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A date about highway HV
<p>This data is the annul HV of a highway in China.</p>
FIG. 1 in The publication date, onomatophore and onymotope of Emoia cyanura (Squamata: Scincidae)
FIG. 1. — Emoia cyanura (Lesson, 1830). Holophoront of Scincus cyanurus Lesson, 1830, Gongylus (Eumeces) lessonii Duméril & Bibron, 1839, Tiliqua lessonii Duméril & Bibron, 1839 and Tiliqua kienerii Duméril & Bibron, 1839 as presented on figure 2 of plate 4 in Lesson (1830). Source: https://www.archive.org/download/Voyageautourdum5Dupe/page/n14_w10048
Figs 18-27 in A European discovery: Kalliste pavonum gen. nov., sp. nov., the smallest phalangiid species known to date (Arachnida: Opiliones: Phalangiidae)
Figs 18-27. Kalliste pavonum gen. sp. nov. Male and female copulatory organs. (18-20) Penis of male from Col de Verde in ventral (18), dorsal (19) and lateral view (20). (21-22) Penis of male from Col de Vizzavona in dorsal (21) and lateral view (22). (23-24) Stylus, glans and distal part of truncus penis in lateral view (23: Col de Verde, 24: Col de Vizzavona). (25-26) Distal part of stylus in lateral view (25: Col de Verde, 26: Col de Vizzavona). (27) Distal part of ovipositor in ventral view. Scales: 0.3 mm (Figs 18-22); 0.05 mm (Figs 23-24); 0.025 mm (Figs 25-26); 0.2 mm (Fig. 27).
Figure 6 in Reassessing the phylogeny and divergence times of sloths (Mammalia: Pilosa: Folivora), exploring alternative morphological partitioning and dating models
Figure 6. Estimated rate multipliers for homoplasy-based partitions in each model.
Well from limestone protecting the growth of young date palm (Difoi, N19.94914° E30.49234°)
<p>This interpretation sees a demographic shift reflected in the situation of the date palm environment: occasional workers display a lack of old cleaning practices, with removal of dry matter from palms and from the ground, which is exacerbated by by-now greatly reduced usage of such matter, e.g. for roofs, fire, etc. From a landscape point of view, this is the prevalence of ‘disordered’ forests in place of the intensity of care for individual trees (in the image represented by a well protecting the growth of young date palms).</p>
Burning of date palm trunk on Artigasha (N 19.571921° E 30.410242°)
<p>Use of fire: a) burning of soil to ‘clean’ in preparation of cultivation, in later fields, as slash-and-burn or on other open areas This concerns not just the cleaning of fields, but also the intentional burning of fallen/cut date palms and other dry organic matter to keep the ground accessible and reduce nutrients for insects and rodents.</p>
TrypTag: plate 327048 (replicate dated 20170310)
<p>TrypTag genome-wide protein localisation project data. Widefield epifluorescence microscope images of protein subcellular localisation in the unicellular eukaryotic pathogen <em>Trypanosoma brucei</em> by endogenous tagging with mNeonGreen (mNG). Raw microscopy data and per-cell line localisation annotation for plate 327048, replicate dated 20170310.</p>
Detrital zircon U-Pb dating result
<p>This is a supplemenaty table and data for manuscript submitted to Tectonics.</p>
Fig. 9 in Non-volatile constituents from Monimiaceae, Siparunaceae and Atherospermataceae plant species and their bioactivities: An up-date covering 2000-2021
Fig. 9. Miscellaneous compounds isolated from Siparuna species.
Fig. 6 in Non-volatile constituents from Monimiaceae, Siparunaceae and Atherospermataceae plant species and their bioactivities: An up-date covering 2000-2021
Fig. 6. Previously undescribed terpenoids isolated from Siparuna species.
Fig. 5 in Non-volatile constituents from Monimiaceae, Siparunaceae and Atherospermataceae plant species and their bioactivities: An up-date covering 2000-2021
Fig. 5. Structure of catechin, a known flavanol isolated from P. boldus.
Fig. 8 in Non-volatile constituents from Monimiaceae, Siparunaceae and Atherospermataceae plant species and their bioactivities: An up-date covering 2000-2021
Fig. 8. Known alkaloids isolated from the Siparunaceae family.
Fig. 4 in Non-volatile constituents from Monimiaceae, Siparunaceae and Atherospermataceae plant species and their bioactivities: An up-date covering 2000-2021
Fig. 4. Known alkaloids isolated from the Monimiaceae family.
Fig. 11 in Non-volatile constituents from Monimiaceae, Siparunaceae and Atherospermataceae plant species and their bioactivities: An up-date covering 2000-2021
Fig. 11. Previously undescribed and known alkaloids isolated from the Atherospermataceae family.
Fig. 3 in Non-volatile constituents from Monimiaceae, Siparunaceae and Atherospermataceae plant species and their bioactivities: An up-date covering 2000-2021
Fig. 3. Miscellaneous known compounds isolated from Mollinedia in the Monimiaceae family.
Fig. 12 in A well preserved pan-pleurodiran (Dortokidae) turtle from the English Lower Cretaceous and the first radiometric date for the Wessex Formation (Hauterivian-Barremian) of the Isle of Wight, United Kingdom
Fig. 12. Diagram showing the radiometric date in context with the Wessex Formation. A, time scale modified from Gradstein et al. (2020) with calcite date range. B, simplified stratigraphic log of the Wealden showing the age of the turtle.
Fig. 7 in A well preserved pan-pleurodiran (Dortokidae) turtle from the English Lower Cretaceous and the first radiometric date for the Wessex Formation (Hauterivian-Barremian) of the Isle of Wight, United Kingdom
Fig. 7. Sacral and caudal vertebrae of IWCMS 2018.44. A-D, sacral vertebrae; E-J, anterior caudal vertebra; K-L, posterior caudal vertebra; M-P posterior caudal vertebra. These elements are shown in anterior (A,G,K,M), posterior (B,H,L,N), dorsal (C,I,O), ventral (D,J,P), left lateral (E), and right lateral (F) views.
Radiocarbon dates from Houses of Fosie Type
<p>Radiocarbon dates from Houses of Fosie Type</p>
FIGURE 2 in Dating the origin and diversiFIcation of Pan-Chelidae (Testudines, Pleurodira) under multiple molecular clock approaches
FIGURE 2 Total-evidence dated Bayesian tree. Numbers in nodes are posterior probabilities. Red taxa denote the stem group. Red stars show different possible positions of the Early Cretaceous Australian pan- chelid turtles described by Smith (2010) (see Discussion). Concepts and bars in blue are taken from Vlachos et al. (2018). Abbreviations: A, Acanthochelys; BGBU, Beginning of Gondwana breakup; BODP, Beginning of the opening of the Drake Passage; C, Chelus; Ch, Chelodina; Che, Chelidae; Che. +SAec, Chelidae + South American extinct chelids; E, Erymnochelys; EECO, Early Eocene Climatic Optimum; El, Elseya; Elu, Elusor; Em, Emydura; EODP, End of the opening of the Drake Passage; F, Flavemys; H, Hydromedusa; M, Mesoclemmys; My, Myuchelys; Mya, Million years ago; DownloadedOlig., from Brill Oligocene.com; 10/07 OTS/, 2022 → 07:36:56PM via free access
FIGURE 1 Maximum Parsimony phylogenetic analyses. A in Dating the origin and diversiFIcation of Pan-Chelidae (Testudines, Pleurodira) under multiple molecular clock approaches
FIGURE 1 Maximum Parsimony phylogenetic analyses. A: Morphological phylogeny. B: Molecular phylogeny. C: Total-evidence phylogeny. Bootstrap supports are coded in grayscale. Australasian species are shown in red; South American species are shown in green. Abbreviations: A, Acanthochelys; B, Bonapartemys; Ch, Chelodina; El, Elseya; H, Hydromedusa; L, Lomalatachelys; M, Mesoclemmys; Me, Mendozachelys; My, Myuchelys; Pa, Palaeophrynops; Ph, Phrynops; Pl, Platemys; Pr, Prochelidella; Ps, Pseudemydura; Ri, Rionegrochelys; Y, Yaminuechelys. †, extinct taxa.
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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
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International Brain Laboratory public data
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OpenNeuro
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