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264 results for “systematic status”
Fig. 3 in Species or population? Systematic status of Vieja coatlicue (Teleostei: Cichlidae)
Fig. 3. Haplotype network recovered from analysis of the cyt b dataset for populations of Vieja coatlicue (Atlantic) and Vieja zonata (Pacific). Dashes lines represent mutational steps.
Fig. 2 in Species or population? Systematic status of Vieja coatlicue (Teleostei: Cichlidae)
Fig. 2. Bayesian phylogeny based on cytochrome b sequence data. Number above clades is posterior probability.
Fig. 1 in Species or population? Systematic status of Vieja coatlicue (Teleostei: Cichlidae)
Fig. 1. Map of Mexico displaying localities for specimens (triangles) examined and tissue samples (circles) for Vieja coatlicue (green) and Vieja zonata (black) used in this study. Star indicates locality for Vieja guttulata sample.
Figure 1 in Systematic status of Systomus rubrotinctus Jerdon (Teleostei: Cyprinidae) with notes on the Puntius arulius group of fishes
Figure 1. Descriptive map of southern peninsular India, showing the various locations from which P. arulius group of fishes were examined in this present study: A - KIOCL plant, Bhadra River; B - Khabini river; C - Bhavali River; D - Mavanahalla, Moyar River; E - Varkhala, Kallada River; F - Kodaimel Azhakian Anicut, Tambraparani River; G - Cheremadevi, Tambraparani River; H - Tirunelveli Town, Tambraparani River. (Map not to scale)
FIGURES 16 – 21. Female genitalia and papillae anales. 16 in Systematics of Schinia cupes (Grote) complex: Revised status of Schinia crotchii (Hy. Edwards) (Lepidoptera: Noctuidae: Heliothinae)
FIGURES 16 – 21. Female genitalia and papillae anales. 16, Schinia cupes; 17, S. crotchii; 18, S. deserticola; 19, S. cupes, papillae anlaes; 20, S. crotchii, papillae anales; 21, S. deserticola, papillae anales.
FIGURES 10 – 15. Male genitalia and aedoeagus. 10 in Systematics of Schinia cupes (Grote) complex: Revised status of Schinia crotchii (Hy. Edwards) (Lepidoptera: Noctuidae: Heliothinae)
FIGURES 10 – 15. Male genitalia and aedoeagus. 10, Schinia cupes; 11, S. cupes, aedeagus; 12, S. crotchii; 13, S. crotchii, aedeagus; 14, S. deserticola; 9, 15, S. deserticola, aedeagus.
FIGURES 5 – 12 in Revision of the systematic status of Helminthoglypta walkeriana morroensis (Hemphill, 1911) (Gastropoda: Pulmonata)
FIGURES 5 – 12. Shells of Helminthoglypta morroensis and H. walkeriana. Figures 5 – 8. Helminthoglypta morroensis, BR 2571, Highway 1 at Stenner Road, San Luis Obispo; top, side, and basal views of shell and detail of papillose sculpture (scored as Ppl = 3, see Methods section) on shoulder of penultimate and body whorls. Shell diameter 23.1 mm. Figures 9 – 12. Helminthoglypta walkeriana, BR 2568, Elfin Forest; detail of papillose sculpture (Ppl = 1) and spiral grooves (Grv = 2) on shoulder of penultimate and body whorls, top, side, and basal views of shell. Shell diameter 22.1 mm.
FIGURE 1 in Revision of the systematic status of Helminthoglypta walkeriana morroensis (Hemphill, 1911) (Gastropoda: Pulmonata)
FIGURE 1. Geographic distribution of Helminthoglypta walkeriana () and Helminthoglypta morroensis () shown as line polygons. Open symbols represent locations of occurrence; filled symbols indicate sites where shells were collected for morphometric analyses (see Table 1 for site descriptions and abbreviations). Projected distribution of H. morroensis beyond documented shell occurrences based on topography, soils, and vegetation similarities with known sites. Shaded regions are communities, as labeled.
Text-fig. 2. Eospondylus primigenius (STÜRTZ) Bundenbach, Eschenbach-Bocksberg quarry, Lower Devonian, Lower Emsian (Zlichovian), Hunsrück Slate,, NM S 4764, x 3. Specimen with ventral arm coiling. The specimen is on its dorsum in slate with all five rays curled ventrally inward toward mouth area on underside of disk. Barely visible are tips of two jaws; slightly exposed are proximal parts of rays in oral view extending outward from disk. The location of abrupt ventral bending of rays is indicated by emergence from slate of five rays in aboral view that point inward toward buried disk. Based on ventral bending of rays and intimate association with crinoids Eospondylus has been interpreted as stratigraphic first occurrence of Order Euryalida, which contains epizoic gorgonocephalid and euryalid basket-stars of modern oceans. This status is rejected using new evidence from isolated vertebrae. [Photo by Alexander Glass]. in Isolated Ossicles Of The Family Eospondylidae Spencer Wright, 1966, In The Lower Devonian Of Bohemia (Czech Republic) And Correction Of The Systematic Position Of Eospondylid Brittlestars (Echinodermata: Ophiuroidea: Oegophiurida)
Text-fig. 2. Eospondylus primigenius (STÜRTZ) Bundenbach, Eschenbach-Bocksberg quarry, Lower Devonian, Lower Emsian (Zlichovian), Hunsrück Slate,, NM S 4764, x 3. Specimen with ventral arm coiling. The specimen is on its dorsum in slate with all five rays curled ventrally inward toward mouth area on underside of disk. Barely visible are tips of two jaws; slightly exposed are proximal parts of rays in oral view extending outward from disk. The location of abrupt ventral bending of rays is indicated by emergence from slate of five rays in aboral view that point inward toward buried disk. Based on ventral bending of rays and intimate association with crinoids Eospondylus has been interpreted as stratigraphic first occurrence of Order Euryalida, which contains epizoic gorgonocephalid and euryalid basket-stars of modern oceans. This status is rejected using new evidence from isolated vertebrae. [Photo by Alexander Glass].
Linked collectors and determiners for: Contributions on Gargaphia (Heteroptera, Tingidae) systematics: redescriptions of two South American species with considerations on the status of G. inca.
Natural history specimen data linked to collectors and determiners held within, "Contributions on Gargaphia (Heteroptera, Tingidae) systematics: redescriptions of two South American species with considerations on the status of G. inca". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/6f963d48-83e5-4fe9-8373-34cb90bad830">https://bionomia.net/dataset/6f963d48-83e5-4fe9-8373-34cb90bad830</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/6f963d48-83e5-4fe9-8373-34cb90bad830">https://gbif.org/dataset/6f963d48-83e5-4fe9-8373-34cb90bad830</a>. Formatted as a Frictionless Data package.
Figure 1 in Redescription and systematic status of the Antarctic genus Abietinella Levinsen, 1913 (Lafoeidae, Hydrozoa, Cnidaria)
Figure 1. Abietinella operculata (Jäderholm, 1903), holotype SMNH 5708. (A) Apical portion of colony; (B) hydrotheca with dish-shaped operculum and basal lateral nematothecae; (C) lateral view of hydrotheca and apophysis; (D) hydrotheca and hydranth with abcauline triangular caecum; (E) hydrothecal diaphragm; (F) origin of lateral branch; (G) hydrothecal rim renovation; (H) basal hydrotheca without nematothecae. Scale bars: 2 mm (A); 200 Mm (B–D, H); 50 Mm (E, G); 400 Mm (F).
Fig. 12 in Systematics of the family Ocypodidae Rafinesque, 1815 (Crustacea: Brachyura), based on phylogenetic relationships, with a reorganization of subfamily rankings and a review of the taxonomic status of Uca Leach, 1814, sensu lato and its subgenera
Fig. 12. Photographs of some species of the genera Tubuca, Xeruca and Ucides. A, T. urvillei (Ranong, Thailand); B, X. formosensis (Taiwan); C, D, U. cordatus (Brazil).
Fig. 10 in Systematics of the family Ocypodidae Rafinesque, 1815 (Crustacea: Brachyura), based on phylogenetic relationships, with a reorganization of subfamily rankings and a review of the taxonomic status of Uca Leach, 1814, sensu lato and its subgenera
Fig. 10. Photographs of some species of the genera Minuca, Paraleptuca, Petruca and Tubuca. A, M. herradurensis (Panama); B, M. rapax (Brazil); C, Pa. chlorophthalmus (East Africa); D, Pa. crassipes (Donghsa, Taiwan); E, Pa. splendida (Penghu, Taiwan); F, Pe. panamensis (Costa Rica); G, T. arcuata (Hainan, China); H, T. bellator (Labuan, Malaysia). C, courtesy of S. Cannicci.
Fig. 8 in Systematics of the family Ocypodidae Rafinesque, 1815 (Crustacea: Brachyura), based on phylogenetic relationships, with a reorganization of subfamily rankings and a review of the taxonomic status of Uca Leach, 1814, sensu lato and its subgenera
Fig. 8. Photographs of some species of the genus Austruca. A, A. annulipes (Tioman, Malaysia); B, A. bengali (Selangor, Malaysia); C, A. iranica (Iran); D, A. lactea (Taiwan); E, A. mjoebergi (New Territory, Australia); F, A. perplexa (Dongsha, Taiwan); G, A. sindensis (Iran); H, A. triangularis (Cebu, Philippines). E, courtesy of P. Backwell.
Fig. 7 in Systematics of the family Ocypodidae Rafinesque, 1815 (Crustacea: Brachyura), based on phylogenetic relationships, with a reorganization of subfamily rankings and a review of the taxonomic status of Uca Leach, 1814, sensu lato and its subgenera
Fig. 7. Photographs of some species of the genus Gelasimus. A, G. borealis (Taiwan); B, G. dampieri (Northern Territory, Australia); C, G. hesperiae (Zanzibar, holotype); D, G. jocelynae (Penghu, Taiwan); E, G. neocultrimana (Fiji); F, G. tetragonon (Penghu, Taiwan); G, G. vocans (Labuan, Malaysia); H, G. vomeris (Queensland, Australia).
Fig. 5 in Systematics of the family Ocypodidae Rafinesque, 1815 (Crustacea: Brachyura), based on phylogenetic relationships, with a reorganization of subfamily rankings and a review of the taxonomic status of Uca Leach, 1814, sensu lato and its subgenera
Fig. 5. Photographs of some species of the genus Ocypode. A, O. ceratophthalmus (Taiwan); B, O. cordimana (Dongsha, Taiwan); C, O. fabricii (Northern Territory, Australia); D, O. kuhlii (Christmas Island); E, O. occidentalis (Panama); F, O. rotundata (Iran); G. O. sinensis (Dongsha, Taiwan); H, O. stimpsoni (Taiwan).
Fig. 2. A in Systematics of the family Ocypodidae Rafinesque, 1815 (Crustacea: Brachyura), based on phylogenetic relationships, with a reorganization of subfamily rankings and a review of the taxonomic status of Uca Leach, 1814, sensu lato and its subgenera
Fig. 2. A Bayesian inference (BI) tree of the family Ocypodidae and outgroups, based on the combined 28S, 16S and COI markers. The solid circle at the node means it is strongly supported by both BI (≥ 90) and ML (≥ 70); and the open circle means only one method is strongly supported. Name of species or genus quoted means it is suggested as a synonym in this study.
Fig. 6 in Systematics of the family Ocypodidae Rafinesque, 1815 (Crustacea: Brachyura), based on phylogenetic relationships, with a reorganization of subfamily rankings and a review of the taxonomic status of Uca Leach, 1814, sensu lato and its subgenera
Fig. 6. Photographs of some species of the genera Afruca and Uca s. str. A, B, A. tangeri (Spain); C, U. heteropleura (Panama); D, U. insignis (El Salvador); E, U. major (Bahamas); F, U. maracoani (Brazil); G, U. princeps (Peru); H, U. stylifera (Panama).
Fig. 3. The simplified phylogenetic tree modified from Figs. 1 & 2 in Systematics of the family Ocypodidae Rafinesque, 1815 (Crustacea: Brachyura), based on phylogenetic relationships, with a reorganization of subfamily rankings and a review of the taxonomic status of Uca Leach, 1814, sensu lato and its subgenera
Fig. 3. The simplified phylogenetic tree modified from Figs. 1 & 2, with number of species beside or below the taxa/group. The gray boxes mean the genera are not fiddler crabs.
Fig. 1. A in Systematics of the family Ocypodidae Rafinesque, 1815 (Crustacea: Brachyura), based on phylogenetic relationships, with a reorganization of subfamily rankings and a review of the taxonomic status of Uca Leach, 1814, sensu lato and its subgenera
Fig. 1. A Bayesian inference (BI) tree of the family Ocypodidae and outgroups, based on the combined 28S rRNA, 16S rRNA and COI markers, showing the three clades (three subfamilies), indicated in different colours. The subfamily Gelasiminae is composed of two groups, one is for all Indo-West Pacific fiddler crabs, the other for the American broad-fronted fiddler crabs.
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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.