Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
6,170
datasets available to search
ShareScore release 0.9.0
Dataset results
6,170 results for “european”
Distribution. NW Romania, Moldova, Ukraine, C & S European Russia, SE Bulgaria, E Greece, Turkey, Georgia, Armenia, Azerbaijan, Lebanon, Israel, E Syria, Jordan, N Iraq, Iran, Kazakhstan, SW Siberia (Omsk Region), Uzbekistan, Turkmenistan, Kyrgyzstan, Tajikistan, Afghanistan, Pakistan, NW India (Jammu and Kashmir), N China (Xinjiang, Qinghai, Gansu, Inner Mongolia [= Nei Mongol], and Ningxia), and Mongolia. in Cricetidae
Distribution. NW Romania, Moldova, Ukraine, C & S European Russia, SE Bulgaria, E Greece, Turkey, Georgia, Armenia, Azerbaijan, Lebanon, Israel, E Syria, Jordan, N Iraq, Iran, Kazakhstan, SW Siberia (Omsk Region), Uzbekistan, Turkmenistan, Kyrgyzstan, Tajikistan, Afghanistan, Pakistan, NW India (Jammu and Kashmir), N China (Xinjiang, Qinghai, Gansu, Inner Mongolia [= Nei Mongol], and Ningxia), and Mongolia.
FIGURE 3 in On the dates of publication of four European species of Scolopendra Linnaeus 1758 described by C. L. Koch (Myriapoda, Chilopoda)
FIGURE 3. Original status of a specimen of Heft 121 (1833) of the Herrich-Schäffer series, illustrating the piceous cardboard slipcase (10.5 X 15 X 1 cm) with the affixed title page (10 X 12 cm), the partially extracted dusky pink wrapper (displaying the register of contents) (10 X 16.3 cm), one example of the more than 24 loose sheets of letterpress, (10 X 16 cm) and one example of the 24 loose plates with an illustration (10 X 13 cm). This example should also help to understand the rarity of the complete work, especially because of the unusual collation of differently sized individual parts, and the storage of all loose items in opentop slipcases. (Credit: P. Nagel)
FIGURE 2 in On the dates of publication of four European species of Scolopendra Linnaeus 1758 described by C. L. Koch (Myriapoda, Chilopoda)
FIGURE 2. The Herrich-Schäffer series, Heft 142, selected pages. A. Title page (Label) [glued on the front of the cardboard slipcase]. B. Outer front wrapper of thick, dusky pink paper. It depicts the register of contents. C. First page of letterpress with the description of Scolopendra italica Koch. The numbering of this page is on top left. The red frame highlights the additional information on the primary publication as part of the "Koch series". D. Second page of letterpress with continuation of the description of S. italica and followed by the section "Anmerkung" (note). The two red arrows point to the descriptions of S. graeca and S. clavipes. Neither of them is found in the "Index". E. Colour lithograph of S. italica, with plate and species number 142. 1. (highlighted and enlarged by the present authors) and a scale bar pointing the actual size of the described Scolopendra (Holding Libraries: Bayerische Staatsbibliothek, München, Germany, Biodiversity Heritage Library (BHL) and Österreichische Nationalbibliothek, Wien, Österreich).
FIGURE 1. The Koch series, Heft 9, selected pages. A in On the dates of publication of four European species of Scolopendra Linnaeus 1758 described by C. L. Koch (Myriapoda, Chilopoda)
FIGURE 1. The Koch series, Heft 9, selected pages. A. Title page (Label) [glued on the front of the cardboard slipcase]. B. Outer front wrapper of thick, dusky pink paper. It depicts the register of contents. C. First page of letterpress with the description of Scolopendra italica Koch. The numbering of this page is on top left, highlighted and enlarged by present authors. D. Second page of letterpress with continuation of the description of S. italica and followed by the section "Anmerkung" (note). The two red arrows point to the descriptions of S. graeca and S. clavipes. E. Colour lithograph of S. italica, with plate and species number 9. 1. (highlighted and enlarged by the present authors) and long vertical scale bar pointing the actual size of the described Scolopendra. (Holding Library: Bayerische Staatsbibliothek, München, Germany)
Data from: North-south differentiation and a region of high diversity in European wolves (Canis lupus)
European wolves (Canis lupus) show population genetic structure in the absence of geographic barriers, and across relatively short distances for this highly mobile species. Additional information on the location of and divergence between population clusters is required, particularly because wolves are currently recolonizing parts of Europe. We evaluated genetic structure in 177 wolves from 11 countries using over 67K single nucleotide polymorphism (SNP) loci. The results supported previous findings of an isolated Italian population with lower genetic diversity than that observed across other areas of Europe. Wolves from the remaining countries were primarily structured in a north-south axis, with Croatia, Bulgaria, and Greece (Dinaric-Balkan) differentiated from northcentral wolves that included individuals from Finland, Latvia, Belarus, Poland and Russia. Carpathian Mountain wolves in central Europe had genotypes intermediate between those identified in northcentral Europe and the Dinaric-Balkan cluster. Overall, individual genotypes from northcentral Europe suggested high levels of admixture. We observed high diversity within Belarus, with wolves from western and northern Belarus representing the two most differentiated groups within northcentral Europe. Our results support the presence of at least three major clusters (Italy, Carpathians, Dinaric-Balkan) in southern and central Europe. Individuals from Croatia also appeared differentiated from wolves in Greece and Bulgaria. Expansion from glacial refugia, adaptation to local environments, and human-related factors such as landscape fragmentation and frequent killing of wolves in some areas may have contributed to the observed patterns. Our findings can help inform conservation management of these apex predators and the ecosystems of which they are part.
The European Arrest Warrant Before the Irish Courts: Datasets covering 2010 - 2020
<p>The below datasets have been published as part of the following paper: <em>Imelda Maher and Rónán Riordan,</em> and Neža Šubic, ‘The European Arrest Warrant Before the Irish Courts: Judicial Dialogue, Mutual Trust, and the Limits of Interpretation’ (2022) Irish Jurist (67) 14 – 54. </p> <p> </p> <p><strong>Excel dataset entitled "IE_EAW_2010_2020_DATASET_SUPERIOR_COURTS" </strong>codes cases before the Irish Superior Courts between 2010-2020. The dataset includes only case law which concerns the European Arrest Warrant Framework Decision ("EAW FD") and cases which implement the relevant domestic legislation underpinning its application within the Irish jurisdiction. </p> <p>The excel file entitled <strong>"IE_EAW_267_PRELIM_REFS_2010_2020"</strong> complies references from Irish Courts to the Court of Justice of the European Union via the preliminary reference procedure under Article 267 of the Treaty on the Functioning of the European Union with regard to the EAW FD. Data was complied using information available on the Court of Justices website "Curia.europa.eu". </p> <p><strong>Notice on dataset use;</strong></p> <p>These datasets are the property of the authors. Where other parties intend to use the dataset as part of their research, acknowledgement must be made as to the source of the dataset and of the original authors as having created the dataset. Contact authors via: imelda.maher@ucd.ie (University College Dublin) and r.riordan@phd.hertie-school.org (Hertie School Berlin).</p>
Distribution. Watersheds of Dnieper, Don, Volga, and Kama rivers, and middle and lower reaches of Ural River in European Russia, E Ukraine, and NW Kazakhstan. Introduced to the upper reaches of Ob River in W Siberia. in Talpidae
Distribution. Watersheds of Dnieper, Don, Volga, and Kama rivers, and middle and lower reaches of Ural River in European Russia, E Ukraine, and NW Kazakhstan. Introduced to the upper reaches of Ob River in W Siberia.
On following pages: 223. Mohave Ground Squirrel (Xerospermophilus mohavensis); 224. Perote Ground Squirrel (Xerospermophilus perotensis); 225. Ring-tailed Ground Squirrel (Notocitellus annulatus); 226. Tropical Ground Squirrel (Notocitellus adocetus); 227. European Ground Squirrel (Spermophilus citellus); 228. Russet Ground Squirrel (Spermophilus major); 229. Speckled Ground Squirrel (Spermophilus suslicus); 230. Yellow Ground Squirrel (Spermophilus fulvus); 231. Little Ground Squirrel (Spermophilus pygmaeus); 232. Caucasian Mountain Ground Squirrel (Spermophilus musicus); 233. Asia Minor Ground Squirrel (Spermophilus xanthoprymnus); 234. Tauren Ground Squirrel (Spermophilus taurensis); 235. Red-cheeked Ground Squirrel (Spermophilus erythrogenys); 236. Relict Ground Squirrel (Spermophilus relictus); 237. Tian Shan Ground Squirrel (Spermophilus nilkaensis); 238. Brandt's Ground Squirrel (Spermophilus brevicauda); 239. Pallid Ground Squirrel (Spermophilus pallidicauda); 240. Alashan Ground Squirrel (Spermophilus alashanicus); 241. Daurian Ground Squirrel (Spermophilus dauricus). in Sciuridae
On following pages: 223. Mohave Ground Squirrel (Xerospermophilus mohavensis); 224. Perote Ground Squirrel (Xerospermophilus perotensis); 225. Ring-tailed Ground Squirrel (Notocitellus annulatus); 226. Tropical Ground Squirrel (Notocitellus adocetus); 227. European Ground Squirrel (Spermophilus citellus); 228. Russet Ground Squirrel (Spermophilus major); 229. Speckled Ground Squirrel (Spermophilus suslicus); 230. Yellow Ground Squirrel (Spermophilus fulvus); 231. Little Ground Squirrel (Spermophilus pygmaeus); 232. Caucasian Mountain Ground Squirrel (Spermophilus musicus); 233. Asia Minor Ground Squirrel (Spermophilus xanthoprymnus); 234. Tauren Ground Squirrel (Spermophilus taurensis); 235. Red-cheeked Ground Squirrel (Spermophilus erythrogenys); 236. Relict Ground Squirrel (Spermophilus relictus); 237. Tian Shan Ground Squirrel (Spermophilus nilkaensis); 238. Brandt's Ground Squirrel (Spermophilus brevicauda); 239. Pallid Ground Squirrel (Spermophilus pallidicauda); 240. Alashan Ground Squirrel (Spermophilus alashanicus); 241. Daurian Ground Squirrel (Spermophilus dauricus).
Data for publication: "Can size distributions of European lake fish communities be predicted by trophic positions of their fish species?"
<p>Overview of the lakes used in the paper "Can size distributions of European lake fish communities be predicted by trophic positions of their fish species?" published in Ecology and Evolution (add date etc)<em> </em></p> <p> </p> <p>Lake data table: Overview of all lakes in our study. The first tab holds the 235 lakes with the good fit (of b) and the second tab holds the 129 lakes with an ill fit (of b). For each lake we note the country it is in, the year it was sampled, latitude, longitude, number of fish individuals between 8-2000 gr, number of individuals classified as predators and prey, the b exponent (proxy for size spectrum slope) of the fish community, mean trophic position of the fish community, the log10 of the predator-prey mass ratio (logPPMR), the catch per unit effort (CPUE, N net-1 night-1), number of fish species, maximum air temperature (°C), maximum depth (m), total phosphorus ((µg l-1) and area (km2). In addition the presence (1) or absence (blank) of fish species is noted.</p>
Distribution. Endemic to deserts in extreme SE European Russia, W & S Kazakhstan, Uzbekistan, and Turkmenistan. in Soricidae
Distribution. Endemic to deserts in extreme SE European Russia, W & S Kazakhstan, Uzbekistan, and Turkmenistan.
Subspecies and Distribution. S.s.satuniniOgnev,1921—Transcaucasia(Georgia,Armenia,andAzerbaijan)andNTurkey. S. s. stavropolica Sokolov & Tembotov, 1989 — Ciscaucasia (S European Russia). in Soricidae
Subspecies and Distribution. S.s.satuniniOgnev,1921—Transcaucasia(Georgia,Armenia,andAzerbaijan)andNTurkey. S. s. stavropolica Sokolov & Tembotov, 1989 — Ciscaucasia (S European Russia).
FIGURE 4 in Morphological diversification of alien and native aquatic snails of the genus Physa and Aplexa (Gastropoda: Physidae) of Western and Central European range
FIGURE 4. Ranges of occurrence of species of the family Physidae. 1—P. acuta, 2—A. hypnorum, 3—P. gyrina, 4—P. fontinalis (Feliksiak 1939; Adam 1960; Backhuys 1975, Vidal Abarca & Suarez 1986; Lisický 1991; Anderson 1996, 1997;Turner et al. 1998; Cossignani & Cossignani 1995; Kerney 1999; Anderson 2003; Beran 2004; Bank 2006; Yildirim et al. 2006; Son 2007; Horsȃk et al. 2010; Glöer & Diercking 2010; CABI Data Mining 2011; Bódis et al. 2012; Laenko 2012; Van Damme et al. 2012; Welter-Schultes 2012; Glöer 2015; Vinarski et al. 2015; Raković et al. 2016; Piechocki & Wawrzyniak-Wydrowska 2016; Moroz et al. 2017; Cieplok & Spyra 2020; www.faunaeuropea.org; http://www.animalbase.uni-goettingen.de).
FIGURE 7 in Morphological diversification of alien and native aquatic snails of the genus Physa and Aplexa (Gastropoda: Physidae) of Western and Central European range
FIGURE 7. Characteristic features of P. gyrina with special emphasis on the white lip (10.18150/WOIHYB) (Phot. M. Gawlak).
FIGURE 3 in Morphological diversification of alien and native aquatic snails of the genus Physa and Aplexa (Gastropoda: Physidae) of Western and Central European range
FIGURE 3. Scanning electron microscopy image of A. hypnorum shell (10.18150/UFOMHM) A, B—front (with visible lip) and back side of the shell, C—projecting lamellar crystals on the lip (Phot. A—C M. Gawlak).
FIGURE 2 in Morphological diversification of alien and native aquatic snails of the genus Physa and Aplexa (Gastropoda: Physidae) of Western and Central European range
FIGURE 2. Scanning electron micrographs of the shell apex of Physidae (10.18150/FIZSWX) Horizontally: A—P. acuta (subsidence ponds); B—A. hypnorum (anthropogenic ponds, Poland); C—P. fontinalis (Nida River, Poland); D—P. gyrina (Ireland, The Argory- ditch and Sandy Bay L Neagh; Wales, Gwent Levels in pond in flood plain (l. Killen); E- Apex of the small (young) specimens—1—P. acuta, 2—A. hyponorum, 3—P. fontinalis, 4—P. gyrina (Phot. A–E M. Gawlak).
FIGURE 1 in Morphological diversification of alien and native aquatic snails of the genus Physa and Aplexa (Gastropoda: Physidae) of Western and Central European range
FIGURE 1. Physidae of Western and Central Europe (10.18150/YPDFJU)—general shell morphology A—Physa acuta (Phot. M. Kanturski), B—Aplexa hypnorum, C—Physa fontinalis, D—Physa gyrina; 1—front side of the shell, 2—shell from the side view, 3—back side of the shell (Phot. B–D A. Cieplok, A. Spyra).
FIGURE 6. P in Morphological diversification of alien and native aquatic snails of the genus Physa and Aplexa (Gastropoda: Physidae) of Western and Central European range
FIGURE 6. P. acuta shell features (SEM) (10.18150/G6UWMN); in which the sutural belts are visible (A), the structure of a white lip (B) with characteristic projecting lamellar crystals (C) is indicated by an arrow (Phot. A–C M. Gawlak), (D) a view of the lip visible under the stereoscopic microscope (Phot. M. Kanturski).
FIGURE 8 in Morphological diversification of alien and native aquatic snails of the genus Physa and Aplexa (Gastropoda: Physidae) of Western and Central European range
FIGURE 8. Correspondence Analysis (CA) diagram for the Physidae species; 1—Whorl convexity, 2—Spire, 3—Shell thickness, 4—Thickened appendages, 5—Shell shine, 6—Shell width and height ratio, 7—Aperture height, 8—Shell height, 9—Lip, 10—Apex, 11—Shell width, 12—Aperture width, 13—Spire height.
Distribution. Caucasus (S European Russia, Georgia, Armenia, and Azerbaijan) and NW Iran (Zagros Mts). in Muridae
Distribution. Caucasus (S European Russia, Georgia, Armenia, and Azerbaijan) and NW Iran (Zagros Mts).
Distribution. Widespread in Europe (from Iceland, Britain, and Iberia E to S Norway, S Sweden, Belarus, SW European Russia, E Ukraine, and the Balkan Peninsula) and in coastal and mountainous regions of Morocco, Algeria, and Tunisia. in Muridae
Distribution. Widespread in Europe (from Iceland, Britain, and Iberia E to S Norway, S Sweden, Belarus, SW European Russia, E Ukraine, and the Balkan Peninsula) and in coastal and mountainous regions of Morocco, Algeria, and Tunisia.
ScienceDex guides
Understand access before you commit
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.