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765 results for “alps”
Figure 5 in Description of a widely distributed but overlooked amphipod species in the European Alps
Figure 5. Habitus and detail drawings of Gammarus alpinus sp. nov. (♂, 21 mm, Lej da San Murezzan, Switzerland). A, habitus; B, uropod 3 with long inner ramus; C, epimeral plate 2 with sharply pointed posteroinferior corner; D, gnathopod 2; E, derived and simplified gnathopod of G. lacustris indicating the second group of setae along anterior margin of carpopodite of gnathopod 2 to visualize the distinctive character between the sister species. Drawings by Vid ̆Svara.
Figure 4 in Description of a widely distributed but overlooked amphipod species in the European Alps
Figure 4. COI haplotype network. Haplotype network based on COI sequences calculated as a median joining network. Circles represent distinct haplotypes and different colours indicate sampling localities.
FIGURE 6 in Otiorhynchus (Nihus) grischunensis sp. n. — a new species of the O. rhilensis species group from the Swiss Alps (Curculionidae, Entiminae)
FIGURE 6. Overview of the distribution of Otiorhynchus (Nihus) spp. modified after Di Marco & Osella (1998). With O. grischunensis sp. n., the O. rhilensis species group reaches its north-westernmost point and an alternative explanation of its historical spreading via the Alps (solid flash) instead of the direct way from Dalmatia to the Apennine (scattered flash) is given. White squares: O. rhilensis species group 1) O. grischunensis sp. n.; 2) O abruzzensis; 3) O. leonhardi; 4) O. rhilensis; 5) O. winkelmanni; 6) O. boroveci; 7) O. uludagicus. Black circles: O. proximus species group 1) O. sp. n.; 2) O. salassorum; 3) O. praetutiorum; 4) O. globulus; 5) O. proximus sensu lato; 6) O. hypsibatus; 7) O. carpathicus; 8) O. ardealicus; 9) O. noskiewiczi; 10) O. poianae. Note that O. khatiparicus Davidian & Arzanov, 2006 and O. meoticus Davidian & Arzanov, 2006 from Caucasus and northeastern Turkey are not shown on this map.
FIGURE 5 in Otiorhynchus (Nihus) grischunensis sp. n. — a new species of the O. rhilensis species group from the Swiss Alps (Curculionidae, Entiminae)
FIGURE 5. Habitat of O. grischunensis sp. n. at the type locality on Pass of Bernina in Grisons above 2100 m a. s. l (photo: C. Germann).
FIGURE 3 in Otiorhynchus (Nihus) grischunensis sp. n. — a new species of the O. rhilensis species group from the Swiss Alps (Curculionidae, Entiminae)
FIGURE 3. Habitus (dorsal) of Otiorhynchus (Nihus) spp., the four O. rhilensis specimens show the species' remarkable variability. A) O. grischunensis sp. n. holotype – Bernina; B) Dito, paratype – St. Moritz; C) O. rhilensis Stierlin, 1888 – SE-Rila, Belmeken; D) Dito – Stara Planina, Botev; E) Dito – S-Pirin, Orelek; F) Dito – Slavianka, S Goleschovo.
FIGURE 1. O in Otiorhynchus (Nihus) grischunensis sp. n. — a new species of the O. rhilensis species group from the Swiss Alps (Curculionidae, Entiminae)
FIGURE 1. O. grischunensis sp. n. paratype dorsal (above) and lateral view (down) – Davos, Schiahorn.
FIGURE 4 in Otiorhynchus (Nihus) grischunensis sp. n. — a new species of the O. rhilensis species group from the Swiss Alps (Curculionidae, Entiminae)
FIGURE 4. Spermathecae, spiculae ventrale and ovipositors of members of the O. rhilensis species group (A–F) and O. proximus species group (G–K). Right margin: the different shapes of the spiculum of both species groups are illustrated: rounded (above, O. grischunensis sp. n.) and concave/incised (down, O. proximus). A) Holotype Bernina (spermatheca lost); B) Paratype Davos, Schiahorn; C) Paratype St. Moritz; D) S-Pirin, Oelek; E) E-Rila, Belmeken; F) SE-Rila, Belmeken; G) Julian Alps; H) Wechsel; I) Styria; J) Rodna-Mountains; K) Vyosoke Tatry. Details concerning finding locations are indicated in Appendix 1.
PLATE 1 in New and interesting Peritelini of the Western Mediterranean fauna. XX. A novel Meira (Jacquelin du Val, 1852) species from the Ligurian Alps
PLATE 1. Meira diottii sp. n.: 1. Habitus; 2. surface of the pronotum (SEM); 3. detail of elytral surface (SEM).
PLATE 2 in New and interesting Peritelini of the Western Mediterranean fauna. XX. A novel Meira (Jacquelin du Val, 1852) species from the Ligurian Alps
PLATE 2. Meira diottii sp. n.: 4. Penis, lateral view; 5. Apex of the penis, dorsal view; 6. genital armature of the internal sac, typical of the genus; 7. Supplementary genital armature of the internal sac; 8a, 8b. sensilla of the penis (SEM).
supplément à "Modélisation des régimes thermiques du sol dans les milieux ouverts d'altitude des Alpes françaises : influence du transport de neige par le vent et de la végétation" : codes et données
<p>Codes et données pour reproduire les chapitres 2 et 5 de la thèse de Matthieu Baron intitulée "Modélisation des régimes thermiques du sol dans les milieux ouverts d'altitude des Alpes françaises : influence du transport de neige par le vent et de la végétation".</p><p>Les jeux de données incluent nottamment:</p><p> - des sorties de simulations de SURFEX</p><p> - des données de températures du sol extraites dans le cadre de différents projets de la Zone Atelier Alpes et retravaillées. Une autre version de ces données (plus actuelle) est publiée ici :</p><p>CHOLER, Philippe; SAGOT, Clotilde; AUGE, Vincent; DENTANT, Cédric; réseau Flore Sentinelle; LIGER, Lucie; MANSONS, Jérôme; NAPOLEONI, Raphaëlle; SAILLARD, Amélie; TILL BOTTRAUD, Irène; FORT, Noémie, 2023, "Long term monitoring of near surface soil temperature in the french Alps", <a href="https://doi.org/10.57745/JOZ1NA">https://doi.org/10.57745/JOZ1NA</a>, Recherche Data Gouv, V1</p><p> </p><p>Un fichier README.md est présent dans la racine du dossier et donne une desription plus poussée de son contenu </p>
ALP HOUSE PENNY BANK
alp house penny bank Source: Objaverse 1.0 / Sketchfab
Dataset for Spatial Heterogeneity of Uplift Pattern in the Western European Alps Revealed by InSAR Time Series Analysis
<p>ZIP file with InSAR raw and smoothed final velocity solution values</p>
MAR-MPI-ESM1-2-HR HIST (1961-2014) and SSP245 European Alps (2015-2100)
<p>This deposit contains MAR simulations over the European Alps domain (7 kilometers resolution) forced by the MPI-ESM1-2-HR GCM (CMIP6 version) for the historical period (HIST, 1961 to 2014) and the SSP245 projection (SSP245, 2015 to 2100). The version of the MAR model used is v.3.10, model set-up is described in detail in Beaumet et al., 2021 (https://doi.org/10.1007/s10113-021-01830-x) Contact person : Julien Beaumet (beaumetjulien@gmail.com), Martin Menegoz (martin.menegoz@univ-grenoble-alpes.fr)<br> The realization used is r1i1p1f1.<br> Data are available at the daily frequency, with one variable per file (10 years of data per file).<br> The available variables in this deposit are :</p> <p><strong>CC:</strong> Cloud cover, [0-1]<br> <strong>MB:</strong> Total snow water equivalent, [mm.We]<br> <strong>MBrr:</strong> Daily rainfall, [mm.We] (5)<br> <strong>MBsf:</strong> Daily snowfall, [mm.We] (5)<br> <strong>QQz: </strong> Near-surface specific humidity at constant height, [g/kg] (2)</p> <p><strong>TTmax:</strong> Near-surface maximum air temperature for the first model level above the surface (constant sigma), [C]<br> <strong>TTmin:</strong> Near-surface minimum air temperature for the first model level above the surface (constant sigma),[C]</p> <p><strong>TTz: </strong>Near-surface mean air temperature at constant-height, [C]<br> <strong>UUz:</strong> Near-surface zonal component of wind speed at constant height, [m/s]<br> <strong>VVz:</strong> Near surface Meridional component of wind speed at constant height, [m/s]<br> <strong>ZN3:</strong> Total snow height, [m]</p> <p>Other variables are available upon request (see email above).<br> AL : Surface albedo, [0-1]<br> CD: Low level Cloud cover, [0-1]<br> CM: Middle level Cloud cover, [0-1]<br> CU: High level Cloud cover, [0-1]<br> SP: Surface pressure, [hPa]<br> ST: Surface temperature, [C]<br> TT: Near-surface mean air temperature for the first three model level above the surface (constant sigma), [C] (1)<br> TTp: Constant pressure-level mean air temperature, [C] (4)<br> ZZ: Surface geopotential for the first three model level above the surface (constant sigma), [m]</p> <p>LWD: Surface downward longwave radiation, [W/m2]<br> LWU: Surface upward longwave radiation, [W/m2]</p> <p>SWD: Surface downward shortwave radiation, [W/m2]<br> SWU: Surface upward shortwave radiation, [W/m2]</p> <p>SHF: Surface sensible heat flux, [W/m2] LHF: Surface latent heat flux, [W/m2]</p> <p>* Latitude(LAT),longitude(LON)and surface elevation (SH) of each grid point can be read in MARgrid_EUy.nc file</p> <p>(1) For variable TT, ZZ model constant sigma level of 0.9997479, 0.999496, 0.9989921<br> (2) For variables TTz, QQz constant height level are : 2, 10, 50 and 100m<br> (3) For variables UUz, VVz constant height level are : 10, 50 and 100m<br> (4) Variables TTp, UUp, VVp available at pressure level : 925, 850, 800, 700, 600, 500, 200 hPa<br> (5) Snow height and snow water equivalent are available for three sectors which corresponds to three different vegetation type : The three vegetation type used can be readen in the file MARgrid_EUy.nc, with the variable VEG and their respectibe fraction for each grid point is given by the variable FRV. The third vegetation type (sector=3) mostly corresponds to bare soil or low crops by default, but sometimes its fraction=0, which gives unrealistic low values of snow height. In this case, using the max. value on the axis sector often gives the best results.<br> Legend of the vegetation type for the VEG variables : 0:NO_VEGETATION 1:CROPS_LOW 2:CROPS_MEDIUM 3:CROPS_HIGH 4:GRASS_LOW 5:GRASS_MEDIUM 6:GRASS_HIGH 7:BROADLEAF_LOW 8:BROADLEAF MEDIUM 9:BROADLEAF_HIGH 10:NEEDLELEAF_LOW 11:NEEDLELEAF MEDIUM 12:NEEDLELEAF_HIGH 13:City<br> ~ </p>
FIGURE. Taraxacum janchenii. A in Taraxacum sect. Erythrocarpa in Europe in the Alps and eastwards: A revision of a precursor group of relicts
FIGURE. Taraxacum janchenii. A, General habit (WU, no. det. 1096, a part of the holotype). B, Achenes (PRA, no. det. 33699).
FIGURE. Taraxacum velebiticum. A in Taraxacum sect. Erythrocarpa in Europe in the Alps and eastwards: A revision of a precursor group of relicts
FIGURE. Taraxacum velebiticum. A, General habit (PRA, no. det. 33109, a part of the holotype). B, Achenes (PRA, no. det. 30974).
FIGURE. Taraxacum meierottii (A) and T. velebiticum (B). Achenes and outer phyllaries. Scale bar = 1 mm. in Taraxacum sect. Erythrocarpa in Europe in the Alps and eastwards: A revision of a precursor group of relicts
FIGURE. Taraxacum meierottii (A) and T. velebiticum (B). Achenes and outer phyllaries. Scale bar = 1 mm.
FIGURE 2. Taraxacum pudilii. A in Taraxacum sect. Erythrocarpa in Europe in the Alps and eastwards: A revision of a precursor group of relicts
FIGURE 2. Taraxacum pudilii. A, Details of involucre (cultivated as JŠ 10586). B, Achenes (PRA, no. det. 35512, holotype).
FIGURE 26 in Taraxacum sect. Erythrocarpa in Europe in the Alps and eastwards: A revision of a precursor group of relicts
FIGURE 26. Achenes and outer phyllaries of Taraxacum adamovicii (A) and T. pudilii (B). Scale bar = 1 mm.
FIGURE 1. Taraxacum panhellenicum. A in Taraxacum sect. Erythrocarpa in Europe in the Alps and eastwards: A revision of a precursor group of relicts
FIGURE 1. Taraxacum panhellenicum. A, General habit (PRC, Taraxaca Exsiccata, no. 141, paratype). B, Detail of involucre (cultivated as JŠ 10504). C, Achenes (PRA, no. det. 33632). D, Geographical distribution.
FIGURE 21. Taraxacum greuteri. A in Taraxacum sect. Erythrocarpa in Europe in the Alps and eastwards: A revision of a precursor group of relicts
FIGURE 21. Taraxacum greuteri. A, General habit (PRA, no. det. 33113, a part of the holotype). B, Achenes (PRA, no. det. 33113, holotype).
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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.