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1,723 results for “Alpine”
Abb 9 from: Kopp A, Brägger H (2017) Sieben Erstfunde und eine Bestätigung alter Nachweise für die Schmetterlingsfauna der Schweiz (Lepidoptera: Elachistidae, Gelechiidae, Tortricidae, Pyralidae). Alpine Entomology 1: 109-113. https://doi.org/10.3897/alpento.1.22024
Abb 9 - Aplota nigricans (Foto A. Kopp).
Abb 2 from: Kopp A, Brägger H (2017) Sieben Erstfunde und eine Bestätigung alter Nachweise für die Schmetterlingsfauna der Schweiz (Lepidoptera: Elachistidae, Gelechiidae, Tortricidae, Pyralidae). Alpine Entomology 1: 109-113. https://doi.org/10.3897/alpento.1.22024
Abb 2 - Elachista hedemanni GP 7.100 (Foto A. Kopp).
Abb 6 from: Kopp A, Brägger H (2017) Sieben Erstfunde und eine Bestätigung alter Nachweise für die Schmetterlingsfauna der Schweiz (Lepidoptera: Elachistidae, Gelechiidae, Tortricidae, Pyralidae). Alpine Entomology 1: 109-113. https://doi.org/10.3897/alpento.1.22024
Abb 6 - Cydia ilipulana (Foto R. Bryner).
Abb 5 from: Kopp A, Brägger H (2017) Sieben Erstfunde und eine Bestätigung alter Nachweise für die Schmetterlingsfauna der Schweiz (Lepidoptera: Elachistidae, Gelechiidae, Tortricidae, Pyralidae). Alpine Entomology 1: 109-113. https://doi.org/10.3897/alpento.1.22024
Abb 5 - Pelochrista huebneriana (Foto A. Kopp).
Abb 1 from: Kopp A, Brägger H (2017) Sieben Erstfunde und eine Bestätigung alter Nachweise für die Schmetterlingsfauna der Schweiz (Lepidoptera: Elachistidae, Gelechiidae, Tortricidae, Pyralidae). Alpine Entomology 1: 109-113. https://doi.org/10.3897/alpento.1.22024
Abb 1 - Elachista hedemanni (Foto A. Kopp).
Figure 1 from: Della Chiesa S, Vianello A, Tritini S, Piva A (2021) AlpConv Atlas: The Geospatial Content Management System of the Alpine Convention. Research Ideas and Outcomes 7: e66106. https://doi.org/10.3897/rio.7.e66106
Figure 1 Homepage of the Alpine Convention Atlas.
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 3 from: Vuataz L, Stucki P, Fauquet L, Bernard R (2021) Rediscovery of Stactobia eatoniella McLachlan, 1880 (Trichoptera, Hydroptilidae) in Switzerland after more than seventy years. Alpine Entomology 5: 55-60. https://doi.org/10.3897/alpento.5.67985
Figure 3 View (upstream) of the sampling site on 13.10.2020.
Figure 2 from: Vuataz L, Stucki P, Fauquet L, Bernard R (2021) Rediscovery of Stactobia eatoniella McLachlan, 1880 (Trichoptera, Hydroptilidae) in Switzerland after more than seventy years. Alpine Entomology 5: 55-60. https://doi.org/10.3897/alpento.5.67985
Figure 2 View (downstream) of the sampling site on 18.03.2020.
Plant litter influences the temporal stability of plant community biomass in an alpine meadow by altering the stability and asynchrony of plant functional groups
<p>The stability of a plant community is defined as its ability to resist and be resilient to changes. Plant community stability can be driven by a range of external perturbations as well as by plant community traits. Plant litter traits (species or mass) are widely recognized drivers for plant community composition and diversity changes in grasslands. Yet, the effects of litter traits on the temporal stability of plant communities in natural grasslands are largely unknown. </p> <p>In this study, a field experiment was conducted at an alpine meadow on the Qinghai Tibetan Plateau to quantify the effects of litter from <i>Elymus nutans</i>, <i>Kobresia setchwanensis</i> and <i>Ligularia virgaurea</i> on the temporal stability of plant community biomass at five different mass levels (0, 100, 200, 400 and 600 g m<sup>−2</sup>). The experiment was conducted over the period from the pre-growth to peak–growth stage between 2017 and 2019, during which temporal stability of plant community biomass was assessed in relation to plant community characteristics.</p> <p>The effects of litter on temporal stability of plant community biomass were mainly driven by the litter mass rather than the litter species. A hump-shaped relationship between litter mass and temporal stability of plant community biomass was found, with the highest stability under intermediate litter mass treatment (200 g m<sup>−2</sup>). A structural equation model identified this response was driven by the indirect effects of litter mass on the temporal stability of the biomass of the dominant (forbs) and subdominant (grasses) functional groups in the community and the asynchrony of plant functional groups.</p> <p>The results of this study demonstrate that plant litter traits are important drivers for maintaining plant community stability in natural grasslands, highlighting the importance of grassland management decisions (e.g., grazing intensity) relating to the quantity and quality of litter accumulation. </p>
Figure 3 from: Gobbi M, Priore C, Tattoni C, Lencioni V (2012) Surprising longhorned beetle (Coleoptera, Cerambycidae) richness along an Italian alpine valley. ZooKeys 208: 27-39. https://doi.org/10.3897/zookeys.208.3193
Figure 3 - Dendrogram drawn on the base of the Jaccard similarities between the sites.
Figure 2 from: Gobbi M, Priore C, Tattoni C, Lencioni V (2012) Surprising longhorned beetle (Coleoptera, Cerambycidae) richness along an Italian alpine valley. ZooKeys 208: 27-39. https://doi.org/10.3897/zookeys.208.3193
Figure 2 - Relationship between the species richness (S) and the altitudinal gradient.
Figure 1 from: Gobbi M, Priore C, Tattoni C, Lencioni V (2012) Surprising longhorned beetle (Coleoptera, Cerambycidae) richness along an Italian alpine valley. ZooKeys 208: 27-39. https://doi.org/10.3897/zookeys.208.3193
Figure 1 - Accumulation curve on the number of species observed during the surveys.
Particle Number Size Distribution of Wintertime Alpine Aerosols and Their Activation as Cloud Condensation Nuclei in the Guanzhong Plain, Northwest China
<p>This is the drawing data of manuscript entitled 'Characteristics of Particle Number Size Distribution of Alpine Aerosols on Mt. Hua and Their Activation as Cloud Condensation Nuclei.</p>
Abbildung 10 from: Bryner R, Huemer P (2019) Revision der Nematopogon adansoniella-Artengruppe mit Beschreibung einer neuen Art aus den Bergregionen Süditaliens (Lepidoptera, Adelidae). Alpine Entomology 3: 93-104. https://doi.org/10.3897/alpento.3.33651
Abbildung 10 Phallus. Nematopogonadansoniella, N.prolai und N.garganellus.
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.