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Fig. 4 in Body Size And Ectoparasitic Infestations In The Mediterranean Pond Turtle, Mauremys Leprosa (Testudines, Geoemydidae), In Majen Belahriti Pond (North-Eastern Algeria)
Fig. 4. Linear regression of body weight (BW) on carapace length (CL) for Mauremys leprosa (N = 43).
Fig. 1 in New distributional data on Haemogregarina stepanowi (Apicomplexa) and Placobdella costata (Hirudinea) parasitising the Sicilian pond turtle Emys trinacris (Testudines)
Fig. 1 - Sites in Sicily where the occurrence of E. trinacris, P. costata and H. stepanowi has been observed. / Siti in Sicilia in cui è stata osservata la presenza di E. trinacris, P. costata e H. stepanowi.
Dataset: Turtle Beach Corporation (HEAR) Stock Performance
This dataset provides historical stock market performance data for specific companies. It enables users to analyze and understand the past trends and fluctuations in stock prices over time. This information can be utilized for various purposes such as investment analysis, financial research, and market trend forecasting.
Figure 4 in Alien turtles in Spain: Modeling a growing problem
Figure 4. Mobility-Oriented Parity estimation of the environmental similarity between donor and recipient regions. Lighter colors indicate greater similarity and higher model transferability. Clockwise, modeled similarity with North America (A), South America (B), eastern Mediterranean (C), and eastern Asia (D).
Figure 3 in Alien turtles in Spain: Modeling a growing problem
Figure 3. Map of Spain representing the sum of the projections of the alien species of tortoises. A) projections without bias correction; B) bias-corrected projections. The inset shows the Canary Islands.
Figure 2 in Alien turtles in Spain: Modeling a growing problem
Figure 2. Map of Spain representing the sum of the projections of the alien species of aquatic turtles. A) projections without bias correction; B) bias-corrected projections. The inset shows the Canary Islands.
Figure 1 in Alien turtles in Spain: Modeling a growing problem
Figure 1. Map of Spain representing the modeled niche overlap (projections without bias corrections) between native (blue) and alien (red) species of the alien species of turtles (A) and tortoises (B). The inset shows the Canary Islands.
Fig. 1 in Current State, Anthropogenic Threats And Conservation Of The European Pond Turtle (Emys Orbiclularis) In Belarus
Fig. 1. Typical specimen of Emys orbicularis orbicularis from north-east part of the range in Belarus.
Fig.11 in The Experimental Data On Sun-Basking Activity Of European Pond Turtle Emys Orbicularis In Natural Climate In Latvia: Dynamics And Correlation With The Meteorological Factors
Fig.11. Ranking of meteorological factors by the quantity of significant positive or negative correlations with the number of sun-basking Emys orbicularis in the interval 8d"Nsbd"21.
Fig.3 in The Experimental Data On Sun-Basking Activity Of European Pond Turtle Emys Orbicularis In Natural Climate In Latvia: Dynamics And Correlation With The Meteorological Factors
Fig.3. Basic forms of sun-basking activity of Emys Fig.4. Basic forms of sun-basking activity of Emys orbicularis registered in the study: lying in the orbicularis registered in the study: heating under shadow. the sun in the shoal.
FIGURE 6 in Bioerosion traces on the Campanian turtle remains: New data from the lagoonal deposits of the Quseir Formation, Kharga Oasis, Egypt
FIGURE 6. Palaeoecology and post-mortem stages of the three turtle-bearing horizons in the Qarn Ganah area, Kharga Oasis, Egypt. (A) A sketch showing the proposed life of side-necked turtle (Bothremydidae) living in small isolated ponds during the Campanian time. (B‒D) A proposed model for the formation of the three horizons of turtle concentrations.
FIGURE 5. A in Bioerosion traces on the Campanian turtle remains: New data from the lagoonal deposits of the Quseir Formation, Kharga Oasis, Egypt
FIGURE 5. A sketch showing bioerosion traces colonising the turtle bones from the Campanian of the Hindaw Member (the Quseir Formation) in the Qarn Ganah area, Kharga Oasis, Egypt (1. Nihilichnus nihilicus, 2. Karethraichnus lakkos, 3. Cubiculum ornatus, 4. Cubiculum inornatus, 5. Osteocallis mandibulus, 6. Radulichnus inopinatus, 7. Osteichnus ossiobontum, 8. Osedacoides jurassicus, 9. Sulculites bellus, and 10. Machichnus?bohemicus).
FIGURE 2 in Bioerosion traces on the Campanian turtle remains: New data from the lagoonal deposits of the Quseir Formation, Kharga Oasis, Egypt
FIGURE 2. Lithological section of the Campanian Hindaw Member (the Quseir Formation) in the study area (modified after Abu El-Kheir, 2020). Arrows mark occurrences of the three turtle-bearing horizons (I‒III) studied.
FIGURE 1 in Bioerosion traces on the Campanian turtle remains: New data from the lagoonal deposits of the Quseir Formation, Kharga Oasis, Egypt
FIGURE 1. Simplified geological map of the study area with indication of the vertebrate distribution east of the Ganah village (modified after Abu El-Kheir, 2020; AbdelGawad et al., 2023).
FIGURE 3 in Bioerosion traces on the Campanian turtle remains: New data from the lagoonal deposits of the Quseir Formation, Kharga Oasis, Egypt
FIGURE 3. (A) Nihilichnus nihilicus, circular, subcircular to ellipsoidal non-penetrating holes (arrows) on the carapace peripheral. (B, C) Karethraichnus lakkos. (B) Cluster of bowl-shaped pits (arrows) of on the carapace peripheral. (C) Small rounded holes (arrows) of which are not completely penetrating the plastron fragments. (D) External surface of carapace peripheral containing three ichnospecies Cubiculum ornatus, C. inornatus and Osteocallis mandibulus (E, F, and H, respectively). (E) Cubiculum ornatus (arrows), showing the characteristic features of the ichnospecies with well pronounced bioglyphs. (F) Cubiculum inornatus (arrow), showing details of the morphological features the ichnospecies. (G) Cubiculum isp., showing borings arranged in groups of mostly parallel to each other and infilled with sediments. (H) Osteocallis mandibulus (ellipse), showing, randomly oriented surface borings with distinct arcuate (commonly paired) scratches in turtle skeleton. Scale bars equal 0.5 cm, except for B, D and G, which are 1.0 cm, and for C, which is 0.4 cm.
FIGURE 4 in Bioerosion traces on the Campanian turtle remains: New data from the lagoonal deposits of the Quseir Formation, Kharga Oasis, Egypt
FIGURE 4. (A, B) Osteocallis mandibulus. (A) Small randomly oriented surface borings. (B) Close up view of A, showing small randomly oriented surface borings. (C, D) Radulichnus inopinatus, parallel to sub-parallel arcuate bundles closely spaced in groups. (E) Osteichnus ossiobontum, parallel borings with fused U-notches, inclined to the bone surface. (F) Osedacoides jurassicus, small simple borings in bone (yellow arrows) penetrating into the turtle bone. Note the occurrence of some Cubiculum isp. traces (red arrows). (G) Sulculites bellus, smooth, slender narrow, nonbranched straight to curved grooves. (H) Machichnus?bohemicus, shallow serial parallel or subparallel grooves (arrows) in carapace peripheral. Scale bars equal 1.0 cm, except for B, D, and E, which are 0.5 cm.
FIGURE 2 in An Early Cretaceous Sphenophyllum or a hatchling turtle?
FIGURE 2. Pan-chelonioidea indet. turtles (A, B, C, D, E) and extant turtle carapace in ventral view (F, G). A. Partially preserved carapace in ventral view (MONQ-602). B. Outline of MONQ-602 specimen indicating the preserved bones and texture. C. Close-up of the serrated sutural contact between neural 1 and costals 1, see red rectangle in B for reference. D. Close-up of the bone growth showing radial pattern and sutures between left costal 3 and 4, see red rectangle in B for location. E. Partially preserved carapace in ventral view showing probable scars from the insertion of thoracic vertebrae into the neurals (LLC-65). F. Extant Lepidochelys olivacea showing the complete bone morphology of the carapace in ventral view (QM-J85545). G. Same from F showing outline of diagnostic bones and sutures. Abbreviations: c, costal bone; n, neural bone; nu, nuchal bone; pf, post-nuchal fontanel; p, peripheral bone; r, rib; rh, rib head; sp, suprapygal bone. Scale bars equal 1 cm (A, B, C, D, E), 9 cm (F, G).
FIGURE 1. A in An Early Cretaceous Sphenophyllum or a hatchling turtle?
FIGURE 1. A. Reconstruction of "Sphenophyllum colombianum" (MONQ-602) from Huertas (2003). Note the apparent wedge-shaped structures that resemble leaves borne in whorls and having veins that radiate from their attachment point. B, C. Sphenophyllum emarginatum from the Paleozoic Mazon Creek Flora (IL, USA) for comparison (PP- 16865, PP-58015). Scale bars equal 1 cm.
FIGURE 31 in Chinlechelys from the Upper Triassic of New Mexico, USA, and the origin of turtles
FIGURE 31. Otic structures of the Pareiasauridae and Chinlechelys: 1, Embrithosaurus schwarzi skull fragment in ventral view (from Van Den Brant et al., 2019), showing the simple otic notch; 2, Anthodon pricei skull in ventral view (image from Mike S.Y. Lee) showing the conical shape in one dimension of the notch in this pareiasaur, previously hypothesized to be close to Testudines; 3, ventral view of the skull fragment of Chinlechelys showing the cone-shaped (in two dimensions) otic conch.
FIGURE 8 in Chinlechelys from the Upper Triassic of New Mexico, USA, and the origin of turtles
FIGURE 8. Part of skull of Chinlechelys tenertesta, NMMNH P-16697-12: 1, stereograph of the left posterior portion of Chinlechelys skull in ventral view; 2, line drawing highlighting major features of the skull fragment; 3, prootic and opistotic viewed from opposite sides, orientation unknown; 4, skull of Anthodon serrarius modified from Lee (1993) with the bones corresponding to those identified in Chinlechelys highlighted. Abbreviations: po, jugal; qj, quadratojugal; sq, squamosal; te, temporal emargination.
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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.