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1,130 results for “Egypt”
FIGURE 1. 1 in Deciduous dentition and dental eruption sequence of Bothriogenys fraasi (Anthracotheriidae, Artiodactyla) from the Fayum Depression, Egypt
FIGURE 1. 1, location map of the Jebel Qatrani area, Fayum Depression. 2, stratigraphic positions and age estimates for major mammal-bearing fossil localities, following Seiffert (2006), EOB is abbreviation for Eocene Oligocene Boundary. 3, map of Jebel Qatrani area, showing different rock units, common landmarks and the approximate position of anthracothere-bearing fossil localities.
FIG. 5 in Porcupines in ancient Egypt? A prickly problem re-assessed
FIG. 5. — Naturalistic reconstruction of a fish-ibex composite figure proposed by Dirk Huyge. Credit: Mary Hartley, re-drawn from Huyge 2004: fig. 6.
FIG. 4 in Porcupines in ancient Egypt? A prickly problem re-assessed
FIG. 4. — Knife handles: A, Berlin Egyptian Museum (ÄM 15 137); B, Petrie Museum of Egyptian Archaeology (UC 16 294); C, Brooklyn Museum (inv. 09.889.118). Credits: Mary Hartley, re-drawn from a photograph of ÄM 15 137 supplied by the Berlin Egyptian Museum and reproduced with permission (A); traced from a photograph of UC 16294 supplied by the Petrie Museum of Egyptian Archaeology and reproduced with permission (B); re-drawn from Churcher 1984: fig. 34 (C).
FIG. 3 in Porcupines in ancient Egypt? A prickly problem re-assessed
FIG. 3. — Serrated blade. Cairo Museum (CG 14 706 = JE 32 170). Credit: Mary Hartley, re-drawn from Quibell 1900: pl. 16, fig. 2.
FIG. 2. — Wall scenes. A in Porcupines in ancient Egypt? A prickly problem re-assessed
FIG. 2. — Wall scenes. A, Relief fragment, tomb of Pehenuka, Saqqara. Berlin Museum (ÄM 1132). Credit: Mary Hartley, drawn from a photograph by Osama Shukir Muhammed Amin FRCP (Glasg) (CC BY-SA 4.0): https://urlz.fr/romy, last consultation on 15 July 2024; B, wall scene, Amun temple of Hibis. Credit: Mary Hartley, re-drawn from Lippert 2012: fig. 1.
FIG. 6 in Porcupines in ancient Egypt? A prickly problem re-assessed
FIG. 6. —Palette.Institute for the Study of Ancient Cultures Museum, Chicago (inv. OIM E11470).Credit: Mary Hartley,re-drawn fromHendrickx et al. 2016: fig. 8 (upper).
Checklist of scleractinian coral species in Mangrove Bay, El Qoseir, Egypt
<p>This dataset contains observational data on scleractinian coral species from two reef sites at Mangrove Bay, El Qoseir, Egypt, serving as a baseline for future research and conservation. Collected between October 19th and 25th, 2023, the data includes coordinates, transect details, depth measurements, exposure levels, and life form categories. Surveys were conducted at two sites with different exposure levels (a sheltered reef site and a current-exposed reef site) using the Line Intercept Transect (LIT) method. Each site was surveyed with three 20 m LIT's within three depth zones: reef edge (0–1 m), shallow reef slope (3.7–4.75 m), and deeper reef slope (7.2–9.5 m), totaling eighteen transects. Coordinates were recorded via GPS.</p> <p>Life forms were categorized using codes adapted from English et al. (1994): </p> <ul> <li><strong>AA</strong> (Algae assemblage)</li> <li><strong>ACB</strong> (Acropora coral branching)</li> <li><strong>ACD</strong> (Acropora coral digitate)</li> <li><strong>CA</strong> (Coralline algae)</li> <li><strong>CA </strong>+ <strong>TA </strong>(Coralline algae + Turf algae)</li> <li><strong>CB </strong>(Coral branching)</li> <li><strong>CD </strong>(Coral dead)</li> <li><strong>CDA </strong>(Coral dead with algae)</li> <li><strong>CE </strong>(Coral encrusting)</li> <li><strong>CF </strong>(Coral foliose)</li> <li><strong>CM </strong>(Coral massive)</li> <li><strong>CME </strong>(Coral Millepora)</li> <li><strong>CMR </strong>(Coral mushroom)</li> <li><strong>CR </strong>(Coral rubble)</li> <li><strong>CS </strong>(Coral submassive)</li> <li><strong>GAP </strong>(No category underneath the measuring tape)</li> <li><strong>MA </strong>(Macroalgae)</li> <li><strong>MOLL </strong>(Mollusc)</li> <li><strong>OT</strong> (Others)</li> <li><strong>R </strong>(Rock)</li> <li><strong>S </strong>(Sand)</li> <li><strong>SC </strong>(Soft coral)</li> <li><strong>SP </strong>(Sponge)</li> <li><strong>TA </strong>(Turf algae)</li> </ul> <p> </p> <p>English, S., Wilkinson, C. & Baker, V. (eds) 1994, <em>Survey Manual for Tropical Marine Resources</em>, Australian Institute of Marine Science, Townsville.</p>
FIG. 1 in Porcupines in ancient Egypt? A prickly problem re-assessed
FIG. 1. — North African crested porcupine (Hystrix cristata Linnaeus, 1758). Note the raised nuchal crest and paddle-shaped tail. Photo credit:iStock.com, wrangel.
Figure 5 in Subspeciation befogged by the ''Seligmann effect'': the case of Laudakia stellio (Reptilia: Sauria: Agamidae) in southern Sinai, Egypt
Figure 5. Central-dorsal scale pattern distinguishing Laudakia stellio salehi (A) from L. s. brachydactyla (B), from photographs of the holotypes. While in L. s. brachydactyla there is a broad mid-dorsal band of large scales, in L. s. salehi the left and right transverse rows of enlarged scales are separated by a narrow mid-dorsal stripe of small scales. Scale bars: 5 mm.
Figure 4 in Subspeciation befogged by the ''Seligmann effect'': the case of Laudakia stellio (Reptilia: Sauria: Agamidae) in southern Sinai, Egypt
Figure 4. Variation in ''Laudakia stellio brachydactyla'' sensu lato from the Negev (Israel) and Sinai (Egypt). Bimodal distribution of one character, fourth toe length, one mode due to regenerated-tailed specimens, the other due to original-tailed specimens (N513).
Figure 1 in Subspeciation befogged by the ''Seligmann effect'': the case of Laudakia stellio (Reptilia: Sauria: Agamidae) in southern Sinai, Egypt
Figure 1. Morphological PCA analysis of ''Laudakia stellio brachydactyla'' sensu lato from the Negev (Israel) and Sinai (Egypt), including original-tailed and regenerated-tailed specimens. (A) Males (N531); (B) females (N525).
Figure 2 in Subspeciation befogged by the ''Seligmann effect'': the case of Laudakia stellio (Reptilia: Sauria: Agamidae) in southern Sinai, Egypt
Figure 2. Map of the study area (from Werner 1988) delimited towards north by a broken line and subdivided by a second broken line into northern ''Negev'' and southern ''Sinai'', with localities of the focal specimens (solid circles) and human settlements for orientation (open squares), explained in Werner (1987, 1988).
Figure 3 in Subspeciation befogged by the ''Seligmann effect'': the case of Laudakia stellio (Reptilia: Sauria: Agamidae) in southern Sinai, Egypt
Figure 3. Morphological PCA analysis of ''Laudakia stellio brachydactyla'' sensu lato from the Negev (Israel) and Sinai (Egypt), including only original-tailed specimens. (A) Males (N520); (B) females (N516).
Figure 1 in Field application of six commercial essential oils against Date Palm mite, Phyllotetranychus aegypticus (Acari: Tenuipalpidae) in Egypt
Figure 1. The relationship (regression modeling at P = 0.05) between X (temperature recorded in spring, summer, and autumn), and Y (predicted value which representing mite populations before and after oil treatments). The line is the linear model, significant part till temperature ≤ 27 (which represents spring and autumn treatments). While the circle in the end part, temperature> 27.50 (representing effect of oil in summer) is not significant, P = 0.202ns.
Figure 5 in Field application of six commercial essential oils against Date Palm mite, Phyllotetranychus aegypticus (Acari: Tenuipalpidae) in Egypt
Figure 5. Independent-samples test of ordered alternatives (Jonckheere-Terpstra Test) on the relation between tested commercial essential oils of thyme, spearmint, jasmine, banana, camphor and clove across the temperature recorded in the field application 2018, at 0.05 significance level.
Figure 4 in Field application of six commercial essential oils against Date Palm mite, Phyllotetranychus aegypticus (Acari: Tenuipalpidae) in Egypt
Figure 4. Independent-samples median (Kolmogorov-Smirnov Test) resulted the distribution and the median of tested commercial essential oils of thyme, spearmint, jasmine, banana, camphor and clove across the three categories of season (spring, summer, and autumn), at 0.05 significance level.
Figure 2 in Field application of six commercial essential oils against Date Palm mite, Phyllotetranychus aegypticus (Acari: Tenuipalpidae) in Egypt
Figure 2. The relationship between numbers of Phyllotetranychus aegyptiacus active stages/50 leaflets of palm trees (treated and control), and the optimum temperature recorded (°C) during spring, summer, and autumn 2018 in Giza.
Fig. 5 in Parasitoids complex of Asphondylia conglomerata De STEFANI (Diptera: Cecidomyiidae) on the Mediterranean Saltbush, Atriplex halimus L. (Chenopodiaceae) in Egypt, with descriptions of new species from Eulophidae and Torymidae (Hymenoptera: Chalcidoidea)
Fig. 5: Neochrysocharls conglomeratae DOöANLAR nov.sp. Male: (a) body, in lateral view; (b) antenna.
Fig. 6 in Parasitoids complex of Asphondylia conglomerata De STEFANI (Diptera: Cecidomyiidae) on the Mediterranean Saltbush, Atriplex halimus L. (Chenopodiaceae) in Egypt, with descriptions of new species from Eulophidae and Torymidae (Hymenoptera: Chalcidoidea)
Fig. 6: Torymus egypticus DOöANLAR nov.sp. Female: (a) body, in lateral view; (b) head and part of mesosoma; (c) antenna; (d) forewing; (e) metasoma.
Fig. 3 in Parasitoids complex of Asphondylia conglomerata De STEFANI (Diptera: Cecidomyiidae) on the Mediterranean Saltbush, Atriplex halimus L. (Chenopodiaceae) in Egypt, with descriptions of new species from Eulophidae and Torymidae (Hymenoptera: Chalcidoidea)
Fig. 3: Kolopterna aymani DOöANLAR nov.sp. a,b, female: (a) head; (b) hypopygium; c,d. male. (c) head; (d) genitalia.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.