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706 results for “Late Jurassic”
Figure 2 in Modern hydrophilid clades present and widespread in the Late Jurassic and Early Cretaceous (Coleoptera: Hydrophiloidea: Hydrophilidae)
Figure 2. Alegorius yixianus gen. nov., sp. nov. from the Yixian Formation, China. Holotype, CNU 2009079 (A); paratype, CNU 2009078 (B). Abbreviations: abem, apical emargination of abdominal ventrite 5; aes3, metanepisternum; bst, maxillary basistipes; fmtta, free metatibial anterobasal angle; lb, labrum; men, mentum; mstr1, mesotarsomere 1; msv, mesoventrite; pros, prosternum; sstr, sutural stria; tf, transverse fold of prothorax.
Figure 1 in Modern hydrophilid clades present and widespread in the Late Jurassic and Early Cretaceous (Coleoptera: Hydrophiloidea: Hydrophilidae)
Figure 1. Late Jurassic fossils of the Hydrophilidae. Protochares brevipalpis gen. nov., sp. nov., AMF109568, Talbragar, Australia (A, B, F); 'Mesosperchus' schultzi Ponomarenko, 1985, NHMW 1985/20, Solnhofen, Germany: whole specimen (C, G–H), details of the head of the piece using different lighting (D–E). Abbreviations: aes3, metanepisternum; fcs, frontoclypeal suture; gs, gular suture; mttr1, metatarsomere 1; mxp, maxillary palpus; prospr, prosternal process; scstr, scutellar stria; sstr, sutural stria.
Figure 9 in A new ichthyosaur from the Late Jurassic of north- west Patagonia (Argentina) and its significance for the evolution of the narial complex of the ophthalmosaurids
Figure 9. Narial region of different ophthalmosaurids showing structures interpreted as osteological correlates with regard to the fleshy nostril position. A, Ophthalmosaurus icenicus (NHMUK PV R4753). B, 'Platypterygius' australis (AM F98273). C, 'Cryopterygius' kristiansenae (PMO 214.578). Scale bars: 40 mm.
Figure 6 in A new ichthyosaur from the Late Jurassic of north- west Patagonia (Argentina) and its significance for the evolution of the narial complex of the ophthalmosaurids
Figure 6. Arthropterygius thalassonotus (MOZ-PV 6145), right forefin. A–F, right humerus in ventral (A), dorsal (B), anterior (C), posterior, (D) proximal, (E) and distal (F) views. G, articulated forefin in ventral view. H, radius and ulna in proximal view. Scale bar: 40 mm.
Figure 3 in A new ichthyosaur from the Late Jurassic of north- west Patagonia (Argentina) and its significance for the evolution of the narial complex of the ophthalmosaurids
Figure 3. Arthropterygius thalassonotus (MOZ-PV 6145), elements of the basicranium. A–D, basioccipital in posterior (A), left lateral (B), ventral (C) and dorsal (D) views. E, F, parabasisphenoid in ventral (E) and posterior (F) views. G–I, supraoccipital in posterior (G) and anterolateral (H) views and interpretation of the impressions of the semicircular canals (I). J, right opisthotic in posterior view. K, left prootic in posterior (otic) view. Scale bar: 20 mm.
Figure 1. A in A new ichthyosaur from the Late Jurassic of north- west Patagonia (Argentina) and its significance for the evolution of the narial complex of the ophthalmosaurids
Figure 1. A, Neuquén Basin situation with location of the study area. B, geological map of the study area (modified from Herrera & Vennari, 2015).
Figure 5 in A new ichthyosaur from the Late Jurassic of north- west Patagonia (Argentina) and its significance for the evolution of the narial complex of the ophthalmosaurids
Figure 5. Arthropterygius thalassonotus (MOZ-PV 6145) digital reconstruction of the basicranium in posterior view. Scale bar: 20 mm.
Figure 2 in A new ichthyosaur from the Late Jurassic of north- west Patagonia (Argentina) and its significance for the evolution of the narial complex of the ophthalmosaurids
Figure 2. Arthropterygius thalassonotus (MOZ-PV 6145). A, B, skull of the holotype in right lateral view (A) and interpretation (B). C, D, interpretation of the narial complex in right lateral (C) and left lateral (D) views. E, digital reconstruction of the right narial complex in lateral view (yellow, nasals; purple, premaxilla; light blue, maxilla). Scale bars: 40 mm.
Figure 8 in A new ichthyosaur from the Late Jurassic of north- west Patagonia (Argentina) and its significance for the evolution of the narial complex of the ophthalmosaurids
Figure 8. Ancestral state reconstruction of the descending process of the nasal on the dorsal border of the nares using parsimony. Colours on the pie charts represent different character states [black, unknown; white, absent (0); red, spur-like and short (1); yellow, spur-like and long, almost completely dividing the naris (2); purple, stout descending process of the nasal, forming a pillar with the ascending process of the maxilla (3)].
Figure 10 in A new ichthyosaur from the Late Jurassic of north- west Patagonia (Argentina) and its significance for the evolution of the narial complex of the ophthalmosaurids
Figure 10. Generalized ophthalmosaurid skulls, illustrating the different hypotheses related to the function of the bony nostrils lobes. A, anterior lobe as outlet for the secretion of the salt gland and posterior lobe as entrance for the air stream. B, anterior lobe as entrance for the air stream and posterior lobe as outlet for the secretion of the salt gland. C, anterior lobe reduced and posterior lobe fulfilling both functions. Green structure surrounded by black dashed line, salt gland; green arrow, salt gland secretion; red arrow, air flow.
Figure 4 in A new ichthyosaur from the Late Jurassic of north- west Patagonia (Argentina) and its significance for the evolution of the narial complex of the ophthalmosaurids
Figure 4. Arthropterygius thalassonotus (MOZ-PV 6145). A, B, right quadrate in medial (A) and posterior (B) views. C, D, right pterygoid in ventral (C) and posterior (D) views. E–G, right supratemporal in medial (E) posterior (F) and ventral (G) views. Scale bar: 20 mm.
Original dataset of :"First pre-Miocene paleomagnetic data from the Calabrian block document a 160° post-late Jurassic CCW rotation as a consequence of left-lateral shear along Alpine Tethys"
<p>In this table the original paleomagnetic dataset related to the research article :"First pre-Miocene paleomagnetic data from the Calabrian block document a 160° post-late Jurassic CCW rotation as a consequence of left-lateral shear along Alpine Tethys" is published</p>
FIGURE 10 in Gastropods from the Late Jurassic - Early Cretaceous seep deposits in Spitsbergen, Svalbard
FIGURE 10. List of gastropod taxa found in the Mesozoic seeps in Spitsbergen (open circles) and their stratigraphical ranges in deep-water chemosynthesis̄based associations (solid circles) and non-seep first occurrences (open rectangles). Solid ranges show taxa ranges in deep-water chemosynthesis̄based associations while dotted lines show shallow-water ranges. The taxa in bold occur typically in the chemosynthesis̄based associations. NZ, occurrence in moderately shallow-water seeps in Novaya Zemlya (Hryniewicz et al. 2015b). T, Report of a Hikidea-like gastropod in a seep in Turkey (Kiel et al. 2017). Note several first occurrences in Spitsbergen seeps.
FIGURE 8. A–C in Gastropods from the Late Jurassic - Early Cretaceous seep deposits in Spitsbergen, Svalbard
FIGURE 8. A–C. Cretadmete sp., (PMO 224.762), Seep deposit #8, Sassenfjorden, Svalbard; Late Tithonian (late Jurassic). D. Gastropoda gen. et sp. indet. (PMO 217.517), Seep deposit #2, Sassenfjorden, Svalbard; late Berriasian (Early Cretaceous).
FIGURE 9 in Gastropods from the Late Jurassic - Early Cretaceous seep deposits in Spitsbergen, Svalbard
FIGURE 9. Hyalogyrina knorringfjelletensis sp. nov. Sassenfjorden, Svalbard; late Berriasian (Early Cretaceous). A, F. PMO 217.508, Seep deposit #12. B, H, I. Paratype (PMO 217.510), Seep deposit #12. C, D, E, J. Holotype (PMO 217.511a), Seep deposit #12. G. Juvenile (PMO 224.763), Seep deposit #9.
FIGURE 7 in Gastropods from the Late Jurassic - Early Cretaceous seep deposits in Spitsbergen, Svalbard
FIGURE 7. Sassenfjordia sassenfjordensis sp. nov., holotype (PMO 217.512), Seep deposit #9, Sassenfjorden, Svalbard; late Berriasian (Early Cretaceous).
FIGURE 6. A–D in Gastropods from the Late Jurassic - Early Cretaceous seep deposits in Spitsbergen, Svalbard
FIGURE 6. A–D. Abyssomelania sp. (PMO 224.758), Seep deposit #3, Sassenfjorden, Svalbard; late Tithonian (Late Jurassic). E–I.?Hokkaidoconcha sp., Seep deposit #3; late Tithonian (Late Jurassic). E. PMO 224.759. F, G. PMO 224.760. H, I. PMO 224.761.
FIGURE 5. A–H in Gastropods from the Late Jurassic - Early Cretaceous seep deposits in Spitsbergen, Svalbard
FIGURE 5. A–H. Hudlestoniella hammeri sp. nov. Seep deposit #9, Sassenfjorden, Svalbard; late Berriasian (Early Cretaceous). A, B, F. Holotype (PMO 224.754). C, G, H. Paratype (PMO224.755). D. PMO 224.756. E. PMO 224.757. I–M. Hokkaidoconcha sp. Seep deposit #12, Sassenfjorden, Svalbard; late Berriasian (Early Cretaceous). I. PMO 217.509. J, L. PMO 217.511b. K, M. PMO 217.507.
FIGURE 4 in Gastropods from the Late Jurassic - Early Cretaceous seep deposits in Spitsbergen, Svalbard
FIGURE 4. Eucycloidea bitneri sp. nov. Sassenfjorden, Svalbard. A–C. Holotype (PMO 217.235), Seep deposit #3; late Tithonian (Late Jurassic). D. Juvenile (PMO 224.753), Seep deposit #9; late Berriasian (Early Cretaceous).
FIGURE 3. A–C in Gastropods from the Late Jurassic - Early Cretaceous seep deposits in Spitsbergen, Svalbard
FIGURE 3. A–C. Hikidea svalbardensis sp. nov. Seep deposit #9, Sassenfjorden, Svalbard; late Berriasian (Early Cretaceous); holotype (PMO 217.574). D–H.?Pectinodonta borealis sp. nov. Seep deposit #9, Sassenfjorden, Svalbard; late Berriasian (Early Cretaceous). D, E, G. Holotype (PMO 217.516). F, H. Internal mould (PMO 224.752).
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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.