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136 results for “European fauna”
Figure 4 in A new dwarf boa (Serpentes, Booidea, 'Tropidophiidae') from the Early Oligocene of Belgium: a case of the isolation of Western European snake faunas
Figure 4. Trunk/caudal transition in Falseryx petersbuchi, in left lateral view: A, posterior trunk vertebra (BSP, 1976 XXII 6127); B, fusion of last trunk, 1st cloacal and 2nd cloacal vertebrae (BSP, uncatalogued); C, anterior caudal vertebra (SMNS, 57898-3). Abbreviations: h, hypapophysis; hk, haemal keel; ls, lymphapophyses; pd, paradiapophysis; pl, pleurapophysis. A and C from Szyndlar & Rage (2003: fig. 27C, P).
Figure 1 in A new dwarf boa (Serpentes, Booidea, 'Tropidophiidae') from the Early Oligocene of Belgium: a case of the isolation of Western European snake faunas
Figure 1. Holotype middle trunk vertebra of Falseryx neervelpensis sp. nov. (IRSNB R 240), in right lateral (A), left lateral (B), dorsal (C), ventral (D), anterior (E) and posterior (F) views. Abbreviations: cd, condyle; ct, cotyle; d, diapophysis; hk, haemal keel; lf, lateral foramen; na, neural arch; nc, neural canal; ns, neural spine; p, parapophysis; pd, paradiapophysis (diapophysis + parapophysis); po, postzygapophysis; poa, postzygapophyseal articular surface; pr, prezygapophysis; pra, prezygapophyseal articular surface; prp, prezygapophyseal process; sf, subcentral foramen; sg, subcentral groove; sr, subcentral ridge; z, zygosphene; zy, zygantrum.
Figure 2 in A new dwarf boa (Serpentes, Booidea, 'Tropidophiidae') from the Early Oligocene of Belgium: a case of the isolation of Western European snake faunas
Figure 2. Trunk vertebrae of Falseryx neervelpensis sp. nov. A–C, anterior trunk vertebra (IRSNB R 239), in right lateral (A), anterior (B) and dorsal (C) views; D–F, middle trunk vertebra (IRSNB R 241), in left lateral (D), dorsal (E) and ventral (F) views; G–K, posterior trunk vertebra (IRSNB R 237), in right lateral (G), dorsal (H), ventral (I), anterior (J) and posterior (K) views; L–P, one of the final trunk vertebrae (IRSNB R 238), in left lateral (L), dorsal (M), ventral (N), anterior (O) and posterior (P) views. Abbreviation: h, hypapophysis.
Fig. 9 in Two new species of the genus Siro Latreille, 1796 (Opiliones, Cyphophthalmi, Sironidae) in the European fauna
Fig. 9. Siro ozimeci Karaman sp. nov., holotype, ♀ (GMV 100066). A. Chelicerae, medial view.B. Pedipalp, medial view. C. Basitarsus and telotarsus, leg I. D. Basitarsus and telotarsus, leg IV. Scale bars = 100 µm.
Fig. 2 in Two new species of the genus Siro Latreille, 1796 (Opiliones, Cyphophthalmi, Sironidae) in the European fauna
Fig. 2. Bayesian inference topology of the combined dataset (18S, 28S, 16S, COI; 4936 bp) of Sironidae Simon, 1879 comprised of 38 taxa. Posterior probabilities> 90 are shown close to nodes. Coloured branches refer to different genera.
Fig. 5 in Two new species of the genus Siro Latreille, 1796 (Opiliones, Cyphophthalmi, Sironidae) in the European fauna
Fig. 5. Siro franzi Karaman & Raspotnig sp. nov. A–E. Paratype, ♂ (IKC1538). F–G. Paratype, ♀ (NHMW 28759). A. Chelicerae, medial view. B. Pedipalp, medial view. C. Basitarsus and telotarsus, leg I. D. Basitarsus and telotarsus, leg IV. E. Adenostyle. F. Basitarsus and telotarsus, leg I. G. Basitarsus and telotarsus, leg IV. Scale bars: A–D, F–G = 100 µm; E = 20 µm.
Fig. 4 in Two new species of the genus Siro Latreille, 1796 (Opiliones, Cyphophthalmi, Sironidae) in the European fauna
Fig. 4. Siro franzi Karaman & Raspotnig sp. nov. A, C, E. Paratype, ♂ (IKC1538). B, D, F. Paratype, ♀ (NHMW 28759). A–B. Dorsum. C–D. Ventral prosomal complex. E. Anal region, subventral view. F. Anal region, ventral view.
Fig. 1 in Two new species of the genus Siro Latreille, 1796 (Opiliones, Cyphophthalmi, Sironidae) in the European fauna
Fig. 1. Distribution of species of Siro Latreille, 1796 in Europe. Shaded areas: the maximum extent of glacial ice in north Europe and Alps during the Pleistocene; dashed line: extension of the northern part of the Adriatic Sea in the early Pliocene.
Fig. 8 in Two new species of the genus Siro Latreille, 1796 (Opiliones, Cyphophthalmi, Sironidae) in the European fauna
Fig. 8. Siro ozimeci Karaman sp. nov. A. Paratype, ♂ (GMV 100067). B–E. Holotype, ♀ (GMV 100066). F. Siro franzi Karaman & Raspotnig sp. nov. (IKC1538). A–B. Dorsum. C. Ventral prosomal complex. D. Anal region, ventral view. E–F. Spiracle.
Fig. 7 in Two new species of the genus Siro Latreille, 1796 (Opiliones, Cyphophthalmi, Sironidae) in the European fauna
Fig. 7. Siro franzi Karaman & Raspotnig sp. nov., paratype, ♀ (NHMW 28759). Distal portion of ovipositor, ventral view. Scale bar = 50 µm.
Fig. 11 in Two new species of the genus Siro Latreille, 1796 (Opiliones, Cyphophthalmi, Sironidae) in the European fauna
Fig. 11. Paleogeographical reconstruction of southern Europe for the Late Cretaceous (after Schmid et al. 2004, modified). AA = Austroalpine; AP = Apulian Plate; BM = Bohemian Massif; BT = Briançonnais terrane; IB = Iberia; MC = Massif Central.
Fig. 10 in Two new species of the genus Siro Latreille, 1796 (Opiliones, Cyphophthalmi, Sironidae) in the European fauna
Fig. 10. Siro ozimeci Karaman sp. nov., holotype, ♀ (GMV 100066). Distal portion of ovipositor, ventral view. Scale bar = 100 µm.
Fig. 3 in Two new species of the genus Siro Latreille, 1796 (Opiliones, Cyphophthalmi, Sironidae) in the European fauna
Fig. 3. Bayesian inference topology of the COI dataset (657 bp, 34 taxa) of Siro spp. Posterior probabilities> 90 are indicated as stars and shown close to nodes.
Fig. 2 Phylogenetic tree representing relationships within Discodorididae. The latter contains about 400 species and 40 in A warning for ecologists and conservation biologists using species checklists: How the European marine fauna 'lost' all of its 16 Discodoris species (Mollusca: Gastropoda)
Fig. 2 Phylogenetic tree representing relationships within Discodorididae. The latter contains about 400 species and 40 genera, only some of which are mentioned here, with special emphasis on the genera that contain species originally described in Discodoris. Tree terminal taxa are labeled with the specific epithet followed by the generic name of the original combination in parenthesis. The current generic names are given on the right side of the braces indicating the (few) species per genus mentioned. Assignment of a generic name to a clade is based on a type species that belongs to that clade (e.g., Discodoris boholiensis is the type species of Discodoris). All genera correspond to clades, with the exception of "Montereina", a metaphyletic group at the base of Discodorididae for which no autapomorphic, diagnostic features could be found. For additional information on phylogenetic analyses, authorship of species names, etc., see Dayrat (2010a)
Fig. 1 Live discodorid sea slugs, dorsal views. a Peltodoris atromaculata Bergh, 1880. b Discodoris boholiensis Bergh, 1877. c in A warning for ecologists and conservation biologists using species checklists: How the European marine fauna 'lost' all of its 16 Discodoris species (Mollusca: Gastropoda)
Fig. 1 Live discodorid sea slugs, dorsal views. a Peltodoris atromaculata Bergh, 1880. b Discodoris boholiensis Bergh, 1877. c Tayuva lilacina (Gould 1852). d "Montereina" aurila (Marcus and
Fig. 4 in Chrysis monticola Linsenmaier, 1999 (Hymenoptera, Chrysididae), a new species for the European fauna
Fig. 4 - Chrysis monticola Linsenmaier, 1999, allotype male. �) general habitus, dorsal view; B) genital capsule; C) head and mesosoma dorsal view; D) metasoma, dorsal view.
Fig. 5 in Chrysis monticola Linsenmaier, 1999 (Hymenoptera, Chrysididae), a new species for the European fauna
Fig. 5 - Habitat of Chrysis monticola in Zambujeira do Mar 17th July 2012. Roselyne Coulomb hunting on Helichrysum flowers (Photo �lain Livory).
Fig. 3 in Chrysis monticola Linsenmaier, 1999 (Hymenoptera, Chrysididae), a new species for the European fauna
Fig. 3 - Chrysis monticola Linsenmaier, 1999, holotype female. �) general habitus, dorsal view; B) head, frontal view; C) head and mesosoma dorsal view; D) metasoma, dorsal view.
Figure 2 in A call for collaboration to create the European Atlas of Soil Fauna
Figure 2. Example map created from the data stored in the Edaphobase data warehouse. The yellow triangles depict the distribution of the Diplopod genera Glomeris (A) and Geoglomeris (B). Please note that the absence of points does not necessarily mean that the genus is absent, but rather means that the genus has either not been recorded (yet) or it has been recorded but relevant data have not been included in the Edaphobase data warehouse.
Figure 1 in A call for collaboration to create the European Atlas of Soil Fauna
Figure 1. Map depicting study sites of Earthworms found in Ecoregions of Central, and Central West Europe from the literature review by Tsiafouli et al. (in prep.). The data of these sites are those we aim to collect for constructing the maps of the Atlas. Please note that the list of Earthworm study sites located up to now is not exclusive.
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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.