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1,604 results for “Wintering”

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zenodo28/100

Supplementary material for "Habitat preferences of the Ortolan bunting (Emberiza hortulana) in its prime wintering grounds, the cereal-dominated Ethiopian Highlands"

<p><strong>Abstract</strong></p> <p>Agricultural intensification and land-use changes are major factors impacting farmland biodiversity<strong>.&nbsp;</strong>The Ortolan Bunting&nbsp;<em>Emberiza hortulana</em>&nbsp;is the long-distance trans-Saharan migratory passerine that has undergone the most dramatic decline among all European farmland birds. Factors responsible for this decline may originate from the breeding grounds, migration stopovers and/or overwintering quarters. Very little is known about conditions on winter grounds, but a recent study has highlighted the utmost importance of the traditionally-managed agroecosystems in the Ethiopian Highlands as a key wintering area, apparently harbouring as much as 90% of the Ortolan Bunting&rsquo;s world population. Using radiotracking and line transect surveys, this study aimed to provide fine-grained information about species-habitat relationships in the Ortolan Bunting&rsquo;s overwintering quarters. Our results showed the importance, at the landscape scale, of small-scale agriculture, notably of traditionally-managed, cereal-dominated fields interspersed with semi-natural structures. At a foraging-site scale, on the other hand, patches of bare ground in combination with high amounts of post-harvesting stubble represented key habitat features. Stubbles provide an essential food resource, whereas bare ground promotes ground foraging by enhancing food accessibility. The maintenance of a traditional agricultural economy will be essential to maintain the habitat potential for the Ortolan Buntings overwintering in the Ethiopian Highlands, and will be instrumental in preserving its world population from further decline.</p>

opencc-by-nc-4.0Jun 2021View details →
zenodo28/100

Dataset for the paper: Factors influencing sea-ice algae abundance, community composition, and distribution in the marginal ice zone of the Southern Ocean during winter.

<p>Dataset for the paper: Factors influencing sea-ice algae abundance, community composition, and distribution in the marginal ice zone of the Southern Ocean during winter.&nbsp;</p> <p>&nbsp;</p>

opencc-by-4.0Aug 2021View details →
dryad28/100

Wintering shorebird abundance on Tomales Bay, Marin County, California, USA, 1989-2018

<p>Contains data on abundance of shorebirds on Tomales Bay, Marin County, CA, USA from Nov 1989 through Feb 2019. Data were collected as part of an ongoing, long-term monitoring project. Surveys covered all appropriate shorebird habitat on Tomales Bay, and counted all individual shorebirds in those areas.</p>

opencc-zeroSep 2021View details →
zenodo28/100

Intercomparison of Middle Atmospheric Meteorological Analyses for the Northern Hemisphere Winter 2009-2010

<p>Model output required to reproduce figures in McCormack et al. (2021) ACP</p>

opencc-by-4.0Oct 2021View details →
zenodo28/100

Figure 2 from: Jaskula R, Soszyńska-Maj A (2011) What do we know about winter active ground beetles (Coleoptera, Carabidae) in Central and Northern Europe? ZooKeys 100: 517-532. https://doi.org/10.3897/zookeys.100.1543

Figure 2 - The relative zoogeographical structure of winter active Carabidae (based on Leśniak 1988).

opencc-by-4.0May 2011View details →
zenodo28/100

Figure 1 from: Jaskula R, Soszyńska-Maj A (2011) What do we know about winter active ground beetles (Coleoptera, Carabidae) in Central and Northern Europe? ZooKeys 100: 517-532. https://doi.org/10.3897/zookeys.100.1543

Figure 1 - Comparision of subnivean, supranivean and tree trunk fauna of Carabidae from Central and Northern Europe during the winter season (based on different sources).

opencc-by-4.0May 2011View details →
zenodo28/100

Figure 5 from: Jochum A, de Winter AJ, Weigand AM, Gómez B, Prieto C (2015) Two new species of Zospeum Bourguignat, 1856 from the Basque-Cantabrian Mountains, Northern Spain (Eupulmonata, Ellobioidea, Carychiidae). ZooKeys 483: 81-96. https://doi.org/10.3897/zookeys.483.9167

Figure 5 - Zospeum vasconicum sp. n., Shells from Cueva de Otxas (A–F RMNH.5003916); and Cueva del Cranéo (G–I UPV/EHU-FC: 556). B–C different views of A; F, H shells with window cut in body whorl exposing columella. Scale bar 0.5 mm.

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

Figure 8 from: Jochum A, de Winter AJ, Weigand AM, Gómez B, Prieto C (2015) Two new species of Zospeum Bourguignat, 1856 from the Basque-Cantabrian Mountains, Northern Spain (Eupulmonata, Ellobioidea, Carychiidae). ZooKeys 483: 81-96. https://doi.org/10.3897/zookeys.483.9167

Figure 8 - Habitat of Zospeum species. A–B Moist muddy layer with Zospeum vasconicum sp. n. in Cueva Arrikrutz; Prov. Gipuzkoa, Natural Park of Aizkorri-Araotz, Oñate C Muddy sediment matrix of Zospeum zaldivarae sp. n. habitat in Cueva de Las Paúles (locus typicus) with congener (Zospeum suarezi) in view.

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

Figure 2 from: Jochum A, de Winter AJ, Weigand AM, Gómez B, Prieto C (2015) Two new species of Zospeum Bourguignat, 1856 from the Basque-Cantabrian Mountains, Northern Spain (Eupulmonata, Ellobioidea, Carychiidae). ZooKeys 483: 81-96. https://doi.org/10.3897/zookeys.483.9167

Figure 2 - Map indicating geographic position of massifs and caves with Zospeum species. Dot in Triangle, Zospeum zaldivarae sp. n.: Cueva de Las Paúles (locus typicus); Dot in circle, Zospeum vasconicum sp. n.: Cueva de la Ermita de Sandaili (locus typicus); Simple orange circles, Zospeum vasconicum sp. n. localities: Cueva de Otxas; Cueva Silibranka-2; Cueva del Cranéo.

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

Figure 1 from: Jochum A, de Winter AJ, Weigand AM, Gómez B, Prieto C (2015) Two new species of Zospeum Bourguignat, 1856 from the Basque-Cantabrian Mountains, Northern Spain (Eupulmonata, Ellobioidea, Carychiidae). ZooKeys 483: 81-96. https://doi.org/10.3897/zookeys.483.9167

Figure 1 - Measurement on Zospeum shells in frontal view. Abbreviations: HLW height of last whorl PH peristome height PD peristome diameter SA spire angle SD shell diameter SH shell height.

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

Figure 4 from: Jochum A, de Winter AJ, Weigand AM, Gómez B, Prieto C (2015) Two new species of Zospeum Bourguignat, 1856 from the Basque-Cantabrian Mountains, Northern Spain (Eupulmonata, Ellobioidea, Carychiidae). ZooKeys 483: 81-96. https://doi.org/10.3897/zookeys.483.9167

Figure 4 - Zospeum vasconicum sp. n., A, F–I shells from Cueva Silibranka-2 in frontal view (RMNH.5003915) B–E different views of specimen A; H shell with window cut in body whorl exposing columella. Scale bar 0.5 mm.

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

Figure 7 from: Jochum A, de Winter AJ, Weigand AM, Gómez B, Prieto C (2015) Two new species of Zospeum Bourguignat, 1856 from the Basque-Cantabrian Mountains, Northern Spain (Eupulmonata, Ellobioidea, Carychiidae). ZooKeys 483: 81-96. https://doi.org/10.3897/zookeys.483.9167

Figure 7 - Zospeum zaldivarae sp. n., A–F different views of edentate paratype shell (RMNH.234152) D aperture in oblique view G paratype shell (UPV/EHU-FC: 72) with window in body whorl exposing columella.

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

Figure 3 from: Jochum A, de Winter AJ, Weigand AM, Gómez B, Prieto C (2015) Two new species of Zospeum Bourguignat, 1856 from the Basque-Cantabrian Mountains, Northern Spain (Eupulmonata, Ellobioidea, Carychiidae). ZooKeys 483: 81-96. https://doi.org/10.3897/zookeys.483.9167

Figure 3 - Zospeum vasconicum sp. n., A–E different views of holotype (MNCN 15.05/60147H) F–I paratype shells (MNCN 15.05/60147P) H paratype shell with window cut in body whorl exposing columella. Scale bar 0.5 mm.

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

Figure 6 from: Jochum A, de Winter AJ, Weigand AM, Gómez B, Prieto C (2015) Two new species of Zospeum Bourguignat, 1856 from the Basque-Cantabrian Mountains, Northern Spain (Eupulmonata, Ellobioidea, Carychiidae). ZooKeys 483: 81-96. https://doi.org/10.3897/zookeys.483.9167

Figure 6 - Zospeum zaldivarae sp. n., A, E–F different views of holotype shell (MNCN 15.05/60148H) D aperture in slightly oblique view showing apertural barriers.

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

Dataset of Ogranic aicd in 2018 and winter 2009 over a megacity in south China

<p>&nbsp;Dataset of Ogranic aicd in 2018 and winter 2009 over a megacity in south China</p>

opencc-by-4.0Nov 2022View details →
zenodo28/100

Supplementary material 1 from: Ogorelec Ž, Brinker A, Straile D (2022) Small but voracious: invasive generalist consumes more zooplankton in winter than native planktivore. NeoBiota 78: 71-97. https://doi.org/10.3897/neobiota.78.86788

Supplementary data

opencc-zeroNov 2022View details →
zenodo28/100

Fig. 1 in Winter Distribution And Migratory Strategies Of Eurasian Spoonbills (Platalea Leucorodia) From The Pannonian Breeding Population: Are They Long-Distance Migrants?

Fig. 1. Winter distribution of the Hungarian Spoonbills ringed between 2003 and 2020. The map contains all wintering data collected between the winters of 2003/2004 and 2020/2021. The lines of 'winter shift' indicate the shifts between winters when a resident became a short-distance migrant (shifted from Hungary to Tunisia) and a short-distance migrant became a long-distance migrant (shifted from Morocco to Mauritania). Abbreviations: ind. = individuals; Carpathian B. = Carpathian Basin

opencc-by-4.0Oct 2022View details →
zenodo28/100

Fig. 2 in Winter Distribution And Migratory Strategies Of Eurasian Spoonbills (Platalea Leucorodia) From The Pannonian Breeding Population: Are They Long-Distance Migrants?

Fig. 2. Detailed map on the winter distribution of the Hungarian Spoonbills in the Carpathian Basin and the Central and East Mediterranean areas. Abbreviations: ind. = indi- viduals; Carpathian B. = Carpathian Basin

opencc-by-4.0Oct 2022View details →
zenodo28/100

Forgoing the Summer Triangle as it sets in the early winter evening

<p>Winner in the 2022 IAU OAE Astrophotography Contest, category Still images of celestial patterns.</p> <p>&nbsp;</p> <p>This image was taken from Nagano, Japan, in December 2018, and shows three prominent constellations: Aquila (towards the lower-left of the image), Cygnus (in the upper part of the image) and Lyra (bottom-right). The brightest stars within these constellations (Altair, Deneb and Vega) form the three vertices of the asterism known as the Summer Triangle. The star Altair is the brightest star towards the bottom-left of the image, Deneb is the brightest star towards the top-right of the image, and Vega is the brightest star towards the bottom-right of the image.</p> <p>In Asian cultures the stars Vega and Altair represent a love story between the weaver girl and the herdsman, who are separated by the faint band of the Milky Way, but in July are allowed to cross the heavenly river (the Milky Way) to be together.</p> <p>The Boorong people of Northeast Victoria, Australia, associate the reappearance of Vega &mdash; after its yearly disappearance from view &mdash; with the time when the Mallee fowls build nests. The Boorong also associate their indigenous constellation Neilloan with the goddess Mallee-hen (Vega), mother of Totyarguil (Altair), the hero who created the Murray River. In Wardaman traditions, the star Vega acts as a gateway to the Milky Way for spirits of the deceased.</p> <p>The star name Altair is abbreviated from the Arabic &ldquo;Al-Nasr Al-Ta&rsquo;ir&rdquo; (meaning &ldquo;The Flying Eagle&rdquo;) proving that the constellation of the Eagle (Aquila) is one of the most stable ones in history. Originating from the Babylonian epoch (carrying a king towards the sky), it was taken over by the Greeks, Romans, and Arabs. The star name Deneb comes from the Arabic word &ldquo;dhanab&rdquo;, meaning &ldquo;tail&rdquo;, and refers to the Greek constellation of The Bird that is interpreted in the Roman tradition as a Swan (Cygnus), and as a Hen in the Arabic world. The third star name, Vega, comes from the Arabic &ldquo;Al-Nasr Al-Waqi&rdquo;, meaning &ldquo;The Swooping Eagle&#39;&#39;, because the indigenous (pre-Islamic) Arabic culture had a second eagle in the area of the Greek constellation Lyra. In the Early Modern Age, some Christian astronomers, inspired by the Arabic tradition, depicted this constellation as an eagle or vulture holding a lyre.</p> <p>The image also shows a range of other constellations, including Delphinus, Sagitta, and Vulpecula. According to Greek mythology, Sagitta, The Arrow, carried the god of light and the goddess of fertility. In winter they set in the evening but in spring they rise again in the east, and are present for longer and longer in order to make the land fruitful and agriculture successful.</p> <p>Credit:&nbsp;Kouij&nbsp;Ohnishi/IAU OAO&nbsp;(<a href="https://creativecommons.org/licenses/by/4.0/legalcode">CC BY&nbsp;4.0</a>)</p>

opencc-by-4.0Dec 2022View details →
zenodo28/100

Supplementary material 1 from: Wang D, Hu X, Li M, Liu J, Tang M, Liu W, Zhan J, Xu Y, Zhang W (2023) Diet composition and interspecific niche of Taohongling Sika deer (Cervus nippon kopschi) and its sympatric Reeve's muntjac (Muntiacus reevesi) and Chinese hare (Lepus sinensis) in winter (Animalia, Mammalia). ZooKeys 1149: 17-36. https://doi.org/10.3897/zookeys.1149.96936

Dietary of Sika deer, Reeves՚ muntjac and Chinese hare

opencc-zeroFeb 2023View details →

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dandi-nwb
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Last verified 2026-04-30Open record

International Brain Laboratory public data

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Last verified 2026-04-29Open record

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Last verified 2026-04-29Open record