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93 results for “late Middle Jurassic”
FIGURE 4 in Two new species of Mesoplecia (Insecta: Diptera: Protopleciidae) from the late Middle Jurassic of China
FIGURE 4. Paratype of Mesoplecia plena sp. nov. (CNU-DIP-NN2013050). A—Photograph; B—Line drawing. Scale bars = 1 mm.
FIGURE 2 in Two new species of Mesoplecia (Insecta: Diptera: Protopleciidae) from the late Middle Jurassic of China
FIGURE 2. Holotype of Mesoplecia plena sp. nov. (CNU-DIP-NN2013048). A—Photograph of holotype; B—Line drawing of holotype; C—Line drawing of right wing; D—Details of part of legs. Scale bars = 1 mm.
FIGURE 3 in Two new species of Mesoplecia (Insecta: Diptera: Protopleciidae) from the late Middle Jurassic of China
FIGURE 3. Paratype of Mesoplecia plena sp. nov. (CNU-DIP-NN2013052 p/c). A, B—Photographs of part and counterpart; C, D—Line drawings of part and counterpart; E—Details of femur; F—Details of left wing. Scale bars = 1 mm.
FIGURE 1 in Two new species of Mesoplecia (Insecta: Diptera: Protopleciidae) from the late Middle Jurassic of China
FIGURE 1. Representative species of genera in Protopleciidae, Line drawings of wings. A—Archipleciomima obtusipennis Rohdendorf, 1962 (from Blagoderov 1996 based on Rohdendorf 1964); B—Mesoplecia plena sp. nov. (this study); C—Epimesoplecia shcherbakovi Zhang, 2007 (from Zhang 2007); D—Mesoplecia jurassica Rohdendorf, 1938 (from Rohdendorf 1938); E—Mesopleciella minor Rohdendorf, 1946 (from Rohdendorf 1946); F—Palaeoplecia rhaetica Rohdendorf, 1962 (from Blagoderov 1996 based on Rohdendorf 1962); G—Protoligoneura fusicosta Rohdendorf, 1962 (from Blagoderov 1996 based on Rohdendorf 1964); H—Protoplecia liasina Geinitz, 1884 (from Ansorge 1996). Scale bars = 1 mm.
text-fig. 5. Skull reconstructions of representatives of Jurassic OTUs in left lateral view, a, Dilophosaurus wetherilli, Early Jurassic (Sinemurian-Pliensbachian), Kayenta Formation, Arizona, USA; based on UCMP V 4214 and V 6468. B, Syntarsus rhodesiensis, Early Jurassic (Hettangian-Sinemurian), Forest Sandstone, Zimbabwe; composite reconstruction based on many isolated skull elements from the National Museum of Natural History in Harare (see Appendix), c, Magnosaurus oxoniensis, Middle Jurassic (Callovian), Oxford Clay, England; based on OUM J 13558, unpreserved elements shaded. D, Monolophosaurus jiangi, Middle Jurassic, Wucaiwan Formation, China; redrawn from Zhao and Currie (1993b). E, Allosaurus fragilis, Late Jurassic (Kimmeridgian-Tithonian), Morrison Formation, USA; based on MOR 693. f, basal bird Archaeopteryx sp., Late Jurassic (Tithonian), lithographic limestones of Solnhofen, Germany; based on Wellnhofer (1974), Elzanowski and Wellnhofer (1996), and the Berlin, Eichstätt, and Munich specimens. G, Ceratosaurus sp., Late Jurassic (Kimmeridgian-Tithonian), Morrison Formation, USA; based on USNM 4735 and UMNH VP 5278. H, Ornitholestes hermanni, Late Jurassic (Kimmeridgian-Tithonian), Morrison Formation, USA, based on AMNH 619. Abbreviations as in Text-figure 4, and: If, lacrimal fenestra; mf, maxillary fenestra; nf, nasal foramen; pmf, promaxillary fenestra. Scale bars represent 10 mm (b, f, h), 50 mm (c) and 100 mm (a, d, e, g). in The interrelationships and evolution of basal theropod dinosaurs
text-fig. 5. Skull reconstructions of representatives of Jurassic OTUs in left lateral view, a, Dilophosaurus wetherilli, Early Jurassic (Sinemurian-Pliensbachian), Kayenta Formation, Arizona, USA; based on UCMP V 4214 and V 6468. B, Syntarsus rhodesiensis, Early Jurassic (Hettangian-Sinemurian), Forest Sandstone, Zimbabwe; composite reconstruction based on many isolated skull elements from the National Museum of Natural History in Harare (see Appendix), c, Magnosaurus oxoniensis, Middle Jurassic (Callovian), Oxford Clay, England; based on OUM J 13558, unpreserved elements shaded. D, Monolophosaurus jiangi, Middle Jurassic, Wucaiwan Formation, China; redrawn from Zhao and Currie (1993b). E, Allosaurus fragilis, Late Jurassic (Kimmeridgian-Tithonian), Morrison Formation, USA; based on MOR 693. f, basal bird Archaeopteryx sp., Late Jurassic (Tithonian), lithographic limestones of Solnhofen, Germany; based on Wellnhofer (1974), Elzanowski and Wellnhofer (1996), and the Berlin, Eichstätt, and Munich specimens. G, Ceratosaurus sp., Late Jurassic (Kimmeridgian-Tithonian), Morrison Formation, USA; based on USNM 4735 and UMNH VP 5278. H, Ornitholestes hermanni, Late Jurassic (Kimmeridgian-Tithonian), Morrison Formation, USA, based on AMNH 619. Abbreviations as in Text-figure 4, and: If, lacrimal fenestra; mf, maxillary fenestra; nf, nasal foramen; pmf, promaxillary fenestra. Scale bars represent 10 mm (b, f, h), 50 mm (c) and 100 mm (a, d, e, g).
FIGURE 1 in A new species of Crenoptychoptera Kalugina, 1985 (Diptera: Ptychopteridae) from the Middle-Late Jurassic of Jiyuan Basin, China
FIGURE 1. Crenoptychoptera gaoi sp. nov., Holotype NIGP174354). A, Photograph. B, Line drawing. Scale bars = 2 mm.
Middle to Late Jurassic palaeoclimatic and palaeoceanographic trends in the Euro-Boreal region: Geochemical insights from East Greenland belemnites
<p>Supplementary data and code for Vickers, M.L., Hougård, I.W., Alsen, P., Ullmann, C.V., Jelby, M.E., Bedington, M. and Korte, C., 2022. Middle to Late Jurassic palaeoclimatic and palaeoceanographic trends in the Euro-Boreal region: Geochemical insights from East Greenland belemnites. <em>Palaeogeography, Palaeoclimatology, Palaeoecology</em>, <em>597</em>, p.111014.</p>
FIG. 12. — Specimen B3 in New data on the theropod diversity from the Middle to Late Jurassic of the Vaches Noires cliffs (Normandy, France)
FIG. 12. — Specimen B3, anterior cervical vertebra of an indeterminate Allosauroidea from Callovian or Oxfordian marls, in anterior (A), posterior (B) and left lateral (C) views.Abbreviations: acdl, anterior centrodiapophyseal lamina; cpol, centrodiapophyseal lamina; cpof, centropostzygapophyseal fossa; cprf, centroprezygapohyseal lamina; dp, diapophysis; ns, neural spine; pcdl, posterior centrodiapophyseal lamina; plr, pleurocoel; po, postzygapophysis; pocdf, postzygapophyseal centrodiapophyseal fossa; pp, parapophysis; spof, spinopostzygodiapophyseal fossa; sprf, spinoprezygapohyseal fossa. Scale bar: 5 cm.
FIGURE 14. Taeniopteris leaves. 1. Taenopteris spatulata, LX1097 in Middle-Late Jurassic plant assemblages of the Catlins coast, New Zealand
FIGURE 14. Taeniopteris leaves. 1. Taenopteris spatulata, LX1097, Curio Bay; 2. Taeniopteris crassinervis, LX2365, Curio Bay; 3. Taeniopteris sp. 'narrow', LX2365, Little Bay-03. All scale bars equal 10 mm.
FIGURE 1 in Middle-Late Jurassic plant assemblages of the Catlins coast, New Zealand
FIGURE 1. Catlins Coast fossil locality map. Arrow in the upper inset map points to a rectangle that delineates the general region along the southern coast of New Zealand's South Island. The upper map indicates the whole area regarded as 'Catlins Coast' in this work, and shows the Owaka and Chasm localities, which are a little distant from the others, and it delineates a rectangular area, which is shown in detail in the lower map.
FIGURE 4. Cladophlebis patagonica pinnules. 1. LX1498 in Middle-Late Jurassic plant assemblages of the Catlins coast, New Zealand
FIGURE 4. Cladophlebis patagonica pinnules. 1. LX1498, Black Point (Note the distinct apical broadening of the pinnule base); 2. LX1074, Curio Bay; 3. LX1197, Slope-02; 4. LX1069, The Boat Harbour; 5. LX1076, Curio Bay (Note that some of the veins dichotomise twice.); 6. LX2070, The Boat Harbour (Note the pronounced apical broadening of the pinnule base which continues to the adjacent pinnule as a 'wing'. All scale bars equal 10 mm).
FIGURE 16. Elatocladus confertus 1. LX1060 in Middle-Late Jurassic plant assemblages of the Catlins coast, New Zealand
FIGURE 16. Elatocladus confertus 1. LX1060, Little Bay-01; 2. LX0674, Little Bay-01; 3. LX1050, Little Bay-01; 4. LX1057, Little Bay-01; 5. LX1107, Curio Bay; 6. LX1147, Blue Cod Bay; 7. LX1090, Curio Bay. All scale bars equal 10 mm.
FIGURE 12. Archangelskya furcata. 1. LX0672 in Middle-Late Jurassic plant assemblages of the Catlins coast, New Zealand
FIGURE 12. Archangelskya furcata. 1. LX0672, Owaka; 2. LX0673, Owaka. All scale bars equal 10 mm.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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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.