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2,006 results for “andes”
Fig. 1 in Five new species of the genus Andes Stål, 1866 from China (Hemiptera, Fulgoromorpha, Cixiidae)
Fig. 1. Andes balteiformis Wang, Zhi & Chen sp. nov., ♂. A. Dorsal view. B. Lateral view. C. Head and thorax, dorsal view. D. Face, ventral view. E. Forewing. F. Genitalia, lateral view. G. Pygofer and gonostyli, ventral view. H. Anal segment, dorsal view. I. Gonostyli, lateral view. J. Aedeagus, right side. K. Aedeagus, left side. L. Aedeagus, dorsal view. M. Aedeagus, ventral view. Scale bars: A–D, F–M = 0.5 mm; E = 1.0 mm.
Fig. 8 in Five new species of the genus Andes Stål, 1866 from China (Hemiptera, Fulgoromorpha, Cixiidae)
Fig. 8. Andes latanalus Wang & Chen sp. nov., ♀. A. Genitalia, lateral view. B. Genitalia, ventral view. C. Anal segment, dorsal view. D. Tergite IX, caudal view. E. Gonapophysis VIII and gonocoxa VIII, dorsal view. F. Gonapophysis IX, lateral view. G. Gonoplac, inner lateral view. H. Posterior vagina, ventral view. Scale bars: 0.5 mm.
Fig. 7 in Five new species of the genus Andes Stål, 1866 from China (Hemiptera, Fulgoromorpha, Cixiidae)
Fig. 7. Andes latanalus Wang & Chen sp. nov., ♂. A. Dorsal view. B. Lateral view. C. Head and thorax, dorsal view. D. Face, ventral view. E. Forewing. F. Genitalia, lateral view. G. Pygofer and gonostyli, ventral view. H. Anal segment, dorsal view. I. Gonostyli, lateral view. J. Aedeagus, right side. K. Aedeagus, left side. L. Aedeagus, dorsal view. M. Aedeagus, ventral view. Scale bars: A–D, F–M = 0.5 mm; E = 1.0 mm.
Patagonian Andes landslides inventory
<p>We present the dataset developed in the research "Patagonian Andes landslides inventory: The deep learning's way to their automatic detection", submitted to the journal Remote Sensing (<a href="https://doi.org/10.3390/rs14184622">https://doi.org/10.3390/rs14184622</a>).</p> <p>“Landslide_database” folder: contains two ESRI shapefile-type vector files, the first (Ground_Truth_database), corresponds to the manually outlined landslides for training the deep learning model. The file contains the Sentinel 2 tile number, area, and perimeter. The second (Ground_Truth_database_centroid) corresponds to the centroid of the outlined landslides, in addition to the previously mentioned fields, it contains the X and Y coordinates.</p> <p>“Model results” folder: contains an ESRI shapefile vector file (Pred_T18GYS), corresponding to the landslides detected and segmented by the deep learning algorithm in the Sentinel-2 test tile.</p> <p>“Model validation” folder: contains multiple ESRI shapefile vector files used during model validation. Study area (Study_Area), roads (Roads) and populated areas (Localities). Contains the predicted landslides in the study area (Predict_T18GYS_SA), the randomly selected predicted landslides (Predict_T18GYS_Random) and their geometries (Predict_T18GYS_Geometry). The folder also contains manually delineated landslides (Groud_Truth_T18GYS) constrained to the extent of the assessed mosaic and delineated landslides that spatially match the predicted landslides (Ground_Truth_Random). Finally, true positives (TP_T18GYS), false positives (FP_T18GYS), and false negatives (FN_T18GYS) are provided separately.</p>
FIGURE 3 in Protection of spawning habitat for potamodromous fish, an urgent need for the hydropower planning in the Andes
FIGURE 3 | Correlations between geomorphological and physicochemical variables, and ichthyoplankton density. Basin: basin area, Sinuous: channel sinuosity index, Flood: floodplain area, Cond: conductivity, Trans: transparency, Temp: temperature. α = 0.05.
FIGURE 2 in Protection of spawning habitat for potamodromous fish, an urgent need for the hydropower planning in the Andes
FIGURE 2 | Spatial variation in the median density of ichthyoplankton among tributaries. (Kruskal-Wallis H = 208.29, df = 9, p-value <2.2e-16). T01: Samaná River; T02: Nare River; T03: Espíritu Santo River; T04: Carare River; T05: Opón River; T06: Sogamoso River; T07: Boque River; T08: Nechí River; T09: San Jorge River and T10: Cesar River.
FIGURE 4 in Protection of spawning habitat for potamodromous fish, an urgent need for the hydropower planning in the Andes
FIGURE 4 | Potential spawning grounds for 13 sampled potamodromous fish species of the Magdalena basin. A. Baseline (current) scenario, and B. Full hydroelectric projects development scenario.
FIGURE 1 in Protection of spawning habitat for potamodromous fish, an urgent need for the hydropower planning in the Andes
FIGURE 1 | Location of the sampling tributaries (black circles) in the Magdalena River basin. T01: Samaná River; T02: Nare River; T03: Espíritu Santo River; T04: Carare River; T05: Opón River; T06: Sogamoso River; T07: Boque River; T08: Nechí River; T09: San Jorge River and T10: Cesar River. Magdalena River runs north.
Fig. 10 in Two new species of gymnophthalmid lizards of the genus Petracola (Squamata: Cercosaurinae) from the Andes of northeastern Peru, and their phylogenetic relationships
Fig. 10. Type locality of Petracola shurugojalcapi, Área de Conservación Privada Llamapampa-La Jalca, District of la Jalca Grande, Province of Chachapoyas, Department ofAmazonas.
Fig. S1 in Two new species of gymnophthalmid lizards of the genus Petracola (Squamata: Cercosaurinae) from the Andes of northeastern Peru, and their phylogenetic relationships
Fig. S1. Phylogenetic relationships of Cercosaurini (log likelihood = -54268.289, ultrafast bootstrap = 10,000) constructed from the data set of 2,384 nucleotides for mitochondrial genes (12S, 16S, cyt-b, and ND4) and a nuclear gene (c-mos).
Fig. 9 in Two new species of gymnophthalmid lizards of the genus Petracola (Squamata: Cercosaurinae) from the Andes of northeastern Peru, and their phylogenetic relationships
Fig. 9. Holotype in life of Petracola shurugojalcapi from La Jalca Grande (PFAUNA 431, SVL = 51.0 mm, TL = 39.0 mm, adult female).
Fig. 7 in Two new species of gymnophthalmid lizards of the genus Petracola (Squamata: Cercosaurinae) from the Andes of northeastern Peru, and their phylogenetic relationships
Fig. 7. Holotype of Petracola shurugojalcapi, adult female PFAUNA 431 (SVL = 51.0 mm, TL = 39.0 mm).
Fig. 8 in Two new species of gymnophthalmid lizards of the genus Petracola (Squamata: Cercosaurinae) from the Andes of northeastern Peru, and their phylogenetic relationships
Fig. 8. Drawings of lateral, dorsal, and ventral views of the head of the holotype (PFAUNA 431) of Petracola shurugojalcapi.
Fig. 3 in Two new species of gymnophthalmid lizards of the genus Petracola (Squamata: Cercosaurinae) from the Andes of northeastern Peru, and their phylogenetic relationships
Fig. 3. Drawings of lateral, dorsal, and ventral views of the head of the holotype (MUBI 11485) of Petracola amazonensis.
Fig. 4 in Two new species of gymnophthalmid lizards of the genus Petracola (Squamata: Cercosaurinae) from the Andes of northeastern Peru, and their phylogenetic relationships
Fig. 4. Holotype in life of Petracola amazonensis from Upa (MUBI 11485, SVL= 43.0 mm, TL = 42.3 mm, female).
Fig. 1 in Two new species of gymnophthalmid lizards of the genus Petracola (Squamata: Cercosaurinae) from the Andes of northeastern Peru, and their phylogenetic relationships
Fig. 1. Phylogenetic relationships of Cercosaurini (log likelihood = -54268.289, ultrafast bootstrap = 10,000) constructed from the data set of 2,384 nucleotides for mitochondrial genes (12S, 16S, cyt-b, and ND4) and a nuclear gene (c-mos), showing species of Petracola and the two new species Petracola amazonensis and P. shurugojalcapi. The numbers on the branches are ultrafast bootstraps values.
Fig. 5 in Two new species of gymnophthalmid lizards of the genus Petracola (Squamata: Cercosaurinae) from the Andes of northeastern Peru, and their phylogenetic relationships
Fig. 5. Type locality of Petracola amazonensis, Upa, District of Chiliquin, Province of Chachapoyas, Department of Amazonas.
Fig. 3 in A new glassfrog (Centrolenidae: Hyalinobatrachium) from the Topo River Basin, Amazonian slopes of the Andes of Ecuador
Fig. 3. Call of Hyalinobatrachium adespinosai sp. nov., holotype, recorded in field conditions at the type locality. Air temperature: 18 °C.
Fig. 6 in A new glassfrog (Centrolenidae: Hyalinobatrachium) from the Topo River Basin, Amazonian slopes of the Andes of Ecuador
Fig. 6. Schematic graph illustrating how the linearity of the Andes facilitates the speciation process.
Fig. 4 in A new glassfrog (Centrolenidae: Hyalinobatrachium) from the Topo River Basin, Amazonian slopes of the Andes of Ecuador
Fig. 4. Natural history and in-situ photographs of the new species. (A) Adult male of Hyalinobatrachium adespinosai near his egg clutch; other males were observed on the same leaf as the egg clutch. (B) Close-up of the egg clutch. (C) Spider predation on an unattended egg clutch.
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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
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.