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4,243 results for “seasonality”

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Supplementary material 2 from: Bieberich J, Feldhaar H, Lauerer M (2020) Micro-habitat and season dependent impact of the invasive Impatiens glandulifera on native vegetation. NeoBiota 57: 109-131. https://doi.org/10.3897/neobiota.57.51331

Maximum vegetation height in summer and spring

opencc-zeroJun 2020View details →
zenodo28/100

Supplementary material 10 from: Bieberich J, Feldhaar H, Lauerer M (2020) Micro-habitat and season dependent impact of the invasive Impatiens glandulifera on native vegetation. NeoBiota 57: 109-131. https://doi.org/10.3897/neobiota.57.51331

Dataset environment and vegetation characteristics

opencc-zeroJun 2020View details →
zenodo28/100

Supplementary material 6 from: Bieberich J, Feldhaar H, Lauerer M (2020) Micro-habitat and season dependent impact of the invasive Impatiens glandulifera on native vegetation. NeoBiota 57: 109-131. https://doi.org/10.3897/neobiota.57.51331

Figure S2. Micro-habitat specific impact of I. glandulifera on the resident vegetation

opencc-zeroJun 2020View details →
zenodo28/100

Supplementary material 9 from: Bieberich J, Feldhaar H, Lauerer M (2020) Micro-habitat and season dependent impact of the invasive Impatiens glandulifera on native vegetation. NeoBiota 57: 109-131. https://doi.org/10.3897/neobiota.57.51331

Dataset plant cover

opencc-zeroJun 2020View details →
zenodo28/100

Supplementary material 1 from: Bieberich J, Feldhaar H, Lauerer M (2020) Micro-habitat and season dependent impact of the invasive Impatiens glandulifera on native vegetation. NeoBiota 57: 109-131. https://doi.org/10.3897/neobiota.57.51331

Year-to-year changes in cover of Impatiens glandulifera

opencc-zeroJun 2020View details →
zenodo28/100

Supplementary material 8 from: Bieberich J, Feldhaar H, Lauerer M (2020) Micro-habitat and season dependent impact of the invasive Impatiens glandulifera on native vegetation. NeoBiota 57: 109-131. https://doi.org/10.3897/neobiota.57.51331

Additional information: information on the published datasets

opencc-zeroJun 2020View details →
dryad28/100

Data from: Seasonal dietary shifts enhance parasite transmission to lake salmonids during ice cover

Changes in abiotic and biotic factors between seasons in subarctic lake systems are often profound, potentially affecting the community structure and population dynamics of parasites over the annual cycle. However, few winter studies exist and interactions between fish hosts and their parasites are typically confined to snapshot studies restricted to the summer season whereas host-parasite dynamics during the ice-covered period rarely have been explored. The present study addresses seasonal patterns in the infections of intestinal parasites and their association with the diet of sympatric living Arctic charr (Salvelinus alpinus) and brown trout (Salmo trutta) in Lake Takvatn, a subarctic lake in northern Norway. In total, 354 Arctic charr and 203 brown trout were sampled from the littoral habitat between June 2017 and May 2018. Six trophically transmitted intestinal parasite taxa were identified and quantified, and their seasonal variations were contrasted with dietary information from both stomachs and intestines of the fish. The winter period proved to be an important transmission window for parasites, with increased prevalence and intensity of amphipod-transmitted parasites in Arctic charr and parasites transmitted through piscivory in brown trout. In Arctic charr, seasonal patterns in parasite infections resulted mainly from temporal changes in diet towards amphipods, whereas host body size and the utilization of fish prey were the main drivers in brown trout. The overall dynamics in the community structure of parasites chiefly mirrored the seasonal dietary shifts of their fish hosts.

opencc-zeroJul 2020View details →
zenodo28/100

Multivariate hazard assessment for nonstationary seasonal flood extremes considering climate change

<p>Processed streamflow data used to create the plots shown in the paper (&quot;Multivariate hazard assessment for nonstationary seasonal flood extremes considering climate change&quot; published on JGR_A) for reproducibility</p>

opencc-by-4.0Aug 2020View details →
zenodo28/100

Figure 7 in Seasonal changes in the population structure of dominant planktonic copepods collected using a sediment trap moored in the western Arctic Ocean

Figure 7. Seasonal changes in the flux of adult females, lipid accumulation (upper panels) and gonad maturation (lower panels) composition (stage I−III) of C6F (a, d) Calanus hyperboreus; (b, e) Metridia longa; and (c, f) Paraeuchaeta glacialis.

opencc-by-4.0Jun 2015View details →
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Figure 4 in Seasonal changes in the population structure of dominant planktonic copepods collected using a sediment trap moored in the western Arctic Ocean

Figure 4. Seasonal changes in the copepod flux and species composition at St. NAPt from October 2010 to September 2012.

opencc-by-4.0Jun 2015View details →
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Figure 6 in Seasonal changes in the population structure of dominant planktonic copepods collected using a sediment trap moored in the western Arctic Ocean

Figure 6. Seasonal changes in the flux and copepodid stage composition of the four large calanoid copepods: (a) Calanus hyperboreus; (b) Metridia longa; (c) Paraeuchaeta glacialis; and (d) Heterorhabdus norvegicus.

opencc-by-4.0Jun 2015View details →
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Figure 2 in Seasonal changes in the population structure of dominant planktonic copepods collected using a sediment trap moored in the western Arctic Ocean

Figure 2. Seasonal changes in depth (a) and temperature (b) of the sediment trap at St. NAPt from October 2010 to September 2012. The current velocity at 188 and 275 m at St. NAPt (c) was estimated by a physical ocean general circulation model.

opencc-by-4.0Jun 2015View details →
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Figure 1 in Seasonal changes in the population structure of dominant planktonic copepods collected using a sediment trap moored in the western Arctic Ocean

Figure 1. The location of St. NAPt (Northwind Abyssal Plain) in the western Arctic Ocean where the sediment trap was moored at a depth of approximately 184–260 m from October 2010 to September 2012.

opencc-by-4.0Jun 2015View details →
zenodo28/100

Figure 5 in Seasonal changes in the population structure of dominant planktonic copepods collected using a sediment trap moored in the western Arctic Ocean

Figure 5. (a) Seasonal changes in the flux and copepodid stage composition of the dominant copepod Oncaea parila (Poecilostomatoida). *C6F with egg sacs occurred. (b) The relationship between O. parila flux and the total mass flux. A positive relationship was detected in 2010–2011 (first year).

opencc-by-4.0Jun 2015View details →
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Figure 5 in Demographic characteristics, seasonal range and habitat topography of Balkan chamois population in its southernmost limit of its distribution (Giona mountain, Greece)

Figure 5. Used elevation, inclination (violin plots) and aspect (histogram) of the Balkan chamois in Giona Mt. Black lines in the violin plots indicate 95% probability of occurrence in terms of Fixed Kernel Density Estimator and white dots indicate median values.

opencc-by-4.0Jan 2014View details →
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Figure 4. Seasonal range generated from a in Demographic characteristics, seasonal range and habitat topography of Balkan chamois population in its southernmost limit of its distribution (Giona mountain, Greece)

Figure 4. Seasonal range generated from a Fixed Kernel Density Estimator (FKDE) (95% probability) and respective core areas of Balkan chamois in Giona Mt for (A) winter, (B) spring, (C) summer and (D) autumn. In the upper right corner the diagram presents the delineation of the probability of species occurrence within the core area.

opencc-by-4.0Jan 2014View details →
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Figure 3 in Demographic characteristics, seasonal range and habitat topography of Balkan chamois population in its southernmost limit of its distribution (Giona mountain, Greece)

Figure 3. Annual range and core area of Balkan chamois in the study area, and overlap with the Natura 2000 site in Giona Mt.

opencc-by-4.0Jan 2014View details →
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Figure 1 in Demographic characteristics, seasonal range and habitat topography of Balkan chamois population in its southernmost limit of its distribution (Giona mountain, Greece)

Figure 1. Balkan chamois distribution in Greece, modified from Papaioannou and Kati 2007 (see Appendix 1).

opencc-by-4.0Jan 2014View details →
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Figure 2 from: Haevermans T, Mantuano D, Zhou M-Y, Lamxay V, Haevermans A, Blanc P, Li D-Z (2020) Discovery of the first succulent bamboo (Poaceae, Bambusoideae) in a new genus from Laos' karst areas, with a unique adaptation to seasonal drought. PhytoKeys 156: 125-137. https://doi.org/10.3897/phytokeys.156.51636

Figure 2 Transverse sections of leaf and culm of Laobambos calcareus. A Transverse section of a mature foliage leaf B mesophyll showing chlorenchyma with arm cells, fusoid cells and abaxial epidermis with papillae and trichomes C culm transverse section showing a medullary region (left side) with typical vascular bundles and cavities (asterisk) and a cortical region (right side) with isolated fiber bundles (arrow) D central vascular bundle in detail E cortical region in detail. Scale bars: 100 µm (A, D, E); 10 µm (B); 200 µm (C). (Photo credit Dulce Mantuano).

opencc-by-4.0Aug 2020View details →
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Figure 3 from: Haevermans T, Mantuano D, Zhou M-Y, Lamxay V, Haevermans A, Blanc P, Li D-Z (2020) Discovery of the first succulent bamboo (Poaceae, Bambusoideae) in a new genus from Laos' karst areas, with a unique adaptation to seasonal drought. PhytoKeys 156: 125-137. https://doi.org/10.3897/phytokeys.156.51636

Figure 3 Laobambos calcareus. A Plant in habitat, growing in karst crevices typically along with Euphorbia antiquorum L. and Dracaena cochinchinensis (Lour.) S.C.Chen B leaf complement C plant in dormant state, rhizome leaves removed to show the structure D rhizome with year+1 shoot cross-section, and young shoots E petiole insertion with inner and outer ligules (view from below) F culm sheath, ventral view. Scale bars: 1 m (A); 2 cm (B); 5 cm (C, D); 2 mm (E); 1 cm (F). (Illustration credit Agathe Haevermans).

opencc-by-4.0Aug 2020View details →

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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.

allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

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.

abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

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.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record