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2,331 results for “Andean”
Fig. 1 in SHORT COMMUNICATION New records of the Critically Endangered frog Pristimantis pardalinus (Craugastoridae) in the eastern Andean slopes of central Peru
Fig. 1. Map showing the currently known distribution of Pristimantis pardalinus. The yellow triangle indicates the location of the type locality and the red stars indicate the location of new records reported in this study. The inset shows the location of the study area in Peru (red box).
Snow accumulation patterns in a high mountain Andean catchment from optical tri-stereoscopic remote sensing
<p><strong>1) DBSM_Data_RioYeso'</strong> = Automatic weather station (AWS) data from Yeso Embalse and Termas del Plomo meteorological stations (available from Chilean Water Directorate, 'Dirección General de Aguas' or 'DGA' http://www.arcgis.com/apps/OnePane/basicviewer/index.html?appid=d508beb3a88f43d28c17a8ec9fac5ef0), used to force a distributed blowing snow model of Essery et al. (1999) to derive spatial snow depth of the Rio del Yeso catchment, Chile. The format is as follows:</p> <p><em>{'Year','Month','Day','Hour','Incoming shortwave radiation (Wm2)','Incoming longwave radiation (Wm2)','SnowfallRate(mm/hr)','RainfallRate(mm/hr)','Air temperature (celsius)','Relative humidity (%)','Wind speed (m s-1)','Compass wind direction','Air pressure (hPa)'};</em></p> <p><strong>2) 'snowHeightPleiadesREG' </strong>= A snow depth map (horizontal resolution 4m) derived from triplets of high resoution stereo optical satellite images (Pléiades) following the methodology of Marti et al. (2016). The snow depth map is derived for a high mountain catchment (Rio del Yeso) of the central Chilean Andes (see Burger et al., 2018).</p> <p><strong>3) 'L2_LiDAR_4m'</strong> = A LiDAR (Light detection and Ranging) spatial snow depth map at a horizontal resolution of 4 m. The data were captured by a Reigl VZ-6000 LiDAR scanner and generated from the difference of two constructed digital elevation models (DEMs) between the dates 13th September, 2017 (with snow) and 12th December, 2017 (without snow). </p> <p><strong>4) 'L2_Pleiades_SDLidar_NEW' </strong>= The Pléiades snow depth map as described in <strong>2)</strong>, extracted by the areas of LiDAR scan described in <strong>3)</strong>. </p> <p><strong>5) 'SnowDepthResults'</strong> = A folder containing a corrected and gap-filled Pléiades snow depth map (<strong>'SD_PleiadesCORR'</strong>) and for comparison: <strong>'SD_TOPO'</strong>, a statistical estimation of snow depth using topographic parameters and the regression equation of Grünewald et al. (2013) and; The physically based estimates of snow depth using the DBSM model as in <strong>1)</strong> without snow transport for the 4th September, 2017 (<strong>'SD_EXTP_Sep04'</strong>) and 13th September, 2017 ('<strong>SD_EXTP_Sep13'</strong>) and with snow transport for those dates (<strong>'SD_Wind_Sep04','SD_Wind_Sep13'</strong>).</p> <p><strong>6) 'rdyDEM'</strong> = An independent ASTER GDEM (https://asterweb.jpl.nasa.gov/gdem.asp) cut to the area of the study catchment (horizontal resolution = 30 m). </p> <p><strong>7) '</strong><strong>PlanetScope_20170907_TPK' </strong>= An stitched optical PlanetScope image of the catchment (horizontal resolution of 3.25 m) derived from access under the research and teaching iniative (planet.com). </p> <p><strong>Cited work:</strong></p> <p><strong>Burger, F. et al.</strong> (2018) ‘Interannual variability in glacier contribution to runoff from a high ‐ elevation Andean catchment : understanding the role of debris cover in glacier hydrology’, Hydrological Processes, pp. 1–16. doi: 10.1002/hyp.13354.</p> <p><strong>Essery, R</strong>., Li, L. and Pomeroy, J. (1999) ‘A distributed model of blowing snow over complex terrain’, Hydrological Processes, 13(14–15), pp. 2423–2438. doi: 10.1002/(SICI)1099-1085(199910)13:14/15<2423::AID-HYP853>3.0.CO;2-U.</p> <p><strong>Grünewald, T. et al.</strong> (2013) ‘Statistical modelling of the snow depth distribution in open alpine terrain’, Hydrology and Earth System Sciences, 17(8), pp. 3005–3021. doi: 10.5194/hess-17-3005-2013.</p> <p><strong>Marti, R. et al</strong>. (2016) ‘Mapping snow depth in open alpine terrain from stereo satellite imagery’, The Cryosphere, pp. 1361–1380. doi: 10.5194/tc-10-1361-2016.</p>
Figure 11 in Immature stages, phenology, distribution and host plants of the Andean Moon Moth Cercophana frauenfeldii Felder, 1862 (Lepidoptera: Saturniidae)
Figure 11 Larvae of C. frauenfeldii occurring on two host plants. (A) Last instar larva feeding on Cryptocarya alba (peumo). (B) Second instar larva feeding on Gomortega keule (queule) leaves.
Figure 7 in Immature stages, phenology, distribution and host plants of the Andean Moon Moth Cercophana frauenfeldii Felder, 1862 (Lepidoptera: Saturniidae)
Figure 7 Cercophana frauenfeldii cocoon.(A) Collected from rocky substrate at Laguna Torca National Reserve, Vichuquén, Chile.(B-D) Cocoons from larvae reared at the laboratory. (E-F) Details of the silk thread arrangement in the cocoon.
Figure 2 in Immature stages, phenology, distribution and host plants of the Andean Moon Moth Cercophana frauenfeldii Felder, 1862 (Lepidoptera: Saturniidae)
Figure 2 Cercophana frauenfeldii larva head. (A) Trisegmented Antenna (TrA); (B) Details of the mouthparts, Labrum (Lb) and Mandibles (Man). (C) Hypopharyngeal complex, showing Maxillary Palpi (MaP) and Spinneret (Spn); and (D) Stemmata (Ste) arrangement.
Fig. 3 in Morphometric and molecular differences among Calvertius tuberosus (Coleoptera: Curculionidae) populations associated with Andean and coastal populations of Araucaria araucana in the La Araucanía Region, Chile
Fig. 3. Neighbor-joining dendrogram of morphometrics measurements; 1. Villa Las Araucarias, 2. Nahuelbuta, 3. Malalcahuello.
Figure 4 in Going up: new altitudinal records of orchid bees (Hymenoptera: Apidae) in the inter-Andean valleys of southern Ecuador and their potential dispersal route
Figure 4. Potential dispersal route from the west lowlands of the Andes in Azuay province to the inter-Andean valleys of southern Ecuador. / Posible ruta de dispersión desde las tierras bajas occidentales de los Andes en la provincia de Azuay hasta los valles interandinos del sur de Ecuador.
Figure 3 in Going up: new altitudinal records of orchid bees (Hymenoptera: Apidae) in the inter-Andean valleys of southern Ecuador and their potential dispersal route
Figure 3. New collected females of Euglossa (Euglossa) cf. charapensis. A. Lateral view of specimen collected in Cuenca. B. Lateral view of specimen collected in Gualaceo. C. Dorsal view of specimen collected in Cuenca.D. Lateral view of specimen collected in Gualaceo. / Nuevas hembras recolectadas de Euglossa (Euglossa) cf. charapensis. A. Vista lateral de ejemplares recolectados en Cuenca. B. Vista lateral de ejemplares recolectados en Gualaceo. C. Vista dorsal de ejemplares recolectados en Cuenca. D. Vista lateral de ejemplares colectados en Gualaceo.
Figure 2 in Going up: new altitudinal records of orchid bees (Hymenoptera: Apidae) in the inter-Andean valleys of southern Ecuador and their potential dispersal route
Figure 2. Male of Eulaema (Apeulaema) polychroma collected in Cuenca. A. Lateral view. B. Dorsal view. C. Face. D. Detail of tufts presents in the middle tibia. / Macho de Eulaema (Apeulaema) polychroma recolectado en Cuenca. A. Vista lateral. B. Vista dorsal. C. Cara. D. Detalle de mechones presentes en la tibia media.
Figure 1. A in Going up: new altitudinal records of orchid bees (Hymenoptera: Apidae) in the inter-Andean valleys of southern Ecuador and their potential dispersal route
Figure 1. A. Map showing new localities for Eulaema (Apeulaema) polychroma and Euglossa (Euglossa) cf. charapensis, in Azuay province, Ecuador. B. Female of Euglossa (Euglossa) cf. charapensis. C. Female of E. cf. charapensis visiting a flower of C. orthoneura upon which yellow resin is observed in the rear expanded tibia. / Mapa que muestra nuevas localidades para Eulaema (Apeulaema) polychroma y Euglossa (Euglossa) cf. charapensis, en la provincia de Azuay, Ecuador. B. Hembra de Euglossa (Euglossa) cf. charapensis. C. Hembra de Euglossa (Euglossa) cf. charapensis visitando una flor de C. orthoneura sobre la cual se observa resina amarilla en la tibia trasera expandida.
Fig. 23 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 23. Saldula stoneri (scanning electron micrographs): A. Apicoventral view of left paramere showing setae on processus sensualis. B. Apical view of left paramere. C. Apex of paramere showing short setiform sensors. D. Detail view of gland pore on paramere. ps, processus sensualis.
Fig. 28 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 28. Strict consensus of three cladograms derived from simultaneous analysis of the 16S rDNA and H3 gene regions and morphological data. Jackknife support values for morphology + DNA sequences are shown above the line, for DNA sequence data only below the line.
Fig. 20 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 20. Pseudosaldula yungas (scanning electron micrographs). Left paramere. A. Apical view showing comblike arrangement of long setae. B. Medial detail view of setae on processus sensualis. C. Apex of paramere showing short setiform sensors. D. Detail of gland pore on paramere.
Fig. 19 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 19. Pseudosaldula vulgaris (scanning electron micrographs). Left paramere. A. General view of ventral face. B. Detail of processus sensualis. C. Apex of paramere showing short setiform sensors. D. Dorsal view of parandria.
Fig. 25 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 25. Saldula coxalis (scanning electron micrographs). A. Frontoventral view of left paramere. B. Detail of processus sensualis showing insertion of setae on tubercles situated on moundlike area. C. Apex of paramere showing short setiform sensors. D. Detail of gland pore on paramere.
Fig. 17 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 17. Pseudosaldula saxicola (scanning electron micrographs). Right paramere. A. Apical view showing comblike arrangement of long setae. B. Medioventral view of setae on processus sensualis. C. Detail of gland pore on paramere. D. Dorsal view of parandria.
Fig. 21 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 21. Morphology of Chiloxanthinae (scanning electron micrographs). A. Frontal view of face of Pentacora sphacelata. B. Frontal view of head of Paralosalda innova. C. Detail of postclypeal region in Paralosalda innova. D. Foreleg pretarsus of Paralosalda innova, showing reduced parempodia and absence of dorsal arolium. E. Hind leg pretarsus of Paralosalda innova showing dorsal arolium. F. Detail of dorsal arolium on hind leg in Paralosalda innova. cly, clypeus; da, dorsal arolium; mp, mandibular plate; par, parempodia; pcr, postclypeal region; tvs, transverse swelling.
Fig. 15 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 15. Pseudosaldula salina (scanning electron micrographs): Left paramere. A. View of ventral face at level of processus sensualis. B. Medioventral view of setae on processus sensualis. C. Apex of left paramere showing short setiform sensors. D. Detail of gland pore on paramere.
Fig. 14 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 14. Pseudosaldula pilosa (scanning electron micrographs). Left paramere. A. General view of ventral face. B. Detail of setae on processus sensualis. C. Apex of paramere showing short setiform sensors. D. Detail of gland pore on paramere.
Fig. 29 in Revision And Analysis Of Pseudosaldula Cobben (Insecta: Hemiptera: Saldidae): A Group With A Classic Andean Distribution
Fig. 29. Plot of altitude against latitude and regression line (R2) showing strong correlation between altitude and latitude. Based on 256 localities.
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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
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.