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”
Figure 5 in Dissecting copepod diversity at different spatial scales in southern European groundwater
Figure 5. Plots of γ -diversity (regional species richness) versus (A) mean α-diversity (mean species richness of local units: black dots; mean species richness of habitats: grey dots; standard error bars shown), and (B) β -diversity (average dissimilarity of local units: black dots; average dissimilarity of habitats: grey dots).
Figure 1 in A comparative survey of the freshwater copepods of two different regions of the Central Palaearctic: European and Siberian
Figure 1. Schematic maps of the studied European (A) and Siberian (B) regions 1–14, lakes or groups of lakes or water bodies (see Table 1).
Figure 3 in Dissecting copepod diversity at different spatial scales in southern European groundwater
Figure 3. (A) Multidimensional Scaling plots of centroids of the habitats (region acronyms as in Figure 1; K, karstic aquifers; P, porous aquifers); (B) Magnitude of the different spatial scale contributions to α-diversity and β -diversity variation.
Figure 2 in A comparative survey of the freshwater copepods of two different regions of the Central Palaearctic: European and Siberian
Figure 2. Canonical Correspondence Analysis graphic of copepod biomass and some other copepod parameters and environmental data for (A) European and Siberian lakes and (B) European small water bodies. Abbreviations: Area, surface area of lakes as ranked from 2 to 6;
Figure 1 in Invasion of Eurytemora sibling species (Copepoda: Temoridae) from north America into the Baltic Sea and European Atlantic coast estuaries
Figure 1. Locations of the studied populations of E. affinis and E. carolleeae. Place names are listed in Table 1.
Figure 5 in Invasion of Eurytemora sibling species (Copepoda: Temoridae) from north America into the Baltic Sea and European Atlantic coast estuaries
Figure 5. Distribution of Eurytemora affinis and Eurytemora carolleeae individuals calculated on the base of indices: ind.1, ind.2, ind.3 (see text) (A) for females and (B) for males. Eurytemora affinis from the Gulf of Finland (open squares), from the Gulf of Riga (open triangles) and from the Vistula lagoon (open circles). E. carolleeae from the Gulf of Finland (filled square) and from the Gulf of Riga (filled triangles).
Figure 1 in Dissecting copepod diversity at different spatial scales in southern European groundwater
Figure 1. Map of distribution of the four regions analysed in Southern Europe (CAN, Cantabria; JUR, Jura Massif; LES, Lessinian Massif; KRI, Krim Massif).
Figure 4 in Invasion of Eurytemora sibling species (Copepoda: Temoridae) from north America into the Baltic Sea and European Atlantic coast estuaries
Figure 4. Chosen morphological characters for analysis of Eurytemora carolleeae (A–C) and Eurytemora affinis (D–F): length and width of furcal branches (A, D), parts of male P5 swimming legs proportions (C, F), female genital segment (B, E).
Figure 3 in Invasion of Eurytemora sibling species (Copepoda: Temoridae) from north America into the Baltic Sea and European Atlantic coast estuaries
Figure 3. Common view of terra tipica Eurytemora carolleeae and Eurytemora affinis (A) E. carolleeae male and (B) E. carolleeae female from Chesapeake Bay; (C) E. affinis male and (D) E. affinis female from the Elbe River.
Figure 2 in Dissecting copepod diversity at different spatial scales in southern European groundwater
Figure 2. Multidimensional Scaling plots of the local units using presence/absence multivariate data; aggregation at the aquifer type-level and at the regional level is highlighted; labels of units include the region acronyms (as in Figure 1), habitat (Ku, unsaturated karst; Ks, saturated karst; Ph, hyporheic habitat; Ps, saturated porous), and codes of the four replicates (basins A, B, C, D). Each point representing a local unit is the centroid of 12 sampling sites.
Figure 5 in On the morphology of the terminal-instar larvae of some European species of Sycophila (Hymenoptera: Eurytomidae) parasitoids of gall wasps (Hymenoptera: Cynipidae)
Figure 5. Lateral views of terminal-instar larvae. (A) Sycophila biguttata; (B) Sycophila binotata; (C) Sycophila flavicollis; (D) Sycophila mayri; (E) Sycophila submutica ex Isocolus scabiosae form rogenhoferi
Figure 2 in On the morphology of the terminal-instar larvae of some European species of Sycophila (Hymenoptera: Eurytomidae) parasitoids of gall wasps (Hymenoptera: Cynipidae)
Figure 2. Body in lateral view of Sycophila submutica (Thomson). Letters refer to the following structures: ABS1–ABS9, abdominal segments; ANS, anal segment; THS1–THS3, thoracic segments; adp, anterodorsal protuberances; epc, spiracles.
Figure 1 in On the morphology of the terminal-instar larvae of some European species of Sycophila (Hymenoptera: Eurytomidae) parasitoids of gall wasps (Hymenoptera: Cynipidae)
Figure 1. Body in ventral view of Sycophila submutica (Thomson). Letters refer to the following structures: ABS1–ABS9, abdominal segments; ANS, anal segment; THS1–THS3, thoracic segments.
Figure 4 in On the morphology of the terminal-instar larvae of some European species of Sycophila (Hymenoptera: Eurytomidae) parasitoids of gall wasps (Hymenoptera: Cynipidae)
Figure 4. Ventral views of terminal-instar larvae. (A) Sycophila biguttata; (B) Sycophila binotata; (C) Sycophila flavicollis; (D) Sycophila mayri; (E) Sycophila submutica ex Isocolus scabiosae form rogenhoferi; (F) Sycophila submutica ex Isocolus lichtensteini.
Figure 7 in On the morphology of the terminal-instar larvae of some European species of Sycophila (Hymenoptera: Eurytomidae) parasitoids of gall wasps (Hymenoptera: Cynipidae)
Figure 7. Anterior view of mouthparts of terminal-instar larvae. (A) Sycophila biguttata; (B) Sycophila binotata; (C) Sycophila flavicollis; (D) Sycophila mayri; (E) Sycophila submutica ex Isocolus scabiosae form rogenhoferi.; (F) Sycophila submutica ex Isocolus lichtensteini.
Figure 6 in On the morphology of the terminal-instar larvae of some European species of Sycophila (Hymenoptera: Eurytomidae) parasitoids of gall wasps (Hymenoptera: Cynipidae)
Figure 6. Anterior view of the head of terminal-instar larvae. (A) Sycophila biguttata; (B) Sycophila binotata; (C) Sycophila flavicollis; (D) Sycophila mayri; (E) Sycophila submutica ex Isocolus. scabiosae form rogenhoferi; (F). Sycophila submutica ex Isocolus lichtensteini.
Figure 2 in Studies in European ant-decapitating flies (Diptera: Phoridae): ant alarm pheromone as host finding cue in Pseudacteon brevicauda, a parasite of Myrmica rubra (Formicidae: Myrmicinae)
Figure 2. Percentage of flies showing flight activity as a reaction to synthetic 3-octanone, nonanone and 3-octanol. Water was used as a control (n = 30 each).
Figure 1 in Studies in European ant-decapitating flies (Diptera: Phoridae): ant alarm pheromone as host finding cue in Pseudacteon brevicauda, a parasite of Myrmica rubra (Formicidae: Myrmicinae)
Figure 1. Percentage of alerted flies from the total number tested. Control (C), intact worker ants (A), crushed gaster and thorax (G + T), crushed head (H) and two crushed mandibular glands (MG).
European database of carbon stocks in temperate forests
<p>This database is compiled of data from temperate forests, both above- and belowground C stocks are included.</p>
Figure 4 in Taxonomy and morphology of European pea crabs (Crustacea: Brachyura: Pinnotheridae)
Figure 4. Male of Pinnotheres pisum. (A) Dorsal view on male; (B) male pleon; (C) ventral view on left first gonopod; (D) dorsal view on left first gonopod.
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.