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765 results for “alps”
Figure 4 from: Balestra V, Lana E, Vanin S (2022) Observations on the habitat and feeding behaviour of the hypogean genus Eukoenenia (Palpigradi, Eukoeneniidae) in the Western Italian Alps. Subterranean Biology 42: 23-41. https://doi.org/10.3897/subtbiol.42.75784
Figure 4 Percentage of specimens found on different microhabitats.
Figure 6 from: Balestra V, Lana E, Vanin S (2022) Observations on the habitat and feeding behaviour of the hypogean genus Eukoenenia (Palpigradi, Eukoeneniidae) in the Western Italian Alps. Subterranean Biology 42: 23-41. https://doi.org/10.3897/subtbiol.42.75784
Figure 6 Approach and meal of Eukoenenia strinatii on Pseudosinella alpina (photos by E. Lana).
Figure 2 from: Balestra V, Lana E, Vanin S (2022) Observations on the habitat and feeding behaviour of the hypogean genus Eukoenenia (Palpigradi, Eukoeneniidae) in the Western Italian Alps. Subterranean Biology 42: 23-41. https://doi.org/10.3897/subtbiol.42.75784
Figure 2 Number of specimens observed for sampling site.
Clonality and genetic structure of an endangered aquatic plant, Typha minima, in the French Alps: consequences for conservation
<p>Genetic data on Typha minima populations obtained with AFLP markers.</p> <p>The data was used in the article "Clonality and genetic structure of an endangered aquatic plant, Typha minima, in the French Alps: consequences for conservation, by Irène Till-Bottraud, Jacky Girel, Erwan Roussel, Delphine Rioux, Lucie Fiorese, Noémie Fort and published in Alpine Botany in 2022</p>
Data used in the paper entitled: "Hidden faults: the Late Pleistocene transpression of the Königssee–Lammertal–Traunsee Fault inferred from caves deformation (Eastern Alps)"
<p><strong>Manuscript Abstract: </strong>The Eastern Alps have undergone lateral extrusion since the late Oligocene, with major crustal-scale strike-slip faults still active, as evidenced by earthquakes up to M6, despite scant geological record. Research has focused more on the Salzach-Ennstal-Mariazell-Puchberg (SEMP) and Mur-Mürz faults, leaving the central part of the Northern Calcareous Alps cut by the 110 km long Königssee–Lammertal–Traunsee (KLT) fault system under-studied. We took advantage of a cave environment isolated from erosion, providing unparalleled structural indicators exposure to fill the Pleistocene deformation history gap of the KLT. We reconstruct paleostress for 26 reverse, strike-slip, and oblique reactivated faults that offset passages in seven caves close to sinistral KLT and dextral Lammertal faults. <sup>230</sup>Th/U dating of faulted and broken speleothems revealed two reactivation events since the Middle Pleistocene. The older event dates can be constrained to 331 (+89/-54) to 287 ± 6 ka, or 297-281 ka if the KLT and Lammertal faults were reactivated simultaneously. The younger event occurred between 130 and 90 ka, aligning with fault reactivations in the eastern Alps.</p> <p>Cave observations allowed us to analyze reverse faults in the positive flower structure of the KLT and mode I fracture with minor antithetic dextral slip, suggesting a sinistral component of regional rejuvenation. Our findings indicate that the KLT was reactivated due to simple shear with NNE compression. Along the Lammertal fault, we recorded a strike-slip regime driven by NNW compression. The KLT and Lammertal faults form a system of conjugated shears that efficiently accommodate N-S shortening compared to the SEMP fault, which is perpendicular to the compression. Combining our neotectonic data with current seismicity shows that the KLT plays a key role in the Quaternary extrusion process in the studied Alpine sector, surpassing the more prominent SEMP fault.</p> <p><strong>In this dataset, we make available:</strong></p> <p>iPhone13Pro LiDAR scan of the two cave passage offsets: one in the Dependance cave and Gamssteig cave</p> <p>PDF file with dated sample location and description</p> <p> </p> <p>Published in:</p> <p><strong>Szczygieł, J., Plan, L., Hellstrom, J., & Grasemann, B. (2024). Hidden Faults : The Late Pleistocene Transpression of the Königs- see – Lammertal – Traunsee Fault Inferred from Caves Deformation ( Eastern Alps ). Lithosphere, (Number Special 15), lithosphere_2024_177, 14. https://doi.org/10.2113/2024/lithosphere</strong></p> <p><strong>This research was founded by the NCN Polish National Science Center [grant No 2020/39/D/ST10/00615]</strong></p>
Figure 5 from: Pieńkowska JR, Manganelli G, Giusti F, Barbato D, Hallgass A, Lesicki A (2019) Exploration of phylogeography of Monacha cantiana s.l. continues: the populations of the Apuan Alps (NW Tuscany, Italy) (Eupulmonata, Stylommatophora, Hygromiidae). ZooKeys 814: 115-149. https://doi.org/10.3897/zookeys.814.31583
Figure 5 Haplotype network for 16SrDNA of Monachacantiana s.l. Other explanations as in Figure 4.
Figure 1 from: Dányi L, Balázs G, Tuf IH (2019) Taxonomic status and behavioural documentation of the troglobiont Lithobius matulici (Myriapoda, Chilopoda) from the Dinaric Alps: Are there semiaquatic centipedes in caves? ZooKeys 848: 1-20. https://doi.org/10.3897/zookeys.848.33084
Figure 1 Occurrences of blind Lithobius species in the South Dinaric Alps.
Figures 6-8 from: Schmid J, Huemer P (2021) Unraveling a complex problem: Dichrorampha velata sp. nov., a new species from the Alps hitherto confounded with D. alpestrana ([Zeller], 1843) sp. rev. = D. montanana (Duponchel, 1843) syn. nov. (Lepidoptera, Tortricidae). Alpine Entomology 5: 37-54. https://doi.org/10.3897/alpento.5.67498
Figures 6-8 Dichrorampha montanana (Duponchel), lectotype, labels and male genitalia.
Figure 10 from: Schmid J, Huemer P (2021) Unraveling a complex problem: Dichrorampha velata sp. nov., a new species from the Alps hitherto confounded with D. alpestrana ([Zeller], 1843) sp. rev. = D. montanana (Duponchel, 1843) syn. nov. (Lepidoptera, Tortricidae). Alpine Entomology 5: 37-54. https://doi.org/10.3897/alpento.5.67498
Figure 10 Dichrorampha velata sp. nov., holotype, male genitalia.
Figures 32-37 from: Schmid J, Huemer P (2021) Unraveling a complex problem: Dichrorampha velata sp. nov., a new species from the Alps hitherto confounded with D. alpestrana ([Zeller], 1843) sp. rev. = D. montanana (Duponchel, 1843) syn. nov. (Lepidoptera, Tortricidae). Alpine Entomology 5: 37-54. https://doi.org/10.3897/alpento.5.67498
Figures 32-37 Dichrorampha alpestrana, male genitalia, variation in phallus; all: CH-La Punt GR
Figure 47 from: Schmid J, Huemer P (2021) Unraveling a complex problem: Dichrorampha velata sp. nov., a new species from the Alps hitherto confounded with D. alpestrana ([Zeller], 1843) sp. rev. = D. montanana (Duponchel, 1843) syn. nov. (Lepidoptera, Tortricidae). Alpine Entomology 5: 37-54. https://doi.org/10.3897/alpento.5.67498
Figure 47 Dichrorampha velata sp. nov., female paratype, CH-Pigniu GR.
Figure 48 from: Schmid J, Huemer P (2021) Unraveling a complex problem: Dichrorampha velata sp. nov., a new species from the Alps hitherto confounded with D. alpestrana ([Zeller], 1843) sp. rev. = D. montanana (Duponchel, 1843) syn. nov. (Lepidoptera, Tortricidae). Alpine Entomology 5: 37-54. https://doi.org/10.3897/alpento.5.67498
Figure 48 Dichrorampha velata sp. nov. paratype, female genitalia,, CH-Cormoret BE, leg. Bryner.
Figure 9 from: Schmid J, Huemer P (2021) Unraveling a complex problem: Dichrorampha velata sp. nov., a new species from the Alps hitherto confounded with D. alpestrana ([Zeller], 1843) sp. rev. = D. montanana (Duponchel, 1843) syn. nov. (Lepidoptera, Tortricidae). Alpine Entomology 5: 37-54. https://doi.org/10.3897/alpento.5.67498
Figure 9 Dichrorampha velata sp. nov., holotype, adult.
Figure 4 from: Harry I, Drees C, Hofer H, Assmann T (2011) When to sample in an inaccessible landscape: a case study with carabids from the Allgäu (northern Alps) (Coleoptera, Carabidae). ZooKeys 100: 255-271. https://doi.org/10.3897/zookeys.100.1531
Figure 4 - Sample-based rarefaction curves. Numbers refer to the different sampling periods.
Figure 1 from: Harry I, Drees C, Hofer H, Assmann T (2011) When to sample in an inaccessible landscape: a case study with carabids from the Allgäu (northern Alps) (Coleoptera, Carabidae). ZooKeys 100: 255-271. https://doi.org/10.3897/zookeys.100.1531
Figure 1 - The study area "Alpe Einödsberg". Position of some sampling sites is indicated.
Figure 11 from: Huemer P, Lopez-Vaamonde C, Triberti P (2016) A new genus and species of leaf-mining moth from the French Alps, Mercantouria neli gen. n., sp. n. (Lepidoptera, Gracillariidae). ZooKeys 586: 145-162. https://doi.org/10.3897/zookeys.586.8375
Figure 11 - Type locality of Mercantouria neli sp. n. near Col de la Cayolle.
Fig. 1 in Calamagrostis lonana (Poaceae): a new grass species from the Pennine Alps (Switzerland)
Fig. 1. – Type locality of Calamagrostis lonana Eggenb. & Leibundg. [Base map © swisstopo]
Cathédrale Notre-Dame d'Embrun - Hautes-Alpes
Porche de la cathédrale Notre-Dame d'Embrun. 108 photographies  Source: Objaverse 1.0 / Sketchfab
Caries Risk Assessment in Children and Adolescents in the Alpes Maritimes (France)
ClinicalTrials.gov study NCT01372436. IPD Sharing: Not stated. Countries: 1. Publications: 0.
Early Diagnosis of Primary Biliary Cholangitis (PBC) in Patients With Positive Anti-Mitochondrial Antibodies (AMA) and Normal Alkaline Phosphatase (ALP)
ClinicalTrials.gov study NCT07205874. IPD Sharing: UNDECIDED. Countries: 1. Publications: 0.
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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.