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Fig. 2 in A new family of giant Jurassic-Cretaceous littorinoid gastropods from the northern Tethys shelf
Fig. 2. Schematic stratigraphic positions of the strata yielding species of Leviathania discussed in the text. Please note that lower and upper limits of most of these strata are tentative.
Fig. 1 in A new family of giant Jurassic-Cretaceous littorinoid gastropods from the northern Tethys shelf
Fig. 1. Geographical overview of Europe. The type locality (circle with black dot) and occurrences (circles) of Leviathania gigantea (Makowsky, 1874) and the occurrences of Leviathania spp. (squares) are indicated. African occurrences need verification (?).
Fig. 9 in New fossil triakid sharks from the early Eocene of Prémontré, France, and comments on fossil record of the family
Fig. 9. Distribution of living triakid genera (areas) and their fossil relatives (geometric symbols) compiled from the literature. The number of symbols (plotting the fossil evidence) is intentionally reduced for western Europe and southeastern USA. Living Mustelus is circumglobal in all temperate and tropical seas and is not figured on the map.
Fig. 1. A in New fossil triakid sharks from the early Eocene of Prémontré, France, and comments on fossil record of the family
Fig. 1. A. Location of the Prémontré Abbey (Aisne, northern France). B. Simplified stratigraphic column of Prémontré with fossiliferous (2–3) and non−fossiliferous (4–12) levels (from Dégrémont et al. 1985: 12).
Fig. 5. Triakid shark Gomphogaleus rodgersi Case, 1994 in New fossil triakid sharks from the early Eocene of Prémontré, France, and comments on fossil record of the family
Fig. 5. Triakid shark Gomphogaleus rodgersi Case, 1994. Prémontré Abbey, late Ypresian. A. UM−PRE 16, anterior tooth, labial face (A1), profile view (A2), and lingual face (A3). B. UM−PRE 17, holotype, antero−lateral tooth, labial face (B1), apical view (B2), and lingual face (B3).
Fig. 7 in New fossil triakid sharks from the early Eocene of Prémontré, France, and comments on fossil record of the family
Fig. 7. Triakid shark Pachygaleus lefevrei (Daimeries, 1891). Prémontré Abbey, late Ypresian. A. UM−PRE 19, anterior tooth, labial face. B. UM−PRE 20, antero−lateral tooth, labial face. C. UM−PRE 21, lateral tooth, labial (C1) and lingual (C2) faces.
Fig. 8 in New fossil triakid sharks from the early Eocene of Prémontré, France, and comments on fossil record of the family
Fig. 8. Fossil record of triakid genera plotted against simplified phylogenetic relationships of extant Triakidae (from Lopez et al. 2006 in part). See text and Appendix 2 for discussion and details.
Fig. 6. Triakid shark Mustelus aff. M. vanderhoefti Herman, 1982 in New fossil triakid sharks from the early Eocene of Prémontré, France, and comments on fossil record of the family
Fig. 6. Triakid shark Mustelus aff. M. vanderhoefti Herman, 1982. Prémontré Abbey, late Ypresian. UM−PRE 18, lateral tooth, lingual face (A), profile view (B), occlusal face (C), and basal face (D).
Fig. 4 in New fossil triakid sharks from the early Eocene of Prémontré, France, and comments on fossil record of the family
Fig. 4. Triakid shark Galeorhinus louisi sp. nov. Prémontré Abbey, late Ypresian. A. UM−PRE 11, holotype, antero−lateral tooth, labial face (A1), apical view (A2), and lingual face (A3). B. UM−PRE 12, antero−lateral tooth, labial face (B1), profile view (B2), and lingual face (B3). C. UM−PRE 13, lateral tooth, labial (C1) and lingual (C2) faces. D. UM−PRE 14, lateral tooth, labial (D1) and lingual (D2) faces. E. UM−PRE 15, more lateral tooth, labial (E1) and lingual (E2) faces.
Fig. 3 in New fossil triakid sharks from the early Eocene of Prémontré, France, and comments on fossil record of the family
Fig. 3. Triakid shark Galeorhinus ypresiensis (Casier, 1946). Forest−lez−Bruxelles, Belgique. A. UM−FLB 1, anterior tooth, lingual face. B. UM−FLB 2, anterior tooth, labial (B1) and lingual (B2) faces. C. UM−FLB 3, anterior tooth, labial (C1) and lingual (C2) faces.
Fig. 3 in A new family of ceraphronoid wasps from Early Cretaceous Álava Amber, Spain
Fig. 3. Camera lucida drawings of Radiophron ibericus gen. et sp. nov., and Radiophron aff. ibericus gen. et sp. nov., male; Peñacerrada I, Albian. A. Lateral view of holotype MCNA 8754. B. Ventral view of paratypes MCNA 13030.1 and 13030.2 showing tibial spur combination 2−2−2. C. Dorsal view of paratype MCNA 13030.1. D. Lateral view of Radiophron aff. ibericus gen. et sp. nov., male, MCNA 8760.
Fig. 4 in A new family of ceraphronoid wasps from Early Cretaceous Álava Amber, Spain
Fig. 4. Ceraphronoid wasp Microcostaphron parvus gen. et sp. nov., holotype male MCNA 8769; Peñacerrada I, Albian. A. Dorso−lateral view. B. Detail of genitalia. C. Detail of left pro− and mesotibial spurs, apparently two on each tibia. D. Detail of antennae showing relatively elongate, slightly constrained first flagellomere. E. Detail of pterostigma with two small distinct structures that may be sensillae. F. Detail of the constricted attachment of metasoma to mesosoma.
Fig. 6 in A new family of ceraphronoid wasps from Early Cretaceous Álava Amber, Spain
Fig. 6. Cladogram of ceraphronoid relationships including Radiophronidae (most parcimonious tree, L = 29, CI = 0.93, RI = 0.96). Unambiguous apomorphies marked as black circles and reversals as white rectangles. Character number appears above the branch and character state below it.
Fig. 5 in A new family of ceraphronoid wasps from Early Cretaceous Álava Amber, Spain
Fig. 5. Camera lucida drawings of Microcostaphron parvus gen. et sp. nov., holotype MCNA 8769; Peñacerrada I, Albian. A. Dorso−lateral view. B. Ventral view.
Fig. 2 in A new family of ceraphronoid wasps from Early Cretaceous Álava Amber, Spain
Fig. 2. Ceraphronoid wasp Radiophron aff. ibericus gen. et sp. nov. MCNA 8760, male; Peñacerrada I, Albian. A. Ventral view. B. Dorsal view of elevated mesosoma (mesoscutum and scutellum), showing mesoscutum, notauli and trans scutal sulcus, wide axilla and long scutellum with acute posterior margin. C. Detail of the protruded genitalia. D. Detail of the acute margin of scutellum and the fore wing, with the distal preserved Sc+R up−curved, very wide at its contact with pterostigma and the wide costal space. E. Details of fore wing showing part of R distal from pterostigma, Rs+2r−rs up−curved and arising oblique from distal base of pterostigma, and hind wing with three curved hamuli. F. Detail of right wide and flattened metacoxa labelled in the middle. +
FIGURE 7 in A new member of the family Plotopteridae (Aves) from the late Oligocene of British Columbia, Canada
FIGURE 7. Casts of coracoids in the Smithsonian Institution, Washington DC, referable to Copepteryx, one of the very large plotopterids from the Oligocene Ashiya Group of Kitakyushu, Japan. 1, Dorsal aspect of shaft lacking the omal portion and 2, Isolated omal portion, ventral aspect. Abbreviations: FASC, facies articularis scapularis; see Figure 1 for others.
FIGURE 6 in A new member of the family Plotopteridae (Aves) from the late Oligocene of British Columbia, Canada
FIGURE 6. Cliff-beach exposure of the Sooke Formation. Letters indicate A, sandstone and shell-rich beds with burrows near the base; B, ripples; C, pebble conglomerate and shells; D, shell-rich coquinas and concretions; and E, Mytilus sp. and other shelly materials in cross-laminated and bedded sandstones. Rock hammer 26 cm, walking stick 115 cm.
FIGURE 8 in A new member of the family Plotopteridae (Aves) from the late Oligocene of British Columbia, Canada
FIGURE 8. Dimensional proportions of the Stemec coracoid (RBCM.EH2014.032.0001.001) and to two much larger plotopterids compared to cormorants, darters, and penguins. All other families of wing-propelled birds have larger values on both axes. Extinct examples are marked by a '+' symbol.
FIGURE 5 in A new member of the family Plotopteridae (Aves) from the late Oligocene of British Columbia, Canada
FIGURE 5. Geological context of the Sooke Formation and Carmanah Group rocks, Vancouver Island based on data from Clark and Arnold (1923), Cameron (1980), Muller et al. (1981), Johns et al. (2012).
FIGURE 4 in A new member of the family Plotopteridae (Aves) from the late Oligocene of British Columbia, Canada
FIGURE 4. Map of Carmanah Group surface exposures along western Vancouver Island, British Columbia. A, Brooks Peninsula; B, Nootka (Tatchu Point, Nootka Island, Hesquiat Peninsula, and Flores Island); C, Carmanah (Pachena Point south to Owen Point); and D, Sooke (Port Renfrew south to Sooke) (for additional information, see Johns et al., 2012, figure 1).
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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.