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2,477 results for “type species”
Figures 15–20. Fig. 15 in The species of Papilionidae and Pieridae (Lepidoptera) described by Cramer and Stoll and their putative type material in the Natural History Museum in London
Figures 15–20. Fig. 15. Papilio lycidas Cramer (syntype). Fig. 16. Papilio lysander Cramer (syntype). Fig. 17. Papilio minos Cramer (specimen matching Cramer figure). Fig. 18. Papilio polydorus Linnaeus (specimen with 'van Lennep' label). Fig. 19. Papilio protenor Cramer (syntype). Fig. 20. Papilio sesostris Cramer (syntype).
Figures 9–14. Fig. 9 in The species of Papilionidae and Pieridae (Lepidoptera) described by Cramer and Stoll and their putative type material in the Natural History Museum in London
Figures 9–14. Fig. 9. Papilio drusius Cramer (syntype). Fig. 10. Papilio erymanthus Cramer (syntype). Fig. 11. Papilio eurimedes Stoll (syntype). Fig. 12. Papilio gambrisius Cramer (syntype). Fig. 13. Papilio hypolitus Cramer (specimen with 'van Lennep' label). Fig. 14. Papilio hyppason Cramer (syntype).
Figures 21–26. Fig. 21 in The species of Papilionidae and Pieridae (Lepidoptera) described by Cramer and Stoll and their putative type material in the Natural History Museum in London
Figures 21–26. Fig. 21. Papilio torquatus Cramer (syntype). Fig. 22. Papilio tullus Cramer (syntype). Fig. 23. Papilio vertumnus Cramer (syntype). Fig. 24. Papilio alcmeone Cramer (lectotype). Fig. 25. Papilio arithusa Drury (specimen with 'van Lennep' label). Fig. 26. Papilio cipris Cramer (syntype).
Figures 3–8. Fig. 3 in The species of Papilionidae and Pieridae (Lepidoptera) described by Cramer and Stoll and their putative type material in the Natural History Museum in London
Figures 3–8. Fig. 3. Papilio amosis Cramer (syntype). Fig. 4. Papilio amphimedon Cramer (syntype). Fig. 5. Papilio anchises Linnaeus (specimen with 'van Lennep' label). Fig. 6. Papilio arbates Stoll (syntype). Fig. 7. Papilio codrus Cramer (possible syntype). Fig. 8. Papilio deiphobus Linnaeus (specimen with 'van Lennep' label).
Figures 10–17. Chrysina spp. genital structures. 10–15 in A new species of Chrysina Kirby (Coleoptera: Scarabaeidae: Rutelinae) from the Sierra Madre Occidental of Mexico, with notes on the type locality of Chrysina adelaida (Hope, 1841)
Figures 10–17. Chrysina spp. genital structures. 10–15) Male genital capsule dorsal (d), ventral (v) and lateral (l) habitus. 10–11) C. occidentalis holotype. 10) (d). 11) (v). 12–13) C. adelaida from Veracruz, Mexico. 12) (d). 13) (v). 14) C. occidentalis holotype (l). 15) C. adelaida from Veracruz, Mexico (l). 16–17) Female genital plates. 16) C. occidentalis from Sinaloa, Mexico. 17) C. adelaida from Veracruz, Mexico.
Figure 1 in A new species of Chrysina Kirby (Coleoptera: Scarabaeidae: Rutelinae) from the Sierra Madre Occidental of Mexico, with notes on the type locality of Chrysina adelaida (Hope, 1841)
Figure 1. Locations in Mexico of montane oak-pine forests (modified from Guzmán 2008) and of Chrysina populations studied in this work. Mountain ranges: SMOc Sierra Madre Occidental, TVB Trans Volcanic Belt, SMOr Sierra Madre Oriental, SMS Sierra Madre del Sur. States discussed in the text: A Aguascalientes, C Chihuahua, Co Coahuila, D Durango, G Guanajuato, Gu Guerrero, H Hidalgo, J Jalisco, Mx Estado de Mexico, Mi Michoacán, M Morelos, N Nayarit, NL Nuevo León, O Oaxaca, P Puebla, Q Queretaro, Si Sinaloa, So Sonora, T Tlaxcala, V Veracruz, Z Zacatecas.
Figure 9. Telegonus primary types. a in Thirteen new species of butterflies (Lepidoptera: Hesperiidae) from Texas
Figure 9. Telegonus primary types. a) Telegonus fulgerator original illustrations of the holotype (now lost), rotated from the original, labels (2.a. and 2.b.) repositioned on the images. b) Telegonus fulgerator neotype ♀ NVG-18057D11 from Suriname in ZSMC. c) Telegonus fulminator neotype ♀ NVG-18057D08 from Suriname in ZSMC, designated herein. d) Telegonus azul lectotype ♀ NVG-15099B05 from Mexico: Veracruz in CMNH, designated herein. Dorsal (above each panel label) and ventral (below each panel label) views are shown.
Figs 3, 4 in The megadrile fauna (Annelida: Oligochaeta) of Queen Elizabeth Park, South Africa: species composition and distribution within different vegetation types
Figs 3, 4. Tritogenia howickiana: (3) anterior part of the body, showing papillae and tubercula pubertatis ventrally; (4) dorsal dissection showing thickened septa. Abbreviations: Cl – clitellum, DB – double blood vessel, P – papillae of 15–17, S – septa 4/5–6/7, Tp – tubercula pubertatis,.
Fig. 2 in Pupa menkeana Pfeiffer, 1853, type species of the speciose land snail genus Gulella Pfeiffer, 1856: correction of longstanding PLVLGHQWL¿FDWLRQ DQG GHVLJQDWLRQ RI QHRW\SH (Mollusca: Eupulmonata: Streptaxidae)
Fig. 2. (A, B) lectotype and paralectotype of Ennea adamsiana Pfeiffer, 1859 in 1854–1860, 'Port Natal, M.C. [Mus. Cuming]', length 8.45 and 8.1 mm (NHMUK 20110168); (C, D) syntypes of Ennea impervia Melvill & Ponsonby, 1896, 'Natal', length 8.8 and 8.75 mm (NHMUK 1903.3.11.85–86); (E) holotype of Ennea aurisleporis Melvill & Ponsonby, 1898, 'Natal', length 6.65 mm (NHMUK 1903.3.11.69); (F) holotype of Ennea socratica Melvill & Ponsonby, 1893, 'Pietermaritzburg', length 8.45 mm (NHMUK 1903.3.11.78); (G) Gulella menkeana, small inland form, Cumberland, Pietermaritzburg, length 7.2 mm (NMSA V9709); (H) G. menkeana, large form from coastal E. Cape, Port St Johns, length 9.24 mm (NMSA W561); (I) Pupa wahlbergi Krauss, 1848, probable paratype in SMNH, length 10.1 mm (SMNH-Type-2112); (J, K) P. wahlbergi Krauss, 1848, neotype, Durban Bluff, length 9.84 mm, diameter 4.92 mm (NMSA W7942/T2669); (L) holotype of Ennea formosa Melvill & Ponsonby, 1898, Pietermaritzburg, length 7.75 mm (NHMUK 1903.3.11.79).
Data and code for: Building use-inspired species distribution models: using multiple data types to examine and improve model performance
<p>Species distribution models (SDMs) are becoming an important tool for marine conservation and management. Yet while there is an increasing diversity and volume of marine biodiversity data for training SDMs, little practical guidance is available on how to leverage distinct data types to build robust models. We explored the effect of different data types on the fit, performance and predictive ability of SDMs by comparing models trained with four data types for a heavily exploited pelagic fish, the blue shark (<em>Prionace</em> <em>glauca</em>), in the Northwest Atlantic: two fishery-dependent (conventional mark-recapture tags, fisheries observer records) and two fishery-independent (satellite-linked electronic tags, pop-up archival tags). We found that all four data types can result in robust models, but differences among spatial predictions highlighted the need to consider ecological realism in model selection and interpretation regardless of data type. Differences among models were primarily attributed to biases in how each data type, and the associated representation of absences, sampled the environment and summarized the resulting species distributions. Outputs from model ensembles and a model trained on all pooled data both proved effective for combining inferences across data types and provided more ecologically realistic predictions than individual models. Our results provide valuable guidance for practitioners developing SDMs. With increasing access to diverse data sources, future work should further develop truly integrative modeling approaches that can explicitly leverage strengths of individual data types while statistically accounting for limitations, such as sampling biases. </p>
Fig. 5. Data labels. A. Xylocopamoerens Perty, 1833 in The primary types of some species of Centris bees described by European entomologists in the 18 and 20 centuries (Hymenoptera: Apidae)
Fig. 5. Data labels. A. Xylocopamoerens Perty, 1833 (lectotype ♀). B. Xylocopaxanthocnemis Perty, 1833 (lectotype ♂).
Fig. 1. Data labels. A. Centris debilis Dominique, 1898 in The primary types of some species of Centris bees described by European entomologists in the 18 and 20 centuries (Hymenoptera: Apidae)
Fig. 1. Data labels. A. Centris debilis Dominique, 1898 (lectotype ♂). B. Centris dominiquella Dominique, 1898 (lectotype ♀).
Fig 2. Data labels. A. Centris zonalis Dominique, 1898 in The primary types of some species of Centris bees described by European entomologists in the 18 and 20 centuries (Hymenoptera: Apidae)
Fig 2. Data labels. A. Centris zonalis Dominique, 1898 (lectotype ♀). B. Centris lyngbyei Jensen- Haarup, 1908 (lectotype ♂).
Fig. 4. Data labels. A in The primary types of some species of Centris bees described by European entomologists in the 18 and 20 centuries (Hymenoptera: Apidae)
Fig. 4. Data labels. A. Centrisrhodophthalma Pérez, 1911 (lectotype ♀). B. Centristransversa Pérez, 1905 (lectotype ♀).
Data and code for: Building use-inspired species distribution models: using multiple data types to examine and improve model performance
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Data from: eDNA metabarcoding of log hollow sediments and soils highlights the importance of substrate type, frequency of sampling and animal size, for vertebrate species detection
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Mycorrhizal types regulate tree spatial associations in temperate forests: ectomycorrhizal trees might favor species coexistence
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Map 2 in On the Aleochara subgenera Ceranota and Xenochara. IV. A revision of types, a new species, and additional records (Coleoptera: Staphylinidae: Aleocharinae)
Map 2: Distribution of Aleochara penicillata, based on revised records.
Map 4 in On the Aleochara subgenera Ceranota and Xenochara. IV. A revision of types, a new species, and additional records (Coleoptera: Staphylinidae: Aleocharinae)
Map 4: Distribution of Aleochara subtumida, based on revised records.
Figs 9-12 in Ibizella asilahica nov.sp. (Astigmata, Canestriniidae) from Morocco with type species designation for the genus Ibizella H & Š , 2018
Figs 9-12. Ibizella asilohica nov.sp. protonymph (9) leg I; (10) leg II; (11) leg III; (12) leg IV.
ScienceDex guides
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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.