (Mammalia, Eulipotyphla) from a biodiversity hotspot, Mount Nimba (West Africa), with a field identification key to species
FIG. 3. — Craniodental measurements used for morphometric analyses adapted from Dippenaar (1977) and Hutterer & Kock (2002): a, condyle-incisive length; b, nasal width; c, interorbital width; d, occipital greatest width; e, greatest maxillary width; f, upper tooth row length; g, height of the skull at M2 level; h, greatest braincase height; i, mandibular length; j, lower tooth row length; k, greatest length between extremities of the coronoid and angular processes.
FIG. 2 in Shrews (Mammalia, Eulipotyphla) from a biodiversity hotspot, Mount Nimba (West Africa), with a field identification key to species
FIG. 2. — Examples of habitats where pitfall traps were placed on the Guinean and Liberian Nimba: A, gallery forest and swamp, camp 4 (Liberia); B, pitfall, altitude savannah with Loudetia kagerensis, Mare d'hivernage site (1642 m) (Guinea); C, pitfall, Selingbala (Guinea): mesophyllous secondary forest; D, pitfall, Gbie (Guinea): gallery forest with Parinari excelsa Sabine,1824, Carapa procera DC., 1824 and Pseudospondias microcarpa (A. Rich.) Engl., 1883, Maranthochloa purpurea (Ridl.) Milne-Redh.
Figure 20 in A new species of Parabonzia (Trombidiformes: Cunaxidae) based on adults and nymphs with a key to the world species
Figure 20 Parabonzia xinningensis Chen & Jin sp. nov., protonymph: A – subcapitulum; B – palp telofemur branched (3 tines) seta. Scale represents 50 μm.
Figure 19 in A new species of Parabonzia (Trombidiformes: Cunaxidae) based on adults and nymphs with a key to the world species
Figure 19 Parabonzia xinningensisChen & Jin sp. nov., protonymph: A – dorsal idiosoma; B – ventral idiosoma. Scale represents 100 μm.
Figure 16 in A new species of Parabonzia (Trombidiformes: Cunaxidae) based on adults and nymphs with a key to the world species
Figure 16 Parabonzia xinningensisChen & Jin sp. nov., deutonymph: A – palp; B – chelicerae; C – subcapitulum. Scale represents 100 μm.
Figure 17 in A new species of Parabonzia (Trombidiformes: Cunaxidae) based on adults and nymphs with a key to the world species
Figure 17 Parabonzia xinningensis Chen & Jin sp. nov., deutonymph: A – subcapitulum; B – palp telofemur branched (3 tines) seta. Scale represents 50 μm.
Figure 18 in A new species of Parabonzia (Trombidiformes: Cunaxidae) based on adults and nymphs with a key to the world species
Figure 18 Parabonzia xinningensisChen & Jin sp. nov., deutonymph: A–D – leg I–IV respectively. Scale represents 100 μm.
Figure 15 in A new species of Parabonzia (Trombidiformes: Cunaxidae) based on adults and nymphs with a key to the world species
Figure 15 Parabonzia xinningensisChen & Jin sp. nov., deutonymph: A – dorsal idiosoma; B – ventral idiosoma. Scale represents 100 μm.
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
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.