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FIG. 2 in Cholevinae (Coleoptera: Leiodidae) of the Sierra de Guadarrama National Park, Spain: occurrence in the MSS of a siliceous landscape
FIG. 2. — Sampled habitats and sampling devices: A, a typical scree slope; B, placement of a subterranean sampling device (SSD); C, a talus on a scree slope; D, placement of a talus slope pitfall traps (TSP).
FIG. 5 in Cholevinae (Coleoptera: Leiodidae) of the Sierra de Guadarrama National Park, Spain: occurrence in the MSS of a siliceous landscape
FIG. 5. — Habitus of Cholevinae Kirby, 1837 species captured in this study: A, Speonemadus angusticollis (Kraatz, 1870); B, Speonemadus clathratus (Perris, 1864); C, Speonemadus vandalitiae (Heyden, 1870); D, Attumbra josephinae josephinae (Saulcy, 1862); E, Catops fuliginosus Erichson, 1837; F, Catops fuscus fuscus (Panzer, 1794); G, Catopsimorphus (Attiscurra) marqueti Fairmaire, 1857; H, Catopsimorphus (Weiratherella) rougeti Saulcy, 1864; I, Choleva (Choleva) cisteloides (Frolich, 1799); J, Choleva (Cholevopsis) punctata Brisout, 1866; K, Sciodrepoides watsoni watsoni (Spence, 1815); L, Ptomaphagus (Ptomaphagus) tenuicornis tenuicornis (Rosenhauer, 1856). Scale bars: 1 mm.
FIG. 4 in Cholevinae (Coleoptera: Leiodidae) of the Sierra de Guadarrama National Park, Spain: occurrence in the MSS of a siliceous landscape
FIG. 4. — Species accumulation curves for the complete inventory of the Sierra de Guadarrama National Park: A, sample-based species accumulation curve using the subterranean sampling devices (SSDs) as effort units (empty circles); 95% confidence interval as grey bands, and Chao2 curve (stripped line); B, nonparametric richness estimators.
Dataset of very-high-resolution satellite RGB images to train deep learning models to detect and segment high-mountain juniper shrubs in Sierra Nevada (Spain)
<p>This dataset provides annotated very-high-resolution satellite RGB images extracted from Google Earth to train deep learning models to perform instance segmentation of Juniperus communis L. and Juniperus sabina L. shrubs. All images are from the high mountain of Sierra Nevada in Spain. The dataset contains 810 images (.jpg) of size 224x224 pixels. We also provide partitioning of the data into Train (567 images), Test (162 images), and Validation (81 images) subsets. Their annotations are provided in three different .json files following the COCO annotation format.</p>
Dataset of very-high-resolution satellite RGB images to train deep learning models to recognize high-mountain juniper shrubs from Sierra Nevada (Spain)
<p>This dataset provides annotated very-high-resolution satellite RGB images extracted from Google Earth to train deep learning models to recognize Juniperus communis L. and Juniperus sabina L. shrubs. All images are from the high mountain of Sierra Nevada in Spain. The dataset contains 2000 images (.jpg) of size 512x512 pixels partitioned into two classes: Shrubs and NoShrubs. We also provide partitioning of the data into Train (1800 images), Test (100 images), and Validation (100 images) subsets.</p>
Pinus pinaster genotypes from Sierra Espadan
<p>Data file: " Ppinaster_6100SNPs_GPScoordinates_Espadan.txt"</p> <p>species: Pinus pinaster (Pinaceae)</p> <p>data: Single Nucleotide Polymorphism (SNP) genotype data</p> <p>column "sample_ID" indicates the individual tree number and the sample plot number</p> <p>column "latitude" indicates the latitude in decimal degrees (WGS84) for each sampled tree</p> <p>column "longitude" indicates the longitude in decimal degrees (WGS84) for each sampled tree</p> <p>column "altitude" indicates the altitude above sea level in meters of each sampled tree</p> <p>row 1, column 2-6104: SNP names as in Plomion et al. 2016, doi: 10.1111/1755-0998.12464</p> <p>row 2-151, column 2-6104: genotypes of SNP loci, A= Adenine, C= Cytosine, G= Guanine, T= Thymine, -- = missing data</p>
Fig. 5 in Epidemiological surveillance and amphibian assemblage status at the Estación Experimental de San Lorenzo, Sierra Nevada de Santa Marta, Colombia
Fig. 5. Healthy skin and fibropapilloma in Pristimantis megalops (A). Cross section of the healthy skin of Pristimantis megalops (B): The epidermis is thin, can be seen pigmented layer and layers of collagen in the dermis. Cross section of Fibropapilloma (C). Detail of fibroblasts forming fibropapilloma (D): the tissue is highly vascularized. Detail of the epidermis and collagen layers covering fibropapilloma (E–F). Histochemical staining in Fibropapilloma (F): The layers of collagen in the dermis can be seen in magenta color. fb: fibroblasts; col: layers of collagen; de: dermis; ep: epidermis; gla: dermal glands; hs: healthy skin; lp: pigmented layer; sm: striated muscle tissue; tu: tumor or fibropapilloma; vt: vascular tissue. Photographs by Edgar Javier Rincón Barón.
Fig. 1 in Epidemiological surveillance and amphibian assemblage status at the Estación Experimental de San Lorenzo, Sierra Nevada de Santa Marta, Colombia
Fig. 1. Map of the Serrania de San Lorenzo, Sierra Nevada de Santa Marta, Colombia. Red square area highlights the Estación Experimental de San Lorenzo to 2,200 meters.
Fig. 3 in Epidemiological surveillance and amphibian assemblage status at the Estación Experimental de San Lorenzo, Sierra Nevada de Santa Marta, Colombia
Fig. 3. Healthy individuals of Atelopus laetissimus (A) (Bufonidae); Atelopus nahumae (B) (Bufonidae); Pristimantis megalops (C) (Craugastoridae); and Ikakogi tayrona (D) (Centrolenidae). Photographs by Luis Alberto Rueda Solano.
Fig. 4 in Epidemiological surveillance and amphibian assemblage status at the Estación Experimental de San Lorenzo, Sierra Nevada de Santa Marta, Colombia
Fig. 4. Sick individuals of Ikakogi tayrona (A, B same individual); Pristimantis megalops (C, D), and malformation in Atelopus nahumae (E) and Atelopus laetissimus (F) found in epidemiological surveillance 2008–2014 in La Estación Experimental de San Lorenzo (2,200 meters), Sierra Nevada de Santa Marta, North of Colombia. Photographs by Luis Alberto Rueda Solano (A, B, D), Cesar Molina (C); Andres Rocha Usuga (E, F).
Fig. 6 in Epidemiological surveillance and amphibian assemblage status at the Estación Experimental de San Lorenzo, Sierra Nevada de Santa Marta, Colombia
Fig. 6. Monitoring of Atelopus laetissimus through the years in the Quebrada San Lorenzo Serrania de San Lorenzo, SNSM. Circle = average number obtained from individuals in each year (n = 2 samples for the years 2008, 2013 and 2014) (n = 1 sample for 2009); Error Bars = maximum and minimum individual in each year. Dotted line = trend in the number of individuals over time.
Fig. 2 in Epidemiological surveillance and amphibian assemblage status at the Estación Experimental de San Lorenzo, Sierra Nevada de Santa Marta, Colombia
Fig. 2. Serrania de San Lorenzo (B) Querbrada San Lorenzo (A) Sierra Nevada de Santa Marta, Colombia. Photographs by Luis Alberto Rueda Solano.
Fig. 8 in Systematics of the Sierra Nevada endemic earwig: Eulithinus analis (Forficulidae, Dermaptera)
Fig. 8. Bayesian phylogenetic tree based on ITS2 sequences of Eulithinus Hincks, 1935 and Pseudochelidura Verhoeff, 1902. Species and clade names correspond to the new classification adopted in this work. Posterior probabilities are indicated above branches. Background colours represent species and names below branches represent geographic areas.
Fig. 2 in Systematics of the Sierra Nevada endemic earwig: Eulithinus analis (Forficulidae, Dermaptera)
Fig. 2. Geographic distribution of Eulithinus analis (Rambur, 1838). The green shading on the map represents the area of the Sierra Nevada National Park usually considered as the general area of the species. The purple dots correspond to the records of the species based on the specimens studied from the Entomology collection of the Museo Nacional de Ciencias Naturales, including dry mounted and ethanol preserved material.
Fig. 11 in Systematics of the Sierra Nevada endemic earwig: Eulithinus analis (Forficulidae, Dermaptera)
Fig. 11. Female specimen of Eulithinus analis (Rambur, 1838) from Borreguiles del Río San Juan (Sierra Nevada) with atypical body proportions and with coloration matching the descriptions of Forficula brevis Rambur, 1838. The presence of atypical specimens mixed with typical females of E. analis in the high elevations of Sierra Nevada supports the synonymy between F. analis and F. brevis.
Fig. 7 in Systematics of the Sierra Nevada endemic earwig: Eulithinus analis (Forficulidae, Dermaptera)
Fig. 7. Bayesian phylogenetic tree based on cytb sequences of Eulithinus Hincks, 1935 and Pseudochelidura Verhoeff, 1902. Species and clade names correspond to the new classification adopted in this work. Posterior probabilities are indicated above branches. Background colours represent species and names below branches represent geographic areas.
Fig. 1 in Systematics of the Sierra Nevada endemic earwig: Eulithinus analis (Forficulidae, Dermaptera)
Fig. 1. Original description of Eulithinus analis by Rambur (1838) in the Faune entomologique de l'Andalousie Vol. II.
Fig. 10 in Systematics of the Sierra Nevada endemic earwig: Eulithinus analis (Forficulidae, Dermaptera)
Fig. 10. General view of the habitat and natural history notes of Eulithinus analis (Rambur, 1838) in Sierra Nevada (Spain). A. Typical landscape occupied by E. analis; in front Laguna de Río Seco, where numerous female specimens were observed taking care of their eggs under stones in August. B. Two females taking care of their eggs under the same stone at Laguna de Río Seco; note the remains of a dead male on the left, and the different development degree of the two egg masses; a few minutes later, females clustered the eggs into compact masses. C. Male with intermediate long sized cerci running in alert display at Pradollano. D. Last instar nymph from Laguna de Río Seco; note the general similarity with nymphs of Pseudochelidura cantabrica (Cuesta et al. 2023: fig. 5c). Photographs by MG-P.
Fig. 4 in Systematics of the Sierra Nevada endemic earwig: Eulithinus analis (Forficulidae, Dermaptera)
Fig. 4. Habitus variability in males of Eulithinus analis (Rambur, 1838) from Sierra Nevada (Spain). A. Small specimen with short cerci, corresponding to the original description of Eulithinus montanus (Steinmann, 1981) from Laguna de las Yeguas at 2859 m of altitude (MNCN_Ent 122048). B. Large specimen with long cerci also from Laguna de las Yeguas (MNCN_Ent 121966).
Fig. 9 in Systematics of the Sierra Nevada endemic earwig: Eulithinus analis (Forficulidae, Dermaptera)
Fig. 9. Habitus of live specimens of Eulithinus analis (Rambur, 1838) from Sierra Nevada (Spain). A. Male specimen with long cerci from Pradollano. B. Typical female with dark coloration and brown head from Pradollano. C. Male with intermediate sized cerci from Borreguiles del Río San Juan (MNCN_Ent433449). D. Light colored female with reddish head and pronotum from Pradollano. E. Male displaying short cerci from Laguna de Río Seco (MNCN_Ent344345). F. Male with each cercus of different size from Laguna de Río Seco. Photographs ex situ by MG-P.
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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.