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1,577 results for “rediscovery”
Fig. 1 in Rediscovery Of Tephritis Kogardtauica (Diptera, Tephritidae)
Fig. 1. Tephritis kogardtaucia (♀ from Iran): 1 — habitus; 2 — abdomen (dorsal view); 3 — wing; 4 — aculeus (ventral view); 5 — eversible membrane (ventral view); 6 — aculeus tip (ventral view); 7 — spermathecae.
Fig. 3 in Rediscovery Of Tephritis Kogardtauica (Diptera, Tephritidae)
Fig. 3. Inula stenocalathia (Rech. f.) Soldano, the host plant of T. kogardtauica (1), and a female of T. kogardtauica (2, 3) on its flower heads.
Fig. 5 in Rediscovery of the rare Star Mountains Worm-eating Snake, Toxicocalamus ernstmayri O'Shea et al., 2015 (Serpentes: Elapidae: Hydrophiinae) with the description of its coloration in life
Fig. 5. Distinguishing Toxicocalamus from Micropechis. (A, A')Holotype of T. ernstmayri (MCZ R-145946) from Wangbin, Western Province, PNG. (B, B') Holotype of T. grandis (BMNH 1946.1.18.34) from Setakwa River, Papua Province, Indonesian New Guinea. (C, C') Yellow phase of Micropechis ikaheka (BMNH 1909.4.30.12) from the FakFak Peninsula, West Papua Province, Indonesian New Guinea. Color-coding of head scalation includes six supralabials (orange), a single anterior temporal (yellow), two posterior temporals (blue), and a temporolabial (red). The individual we report here clearly has the same head scute arrangement as T. ernstmayri.
Fig. 2 in Rediscovery of the rare Star Mountains Worm-eating Snake, Toxicocalamus ernstmayri O'Shea et al., 2015 (Serpentes: Elapidae: Hydrophiinae) with the description of its coloration in life
Fig. 2. The first live individual of Toxicocalamus ernstmayri, observed and photographed in broad daylight at the Ok Tedi Mine, North Fly District, Western Province, Papua New Guinea. (A) The individual's serendipitous crossing of a 747 mm wide tire track allowed an approximation of its total length as near 850 mm. (B) The snake moves in a straight line across open ground. (C) Slower movement across a rubble pile allowed a more detailed examination of head and body scales (see Fig. 4). (D) The individual moving under the tracks of a stationary digger. Photos by Blaise Paivu.
Fig. 3 in Rediscovery of the rare Star Mountains Worm-eating Snake, Toxicocalamus ernstmayri O'Shea et al., 2015 (Serpentes: Elapidae: Hydrophiinae) with the description of its coloration in life
Fig. 3. View of an actively worked area of the Ok Tedi Mine. The observed individual of Toxicocalamus ernstmayri eventually disappeared into the vegetation on the slope in the top left of the photograph. Photo by Blaise Paivu.
Fig. 1 in Rediscovery of the rare Star Mountains Worm-eating Snake, Toxicocalamus ernstmayri O'Shea et al., 2015 (Serpentes: Elapidae: Hydrophiinae) with the description of its coloration in life
Fig. 1. Satellite map (derived from Google Earth) of the southern Star Mountains, North Fly District, Western Province, Papua New Guinea, with yellow dots on the larger map indicating two localities (Wangbin and Ok Tedi Mine), approximately 13 km apart, where Toxicocalamus ernstmayri has been recorded. The main town is Tabubil at the confluence of the Ok Tedi and Ok Mani, which flow into the Fly River. Scale = 5 km. The inset map illustrates the location of the larger map in relationship to the rest of New Guinea.
Fig. 4 in Rediscovery of the rare Star Mountains Worm-eating Snake, Toxicocalamus ernstmayri O'Shea et al., 2015 (Serpentes: Elapidae: Hydrophiinae) with the description of its coloration in life
Fig. 4. Confirming the individual's identification as Toxicocalamus ernstmayri. (A) Close-up of the snake shown in Fig. 2C with insets B, C, and D indicated. (B, B') Head and neck in extreme close-up. Color coding of head scalation includes six supralabials (orange), one anterior temporal (yellow), and two posterior temporals (blue), but no temporolabial (see Fig. 5). The head scutes appear to comply with the colubrid-elapid nine dorsal scute arrangement (i.e., two internasals, two prefrontals, one frontal, two supraoculars, and two parietals; therefore lacking any head scute fusion, although this is difficult to discern from the magnified image with accuracy. (C, C') Based on the visible dorsal scales, the dorsal scale count on the anterior body is 15. The count is achieved by locating the vertebral scale row and counting down to the lowest dorsal scale row (eight scales), doubling the count, and subtracting one scale to account for the single vertebral scale row. (D, D') The dorsal scale count at midbody, performed as described for the previous panel, is also 15.
Fig. 6 in Rediscovery, taxonomic and conservation status of the threatened catfish Listrura camposi (Miranda-Ribeiro) (Siluriformes: Trichomycteridae)
Fig. 6. Geographic distribution of Listrura camposi (circles) and Listrura sp. (square) from município de Florianópolis; Southeastern Brazil, Santa Catarina to São Paulo States. Open circle indicates the type locality of L. camposi.
Fig. 5 in Rediscovery, taxonomic and conservation status of the threatened catfish Listrura camposi (Miranda-Ribeiro) (Siluriformes: Trichomycteridae)
Fig. 5. Skeleton of Listrura camposi, MNRJ 37023, 35.7 mm SL. (a) Skull and Weberian capsule in dorsal (left) and ventral (right) views. (b) Lower jaw, left side; internal view. (c) Gill arches, dorsal view. Right dorsal elements not drawn. (d) Hyoid arch, left side: ventral view. Dashed lines indicate the tip of the lateral process of parurohyal in relation to ceratohyals. (e) Pectoral girdle, left side: ventral view. Legends: AA+RA - angulo-articular and retro-articular co-ossified, AC - anterior ceratohyal, AN - antorbital, AU - autopalatine, B2-4 - basibranchials 2 to 4, BA+EX - fused basioccipital-exoccipitals, BR - branchiostegal rays, C1-5 - ceratobranchials 1 to 5, CL - cleithrum, cpr - coronoid process, DE - dentary, E1-4 - epibranchials 1 to 4, EP - epioccipital, FR - frontal, H1-4 - hypobranchials 1 to 4, IC - interceratohyal cartilage, LE - lateral ethmoid, ll1-2 - pores 1 and 2 of main lateral line, MA - maxilla, MC - Meckel cartilage, ME - mesethmoid, OB - orbitosphenoid, P3-4 - pharyngobranchials 3 and 4, PA - parasphenoid, PC - posterior ceratohyal, PF - pectoral-fin rays, PM - premaxilla, PP - "posttemporosupracleithrum", pp1 - pore 1 of preopercular canal, po1 - pore 1 of postotic canal, PT - pterotic, PR1-2 - proximal radials 1 and 2, RA - retro-articular, SC - scapulocoracoid, SO - sesamoid supraorbital, SP+PO+PS - fused sphenotic-prootic-pterosphenoid, SU - parieto-supraoccipital, TP - tooth plate, UH - parurohyal, VH - ventral hypohyal, VO - vomer, WE - Weberian capsule.
Fig. 4 in Rediscovery, taxonomic and conservation status of the threatened catfish Listrura camposi (Miranda-Ribeiro) (Siluriformes: Trichomycteridae)
Fig. 4. Caudal skeleton of Listrura camposi, MNRJ 37023, 35.7 mm SL, left side: lateral view. The arrow indicates the vestigial neural arch of preural-1 centrum. Legends: H3+H4+H5 - fused hypural 3-hypural 4-hypural 5, HS - hemal spine, NS - neural spine, P1+U1 - fused preural 1-ural 1, P2 - preural centrum 2, PH+H1+H2 - fused parhypural -hypural 1- hypural 2, UN - uroneural.
Fig. 1. Listrura camposi, MZUSP 95189, 46.4 in Rediscovery, taxonomic and conservation status of the threatened catfish Listrura camposi (Miranda-Ribeiro) (Siluriformes: Trichomycteridae)
Fig. 1. Listrura camposi, MZUSP 95189, 46.4 mm SL, live specimen; Brazil, São Paulo State, município de Pedro de Toledo. Photo by Cristiano Moreira.
Fig. 2 in Rediscovery, taxonomic and conservation status of the threatened catfish Listrura camposi (Miranda-Ribeiro) (Siluriformes: Trichomycteridae)
Fig. 2. Head detail of Listrura camposi, MZUSP 95189, 46.4 mm SL in (a) dorsal and (b) ventral views.
Fig. 7 in Rediscovery, taxonomic and conservation status of the threatened catfish Listrura camposi (Miranda-Ribeiro) (Siluriformes: Trichomycteridae)
Fig. 7. Photograph of small stream tributary to rio Itariri, itself tributary to rio Juquiá, rio Ribeira de Iguape basin, 24°15'06.4"S 47º14'53.3"W, locality of the newly-discovered population of Listrura camposi.
FIGURE 2 in A Century after! Rediscovery of the ancient catfish Diplomystes Bleeker 1858 (Siluriformes: Diplomystidae) in coastal river basins of Chile and its implications for conservation
FIGURE 2 | Individuals of Diplomystes nahuelbutaensis recorded in this study and their habitat. A. individual collected in Laraquete (Lar01); B. individual collected and released in Carampangue. C. individual collected in Laraquete (Lar02) and released; D. Habitat of D. nahuelbutaensis in the Cabrera River, Carampangue Basin.
FIGURE 4 in A Century after! Rediscovery of the ancient catfish Diplomystes Bleeker 1858 (Siluriformes: Diplomystidae) in coastal river basins of Chile and its implications for conservation
FIGURE 4 | Null distribution of Fst values assuming a panmictic model versus the observed Fst value (vertical line) between Coastal and Biobío samples of Diplomystes nahuelbutaensis.
Figure 2. A–G, Madagascan Scarabaeini species. A, B in Rediscovery of Scarabaeus sevoistra Alluaud, 1902 (Coleoptera: Scarabaeinae): biological notes and IUCN Red Listing
Figure 2. A–G, Madagascan Scarabaeini species. A, B, holotype male of Scarabaeus sevoistra Alluaud, 1902 and the associated labels from the MNHN; C, habitus drawing of a female S. sevoistra (from Paulian & Lebis (1960: 14)) for comparison; note the dimorphism in the shape and form of the protibiae of the male (A) and female (C); D, Scarabaeus radama Fairmaire, 1895; E, F, Scarabaeus viettei (Paulian, 1953), holotype female and the associated labels from the MNHN. Scale bar is 10 mm.
Figure 1. A–F in Rediscovery of Scarabaeus sevoistra Alluaud, 1902 (Coleoptera: Scarabaeinae): biological notes and IUCN Red Listing
Figure 1. A–F, Recent photographic observations of Scarabaeus sevoistra Alluaud, 1902. A, B, C, photographed by Joseph Thompson, 04 November 2015; D, photographed by Bitty Roy, 17 November 2019; E, F, photographed by Maxim Nuraliev, 01 August 2015.
Figure 3 in Rediscovery of Scarabaeus sevoistra Alluaud, 1902 (Coleoptera: Scarabaeinae): biological notes and IUCN Red Listing
Figure 3. Map showing the ecoregions of Madagascar with the Madagascan spiny thickets in the southwest.
Fig. 15 in Rediscovery of the enigmatic Madagascan endemic Belohina inexpectata Paulian, 1958, with notes on its morphology and phylogenetic position (Coleoptera, Scarabaeoidea: Belohinidae)
Fig. 15 – Maximum likelihood phylogeny of Scarabaeoidea, with a 39-taxon tree of the clade of Belohinidae, Dynamopodidae, and Hybosoridae, and the related families represented as single tips. Ultrafast bootstrap values show branch support. The inset tree on left displays the summary of the family-level relationships of interest for Belohina.
Fig. 16 in Rediscovery of the enigmatic Madagascan endemic Belohina inexpectata Paulian, 1958, with notes on its morphology and phylogenetic position (Coleoptera, Scarabaeoidea: Belohinidae)
Fig. 16 – Distribution map of Belohina, Belohinidae (star), its sister taxon Orubesa, Dynamopodidae (circles), and a potential second Dynamopodidae genus, Adraria (triangle). Sources for Orubesa occurrences: GBIF (1 record), Balthasar (1968), Barari (2001), Chavanon (2018), Gosh et al. (2020), Kocher (1958), Král et al. (2023), Krell (2021), Paulian (1954), Petrovitz (1958), Reitter (1895), Semenow (1895), Semenov-Tian-Shanskij & Medvedev (1929), Shokhin (2007), Zavattari (1934), A. Ballerio, unpublished, P. Moretto, pers comm.; M. J. Paulsen, unpublished, D. Potanin, pers. comm., P. Tauzin pers. comm. Adraria is known only from the locus typicus (Villiers 1956).
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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)
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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.