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431 results for “EV”
Figure 2 from: Ferreira GS, Almeida dos Santos DA, Lopes EV (2019) Richness, abundance and microhabitat use by Ardeidae (Aves: Pelecaniformes) during one seasonal cycle in the floodplain lakesof the lower Amazon River. Zoologia 36: 1-10. https://doi.org/10.3897/zoologia.36.e30475
Figure 2 Sampling design for macrofauna collection in the intertidal zone. Each station included three pooled samplings per strata (upper, middle and lower) of the intertidal zone as sampling unit.
Figure 1 from: Ferreira GS, Almeida dos Santos DA, Lopes EV (2019) Richness, abundance and microhabitat use by Ardeidae (Aves: Pelecaniformes) during one seasonal cycle in the floodplain lakesof the lower Amazon River. Zoologia 36: 1-10. https://doi.org/10.3897/zoologia.36.e30475
Figure 1 Map of the study area showing Grussaí Beach and Manguinhos Beach, in northern Rio de Janeiro, Brazil.
Supplementary material 1 from: Rosati L, Romano V, Bartolucci F, Bernardo L, Bouvet D, Cancellieri L, Caruso G, Conti F, Faraoni F, Banfi E, Galasso G, Lattanzi E, Lavezzo P, Peccenini S, Perrino EV, Salerno G, Sciandra A, Soldano A, Stinca A, Totta C, Fascetti S (2017) Contribution to the floristic knowledge of the Maddalena Mountains (Basilicata and Campania, southern Italy). Italian Botanist 3: 73-82. https://doi.org/10.3897/italianbotanist.3.12519
Supplementary data : Explanation note:
Figure 4 from: Fenu G, Bernardo L, Calvo R, Cortis P, De Agostini A, Gangale C, Gargano D, Gargano ML, Lussu M, Medagli P, Perrino EV, Sciandrello S, Wagensommer RP, Orsenigo S (2019) Global and Regional IUCN Red List Assessments: 8. Italian Botanist 8: 17-33. https://doi.org/10.3897/italianbotanist.8.47330
Figure 4 Position of the study area in the European context (upper side), and location of the Italian populations of Genista anglica (lower side). Brown squares, localities in Sila; blue squares, localities in Serre Calabre; red squares, localities in Aspromonte.
Figure 3 from: Fenu G, Bernardo L, Calvo R, Cortis P, De Agostini A, Gangale C, Gargano D, Gargano ML, Lussu M, Medagli P, Perrino EV, Sciandrello S, Wagensommer RP, Orsenigo S (2019) Global and Regional IUCN Red List Assessments: 8. Italian Botanist 8: 17-33. https://doi.org/10.3897/italianbotanist.8.47330
Figure 3 Genista anglica at Silvana Mansio (Serra Pedace, Cosenza; Calabria), a locality included in the Sila National Park. Photograph by L. Bernardo.
SPARCS_WP4_Leipzig_Baumwollspinnerei_EV Charging
<p>Sum of electricity charged at the two Waltherwerke wallboxes and the Kostal wallboxes</p>
Figures 1-9 from: Tselikh EV, Dale-Skey N (2021) Review of the genus Toxeuma Walker, 1833 (Hymenoptera, Pteromalidae) from Russia, with a key to Palaearctic species. In: Proshchalykin MYu, Gokhman VE (Eds) Hymenoptera studies through space and time: A collection of papers dedicated to the 75th anniversary of Arkady S. Lelej. Journal of Hymenoptera Research 84: 391-403. https://doi.org/10.3897/jhr.84.68627
Figures 1-9 Toxeuma acilius holotype male (1) non-type female (2–6) 1 body, dorsal view 2 body, dorso-lateral view 3 antenna (dry material) 4 F6 and antennal clava (slide) 5 antenna (slide) 6 propodeum and petiole, dorsal view Toxeuma discretum holotype female (7–9) 7 metasoma, dorsal view 8 body, dorsal view 9 body, lateral view Scale bars: 1.0 mm.
Figures 33-38 from: Tselikh EV, Dale-Skey N (2021) Review of the genus Toxeuma Walker, 1833 (Hymenoptera, Pteromalidae) from Russia, with a key to Palaearctic species. In: Proshchalykin MYu, Gokhman VE (Eds) Hymenoptera studies through space and time: A collection of papers dedicated to the 75th anniversary of Arkady S. Lelej. Journal of Hymenoptera Research 84: 391-403. https://doi.org/10.3897/jhr.84.68627
Figures 33-38 Toxeuma subtruncatum paratype female (33, 34) paratype male (36) non-type female (35, 37, 38) 33 body, lateral view 34 antenna (dry material) 35 antennal clava (slide) 36 body, lateral view 37 metasoma, dorsal view 38 propodeum and petiole, dorsal view Scale bars: 1.0 mm.
Figures 10-21 from: Tselikh EV, Dale-Skey N (2021) Review of the genus Toxeuma Walker, 1833 (Hymenoptera, Pteromalidae) from Russia, with a key to Palaearctic species. In: Proshchalykin MYu, Gokhman VE (Eds) Hymenoptera studies through space and time: A collection of papers dedicated to the 75th anniversary of Arkady S. Lelej. Journal of Hymenoptera Research 84: 391-403. https://doi.org/10.3897/jhr.84.68627
Figures 10-21 Toxeuma fuscicorne non-type female (10–14) 10 body, lateral view 11 metasoma, dorsal view 12 scutellum, propodeum and petiole, dorsal view 13 F6 and antennal clava (slide) 14 antenna (slide) Toxeuma leleji sp. nov. holotype female (15, 16, 18–20) paratype female (17, 21) 15 body, lateral view 16 fore and hind wings 17 antennal clava (slide) 18 metasoma, dorsal view 19 propodeum and petiole, dorsal view 20 head, frontal view 21 antenna (slide) Scale bars: 1.0 mm.
Figures 22-32 from: Tselikh EV, Dale-Skey N (2021) Review of the genus Toxeuma Walker, 1833 (Hymenoptera, Pteromalidae) from Russia, with a key to Palaearctic species. In: Proshchalykin MYu, Gokhman VE (Eds) Hymenoptera studies through space and time: A collection of papers dedicated to the 75th anniversary of Arkady S. Lelej. Journal of Hymenoptera Research 84: 391-403. https://doi.org/10.3897/jhr.84.68627
Figures 22-32 Toxeuma paludum holotype female (23) paratype female (24) non-type female (22, 25, 26) 22 body, lateral view 23 antenna (dry material) 24 antenna (dry material) 25 metasoma, dorsal view 26 scutellum, propodeum and petiole, dorsal view 27 F6 and antennal clava (slide) Toxeuma styliclava paratype female (28, 29) non-type female (30–32) 28 antenna (dry material) 29 body, lateral view 30 F6 and antennal clava (slide) 31 metasoma, dorsal view 32 propodeum and petiole, dorsal view Scale bars: 1.0 mm.
Integral and differential elastic cross sections for electron scattering from water for 0.1-15 eV
<p>Elastic integral and differential cross sections (DCS) for electron scattering from H<sub>2</sub>O calculated with the R-matrix method within the fixed-nuclei approximation. Details of the calculations can be found in <em>Evaluation of Recommended Cross Sections for the simulation of Electron Tracks in Water</em>, García-Abenza <em>et al.</em>, <em>Atoms</em>, submitted. The models used for the calculations were taken from Gorfinkiel <em>et al.</em> <em>J. Phys. B </em><strong>35</strong> (2002) 543, doi:10.1088/0953-4075/35/3/309 and Faure <em>et al.</em> <em>J. Phys.</em> <strong>37</strong> (2004) 801, doi:10.1088/0953-4075/37/4/007.</p> <p>All energies are in eV, angles in degrees and cross sections in Angstrom**2. The dcs_*** files contain DCS for the energy indicated by the file name for angles between 0 and 180; the integral_cross_section file contains the integral cross section for the energy range indicated by the zip file.</p> <p>These zip files contain the following:</p> <ul> <li><strong>dcs_0-7eV.zip: </strong> data DCS between 0.01 and 6.97 eV calculated using the UKRmol suite and POLYDCS from K-matrices</li> <li><strong>dcs_7-15eV.zip: </strong>DCS between 7.01 and 15.0 eV calculated using the UKRmol suite and POLYDCS from T-matrices</li> <li><strong>dcs_noborn_0-7eV.zip:</strong> data DCS between 0.01 and 6.97 eV calculated using the UKRmol suite and POLYDCS from K-matrices treating the molecule as non-polar</li> <li><strong>dcs_7-15eV.zip: </strong>DCS between 7.01 and 15.0 eV calculated using the UKRmol suite and DCS from T-matrices treating the molecule as non-polar.</li> </ul>
Figure 3 from: Pazhenkova EA, Zakharov EV, Lukhtanov VA (2015) DNA barcoding reveals twelve lineages with properties of phylogenetic and biological species within Melitaea didyma sensu lato (Lepidoptera, Nymphalidae). ZooKeys 538: 35-46. https://doi.org/10.3897/zookeys.538.6605
Figure 3 - Fragment of the Bayesian tree of Melitaea didyma complex (haplogroups turkestanica, mixta, chitralensis, mauretanica and didyma) based on analysis of the cytochrome oxidase subunit I (COI) gene. Numbers at nodes indicate Bayesian posterior probability/ML bootstrap/MP bootstrap values, with nonmatching clades using different analyses indicated by '-'. Scale bar = 0.1 substitutions per position.
Figure 4 from: Pazhenkova EA, Zakharov EV, Lukhtanov VA (2015) DNA barcoding reveals twelve lineages with properties of phylogenetic and biological species within Melitaea didyma sensu lato (Lepidoptera, Nymphalidae). ZooKeys 538: 35-46. https://doi.org/10.3897/zookeys.538.6605
Figure 4 - Distribution ranges of haplogroups didyma (■), didymoides (∆), interrupta (●), latonigena (○), liliputana (◊), mauretanica (⃰ ), mixta (▼), neera (▲), occidentalis (#), sutschana (♦), turkestanica (□) and chitralensis (►).
Figure 1 from: Pazhenkova EA, Zakharov EV, Lukhtanov VA (2015) DNA barcoding reveals twelve lineages with properties of phylogenetic and biological species within Melitaea didyma sensu lato (Lepidoptera, Nymphalidae). ZooKeys 538: 35-46. https://doi.org/10.3897/zookeys.538.6605
Figure 1 - The Bayesian tree of Melitaea based on analysis of the cytochrome oxidase subunit I (COI) gene. Numbers at nodes indicate Bayesian posterior probability/ML bootstrap/MP bootstrap values. Scale bar = 0.1 substitutions per position.
Figure 2 from: Pazhenkova EA, Zakharov EV, Lukhtanov VA (2015) DNA barcoding reveals twelve lineages with properties of phylogenetic and biological species within Melitaea didyma sensu lato (Lepidoptera, Nymphalidae). ZooKeys 538: 35-46. https://doi.org/10.3897/zookeys.538.6605
Figure 2 - Fragment of the Bayesian tree of Melitaea didyma complex (haplogroups neera, liliputana, occidentalis, interrupta, latonigena, sutschana and didymoides) based on analysis of the cytochrome oxidase subunit I (COI) gene. Numbers at nodes indicate Bayesian posterior probability/ML bootstrap/MP bootstrap values, with nonmatching clades using different analyses indicated by '-'. Scale bar = 0.1 substitutions per position.
Supplementary material 1 from: Sukhorukov AP, Fedorova AV, Kushunina M, Mavrodiev EV (2022) Akhania, a new genus for Salsola daghestanica, Caroxylon canescens and C. carpathum (Salsoloideae, Chenopodiaceae, Amaranthaceae). PhytoKeys 211: 45-61. https://doi.org/10.3897/phytokeys.211.89408
Figure S1
Supplementary material 2 from: Sukhorukov AP, Fedorova AV, Kushunina M, Mavrodiev EV (2022) Akhania, a new genus for Salsola daghestanica, Caroxylon canescens and C. carpathum (Salsoloideae, Chenopodiaceae, Amaranthaceae). PhytoKeys 211: 45-61. https://doi.org/10.3897/phytokeys.211.89408
Figure S2
BNCI_just_one_ev_run
<p>First four BNCI2014001 files but the evaluation just have one run.</p>
Safety Study of DWP-450 (Botulinum Toxin, Type a) to Treat Glabellar Lines - EV-006
ClinicalTrials.gov study NCT02428608. IPD Sharing: UNDECIDED. Countries: 1. Publications: 0.
Retrospective Evaluation of Clinical Performance of the Astra Tech Implant System EV When Used in Everyday Practice
ClinicalTrials.gov study NCT03845738. IPD Sharing: Not stated. Countries: 6. Publications: 0.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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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.