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6,170 results for “european”
Figure 6. A in The European lesser glow worm, Phosphaenus hemipterus (Goeze), in North America (Coleoptera, Lampyridae)
Figure 6. A Phosphaenus hemipterus larvae feeding on an earthworm (Lumbricus terrestris). While feeding, the tarsal claws of the legs anchor the larva to the body of the earthworm and the extended antennae move over the surface of the earthworm's body. Photo credit: Christopher Majka.
Figure 3 in The European lesser glow worm, Phosphaenus hemipterus (Goeze), in North America (Coleoptera, Lampyridae)
Figure 3. Photograph of the habitat at the Holy Cross site where Phosphaenus hemipterus specimens were collected. Photo credit: Christopher Majka
Figure 5 in The European lesser glow worm, Phosphaenus hemipterus (Goeze), in North America (Coleoptera, Lampyridae)
Figure 5. The collection locale of the Phosphaenus hemipterus larvae in the Holy Cross site in a rock pile. Note the rock wall in the background. Photo credit: Christopher Majka.
Fig. 2 in The Leiobunum rupestre species group: resolving the taxonomy of four widespread European taxa (Opiliones: Sclerosomatidae)
Fig. 2. Distribution of the species of the Leiobunum rupestre species group. Red squares = L. rupestre Herbst, 1799; blue circles = L. gracile Thorell, 1876; green triangles = L. apenninicum (Martens, 1969); stippled line circumscribes area of L. subalpinum Komposch, 1998. Type localities are indicated by abbreviated taxon names (ape = apenninicum; gla = glabrum; gra = gracile; lae = laeve; nor = norvegicum; rup = rupestre; sub subalpinum; tis = tisciae). Arrows indicate a specified locality, if unprecisely given, the general area is indicated (rupestre = Saxony; gracile, laeve = Scania).
Fig. 4 in Atlas of European millipedes 2: Order Julida (Class Diplopoda)
Fig. 4. Biogeographic regions in Europe, from European Environment Agency (2003); reproduced with permission.
Data from: The co-authorship networks of the most productive European researchers
<p>This individual-level data-set describes the most productive European Union (EU) researchers (in terms of articles), during 2007 - 2018, irrespective of their research field. Specifically, in the data-set file, i.e. "iconic_5000", we profile the most productive 4,588 EU researchers using the following variables: number of papers; number of citations; repeated collaborations; number of co-authors; number of co-authors from the same country (as the author), from the same city, from the same institution and from different countries; geographical dispersion (number of unique countries wherein co-authors are based in), star (the largest number of articles published by one of an author's collaborators), godfather (the largest number of citations received by one of an author's collaborators), co-authors' citations and co-authors' papers. Variables are yearly measured.</p>
Supplementary material 1 from: Geneletti D, Adem Esmail B, Cortinovis C, Arany I, Balzan M, van Beukering P, Bicking S, Borges PA, Borisova B, Broekx S, Burkhard B, Gil A, Inghe O, Kopperoinen L, Kruse M, Liekens I, Lowicki D, Mizgajski A, Mulder S, Nedkov S, Ostergard H, Picanço A, Ruskule A, Santos-Martín F, Sieber IM, Svensson J, Vačkářů D, Veidemane K (2020) Ecosystem services mapping and assessment for policy- and decision-making: Lessons learned from a comparative analysis of European case studies. One Ecosystem 5: e53111. https://doi.org/10.3897/oneeco.5.e53111
An overview of the assessment of ecosystem condition in the selected case studies.
Supplementary material 3 from: Wiemers M, Chazot N, Wheat CW, Schweiger O, Wahlberg N (2020) A complete time-calibrated multi-gene phylogeny of the European butterflies. ZooKeys 938: 97-124. https://doi.org/10.3897/zookeys.938.50878
Figure S1. Time-calibrated tree of European butterflies
Supplementary material 8 from: Wiemers M, Chazot N, Wheat CW, Schweiger O, Wahlberg N (2020) A complete time-calibrated multi-gene phylogeny of the European butterflies. ZooKeys 938: 97-124. https://doi.org/10.3897/zookeys.938.50878
Figure S6. Time-calibrated tree of European butterflies
Supplementary material 2 from: Wiemers M, Chazot N, Wheat CW, Schweiger O, Wahlberg N (2020) A complete time-calibrated multi-gene phylogeny of the European butterflies. ZooKeys 938: 97-124. https://doi.org/10.3897/zookeys.938.50878
Table S1–S12
Supplementary material 5 from: Wiemers M, Chazot N, Wheat CW, Schweiger O, Wahlberg N (2020) A complete time-calibrated multi-gene phylogeny of the European butterflies. ZooKeys 938: 97-124. https://doi.org/10.3897/zookeys.938.50878
Figure S3. Time-calibrated tree of European butterflies Section II. Riodinidae & Lycaenidae.
Figure 2 from: Wiemers M, Chazot N, Wheat CW, Schweiger O, Wahlberg N (2020) A complete time-calibrated multi-gene phylogeny of the European butterflies. ZooKeys 938: 97-124. https://doi.org/10.3897/zookeys.938.50878
Figure 2 Majority rule consensus tree topology of a set of 1000 trees from the posterior distribution of time-calibrated trees of European butterflies. Circles at the nodes display clade support with a colour gradient from 50% (red) via 75% (yellow) to 100% (green).
Figure 1 from: Wiemers M, Chazot N, Wheat CW, Schweiger O, Wahlberg N (2020) A complete time-calibrated multi-gene phylogeny of the European butterflies. ZooKeys 938: 97-124. https://doi.org/10.3897/zookeys.938.50878
Figure 1 Time-calibrated tree of European butterflies (Lepidoptera: Papilionoidea) with time scale and taxonomic assignment to subfamilies and families.
DATA SET - Sublethal exposure to deltamethrin impairs maternal egg care in the European earwig Forficula auricularia
<p>Data set of the manuscript entitled "Sublethal exposure to deltamethrin impairs maternal egg care in the European earwig Forficula auricularia" and published in the journal Chemosphere.</p>
European bird declines: do we need to rethink approaches to the management of abundant generalist predators?
<ol> <li>Bird species are declining across Europe. Current European policy, i.e. the Birds and Habitats Directives, focus on habitat management as a way of halting the declines. This paper explores the role of predation in causing bird population declines and asks if we need to reconsider our approach to the management of generalist predators. </li> <li>We analysed bird population trends and distribution changes across Europe, Britain and Ireland, reflecting an increasing gradient of generalist predator abundance (principally red fox <i>Vulpes vulpes </i>and species of the family <i>Corvidae</i>). We tested if ground-nesting bird species, considered more vulnerable to predation,were in greater decline compared to other nesting strategies. We also compared Annex I designated species to non-designated species as a proxy for habitat management.</li> <li>We found that across Europe, 74% of ground-nesting bird species were in decline, compared to 41% of other species. This was especially evident in Britain, where the pattern was 66% compared to 31%, and in Ireland, 71% compared to 20%. Ground-nesting species were significantly more likely to be declining than other species.</li> <li>These patterns are consistent with the idea that population declines are at least partially related to the increased abundance of generalist predators. In Britain, ground-nesting species were less likely to be in decline if covered by Annex I designation. However, in Europe and Ireland, Annex I status did not mitigate the effect of nesting strategy. </li> <li> <i>Policy implications</i><span><span><span><span><span><span><span><span><span><span><span>. Current legislation is clearly insufficient to prevent widespread declines in ground-nesting birds, and this is the case across Europe, in Britain and Ireland. Ignoring the role of generalist predators in modern landscapes may lead to further declines and losses. We urgently need large-scale experiments to establish causality in the impact of generalist predators on ground-nesting birds in different landscapes. If we value our ground-nesting bird species, consideration needs to be given to the control of widespread generalist predators, at least until landscapes are restored.</span></span></span></span></span></span></span></span></span></span></span> </li> </ol> <div> <div> <div class="msocomtxt"> <p class="MsoCommentText"> </p> </div> </div> </div>
Data for: Chasing away accurate results: exhaustive chase protocols underestimate maximum metabolic rate estimates in European perch Perca fluviatilis
<p>Data and R code for the publication: Chasing away accurate results: exhaustive chase protocols underestimate maximum metabolic rate estimates in European perch Perca fluviatilis</p>
Figure 8 from: Sabbatini-Peverieri G, Giovannini L, Benvenuti C, Madonni L, Hoelmer K, Roversi PF (2020) Characteristics of the meconia of European egg parasitoids of Halyomorpha halys. Journal of Hymenoptera Research 77: 187-201. https://doi.org/10.3897/jhr.77.52904
Figure 8 Leptoglossus occidentalis eggs parasitized by Gryon pennsylvanicum (A) and meconium recognizable in the host egg (B) and its SEM image (C). Scale bar: 500μm (B).
Figure 5 from: Sabbatini-Peverieri G, Giovannini L, Benvenuti C, Madonni L, Hoelmer K, Roversi PF (2020) Characteristics of the meconia of European egg parasitoids of Halyomorpha halys. Journal of Hymenoptera Research 77: 187-201. https://doi.org/10.3897/jhr.77.52904
Figure 5 Meconium (arrows) of egg parasitoids of Halyomorpha halys visible through partially dissected host eggs: Anastatus bifasciatus (A); Trissolcus mitsukurii (B); Trissolcus japonicus (C); Acroclisoides sinicus on previous parasitized egg by Trissolcus mitsukurii (D); Ooencyrtus telenomicida (E).
Figure 7 from: Sabbatini-Peverieri G, Giovannini L, Benvenuti C, Madonni L, Hoelmer K, Roversi PF (2020) Characteristics of the meconia of European egg parasitoids of Halyomorpha halys. Journal of Hymenoptera Research 77: 187-201. https://doi.org/10.3897/jhr.77.52904
Figure 7 Meconium of Halyomorpha halys egg parasitoid at SEM: Anastatus bifasciatus (A); Trissolcus japonicus (B); Trissolcus mitsukurii (C); Acroclisoides sinicus (red arrow) on meconium of Trissolcus japonicus (D); Acroclisoides sinicus (red arrow) on meconium of Trissolcus mitsukurii (E); Ooencyrtus telenomicida (F).
Figure 6 from: Sabbatini-Peverieri G, Giovannini L, Benvenuti C, Madonni L, Hoelmer K, Roversi PF (2020) Characteristics of the meconia of European egg parasitoids of Halyomorpha halys. Journal of Hymenoptera Research 77: 187-201. https://doi.org/10.3897/jhr.77.52904
Figure 6 Halyomorpha halys egg parasitoid meconium extracted from the host egg: Anastatus bifasciatus (A); Trissolcus japonicus (B); Trissolcus mitsukurii (C); Acroclisoides sinicus (red arrows) on meconium of Trissolcus japonicus (D); Acroclisoides sinicus (red arrows) on meconium of Trissolcus mitsukurii (E); detail of meconium of T. japonicus (view from the bottom (F); Ooencyrtus telenomicida (G). Scale bars: 500μm.
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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.
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.