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260 results for “220”
FIGURES 220–227 in A Review of the Asian Goblin Spider Genus Camptoscaphiella (Araneae: Oonopidae)
FIGURES 220–227. Camptoscaphiella hilaris Brignoli, male (PBI_OON 23376). 220. Habitus, dorsal view. 221. Same, ventral view. 222. Sternum, ventral view. 223. Chelicerae, ventral view. 224. Chelicerae, dorsal view. 225. Palp, prolateral view. 226. Palp, dorsal view. 227. Palp, retrolateral view. Arrows show narrow extensions between coxae and extensions of precoxal triangles. Scale bars, habitus = 1.0 mm, epigynum = 0.1 mm.
Operating diagram of the incubator, two tiered modules contain six independent incubators. Three shallow hatching are (220 × 60 × 17 cm) stacked on top of each other to create a compact assembly in which each tier functions independently. Eighteen trays covered with eggs can be placed in each tier, allowing the simultaneous incubation of seven to nine lays. in Reproduction of Zingel asper (Linnaeus, 1758) in controlled conditions: an assessment of the experiences realized since 2005 at the Besançon Natural History Museum
Operating diagram of the incubator, two tiered modules contain six independent incubators. Three shallow hatching are (220 × 60 × 17 cm) stacked on top of each other to create a compact assembly in which each tier functions independently. Eighteen trays covered with eggs can be placed in each tier, allowing the simultaneous incubation of seven to nine lays.
X-ray scattering tensor-tomography dataset for a steel wire using the austenitic {220}-peak.
<p>Experimental data from a scanning-probe wide angle scattering experiment performed at the cSAXS beamline at teh Swiss Light Source at the Paul Scherrer Institure in Villigen, Switzerland.</p> <p>The file-format is that used in by the software package mumott (mumott.org).</p> <p>The sample is a tangled knot of hard-tempered steel. The detector images have been azimuthally re-grouped and only the intensity of the austeinte {220} peak is included in 48 separrate azimuthal bins.</p>
Figures 220–221 in Further review of Orthochirus Karsch, 1892 (Scorpiones: Buthidae) from Asia: taxonomic position of O. melanurus, O. persa, O. scrobiculosus, and description of six new species
Figures 220–221. Orthochirus nordmanni sp. n., holotype male, carapace and tergites (220) and sternopectinal region and sternites (221) under UV light.
Figs 220–223 in Redefinition of Liroetis, with descriptions of two new species and an annotated list of species (Coleoptera: Chrysomelidae: Galerucinae)
Figs 220–223. Liroetis jungchani (Lee, 2016), male, paratype (10.4 mm). 220 – dorsal view; 221 – lateral view; 222 – labels; 223 – head and pronotum.
Figures 220–225 in A new species of Scorpiops Peters 1861 from Yunnan Province China with a preliminary review of its congeners in Yunnan (Scorpiones Scorpiopidae)
Figures 220–225: S. zhangshuyuani, under UV light. Figures 220–221, 224. Pedipalp chela in dorsal (220) and dorsoexternal (221) and pectines (224) of male. Figures 222–223, 225. Pedipalp chela in dorsal (222) and dorsoexternal (222) and pectines (225) of female.
FIGURES 220–225 in A Revision of the Wasp Genus Pison Jurine, 1808 of Australia and New Zealand, New Guinea, and the Pacific Islands (Hymenoptera: Crabronidae)
FIGURES 220–225. Pison carinigerum Pulawski, sp. nov., male. (220) Clypeus and mandibles; (221) Left mandible, outer side (arrow shows abductor ridge); (222) Underside of male head in oblique view (arrow shows ridges on lower gena); (223). Sternum VIII (ventral view); (224) Genitalia in dorsal view; (225) Genitalia in lateral view.
Figure 220 in A revision of the spider genus Raveniola (Araneae, Nemesiidae). I. Species from Western Asia
Figure 220. Localities of Raveniola spp. in the eastern part of the Caucasus: R. dunini sp. nov. (), R. hyrcanica Dunin, 1988 () and R. zaitzevi (Charitonov, 1948) (). Abbreviation: TU = Turkey.
Fig. 220 in EVOLUTION OF THE SIDE-NECKED TURTLES: THE FAMILIES BOTHREMYDIDAE, EURAXEMYDIDAE, AND ARARIPEMYDIDAE
Fig. 220. Nigeremys gigantea (Bergounioux and Crouzel, 1968). MNHN (P) NIR 1 holotype. Partially restored ventral view of skull. [F. Ippolito, del.]
Baseline and Future (2050s and 2090s) Climate Suitability Scores for 116 Useful Tree Species and 220 locations from Côte d'Ivoire, Ghana and Guinea
<p>Climate suitability scores were calculated for 116 Useful Tree Species identified by filtering Top830+ native tree species from Côte d'Ivoire, Ghana and Guinea via the <a href="https://patspo.shinyapps.io/GlobalUsefulTrees/">GlobalUsefulNativeTrees</a> database and checking for the availability of globally observed environmental ranges from the <a href="https://doi.org/10.5281/zenodo.13132613">TreeGOER</a> database.</p> <ul> <li>Score = 3 means that in 'environmental space' the planting site occurs within the 25% - 75% species's range (as documented in the <a href="https://onlinelibrary.wiley.com/doi/full/10.1111/gcb.16914" target="_blank" rel="noopener">TreeGOER</a> ) for all variables</li> <li>Score = 2 corresponds to the 5% - 95% species's range for all variables. For some variables, the planting site occurs outside the 25% - 75% species's range.</li> <li>Score = 1 corresponds to the 0% - 100% species's range for all variables. For some variables, the planting site occurs outside the 5% - 95% species's range.</li> <li>Score = 0 means that the planting site occurs outside the 0% - 100% species's range for some of the variables</li> <li>Score = -1 means that the species is not documented by TreeGOER</li> </ul> <p>Locations corresponded to cities and weather stations from the three target countries sourced from the <a href="https://doi.org/10.5281/zenodo.10004594">CitiesGOER</a> and <a href="https://doi.org/10.5281/zenodo.12679832">ClimateForecasts</a> databases, respectively. Both these databases provide bioclimatic conditions for the historical (baseline) and three future climate change scenarios. Bioclimatic variables for future climates correspond to the median values from 24 Global Climate Models (GCMs) for Shared Socio-Economic Pathway (SSP) 1-2.6 for the 2050s (2041-2060), from 21 GCMs for SSP 3-7.0 for the 2050s and from 13 GCMs for SSP 5-8.5 for the 2090s.</p> <p>Investigations were made for two different sets of bioclimatic variables, allowing for sensitivity analysis:</p> <ul> <li>One set of bioclimatic variables included BIO01 (mean annual temperature), BIO12 (total annual precipitation), climaticMoistureIndex, monthCountByTemp10 (number of months with average temperature above 10 degrees), growingDegDays5, BIO05 (maximum temperature of the warmest month), BIO06 (minimum temperature of teh coldest month), BIO16 (precipitation of the wettest quarter), BIO17 (precipitation of the driest quarter) and MCWD (Maximum Climatological Water Deficit). These are the same bioclimatic variables available internally in the <a href="https://worldagroforestry.org/output/globalusefulnativetrees">GlobalUsefulNativeTrees</a> for climate filtering.</li> <li>One set only included BIO01 (mean annual temperature), which is the single bioclimatic variables available for the BGCI <a href="https://cat.bgci.org/">Climate Assessment Tool</a>.</li> </ul> <p>Calculations were made with similar scripting pipelines in the <em>R</em> statistical environment as documented here: <a href="https://rpubs.com/Roeland-KINDT/1168650">https://rpubs.com/Roeland-KINDT/1168650</a>. These scripts use similar calculations methods as those used for the global case studies of the TreeGOER manuscript (Kindt <a href="https://onlinelibrary.wiley.com/doi/10.1111/gcb.16914">2023</a>), and used internally in the <a href="https://worldagroforestry.org/output/globalusefulnativetrees">GlobalUsefulNativeTrees</a> online database. Interested readers should especially refer to the manuscript for further details on methods used and their justification.</p> <p>The maps show the frequency distribution of tree species with climate scores 3, 2, 1 and 0, excluding 18 species not documented by the TreeGOER.</p> <p> </p> <p><strong>References</strong></p> <ul> <li>Kindt, R. (2023). TreeGOER: A database with globally observed environmental ranges for 48,129 tree species. Global Change Biology, 00, 1–16. <a href="https://onlinelibrary.wiley.com/doi/10.1111/gcb.16914">https://onlinelibrary.wiley.com/doi/10.1111/gcb.16914</a>.</li> <li>Kindt, R. (2024). TreeGOER: Tree Globally Observed Environmental Ranges (2024.07) [Data set]. Zenodo. <a href="https://doi.org/10.5281/zenodo.13132613" target="_blank" rel="noopener">https://doi.org/10.5281/zenodo.13132613</a></li> <li>Kindt, R., Graudal, L., Lillesø, JP.B. <em>et al.</em> (2023). GlobalUsefulNativeTrees, a database documenting 14,014 tree species, supports synergies between biodiversity recovery and local livelihoods in landscape restoration. <em>Sci Rep</em> <strong>13</strong>, 12640. <a href="https://doi.org/10.1038/s41598-023-39552-1">https://doi.org/10.1038/s41598-023-39552-1</a></li> <li>Kindt, R. (2023). CitiesGOER: Globally Observed Environmental Data for 52,602 Cities with a Population ≥ 5000 (2023.10) [Data set]. Zenodo. <a href="https://doi.org/10.5281/zenodo.10004594" target="_blank" rel="noopener">https://doi.org/10.5281/zenodo.10004594</a></li> <li>Kindt, R. (2024). ClimateForecasts: Globally Observed Environmental Data for 15,504 Weather Station Locations (2024.07) [Data set]. Zenodo. <a href="https://doi.org/10.5281/zenodo.12679832" target="_blank" rel="noopener">https://doi.org/10.5281/zenodo.12679832</a></li> <li>Fick, S. E., & Hijmans, R. J. (2017). WorldClim 2: New 1‐km spatial resolution climate surfaces for global land areas. <em>International Journal of Climatology</em>, <em>37</em>(12), 4302–4315. <a href="https://doi.org/10.1002/joc.5086">https://doi.org/10.1002/joc.5086</a></li> <li>Title, P. O., & Bemmels, J. B. (2018). ENVIREM: An expanded set of bioclimatic and topographic variables increases flexibility and improves performance of ecological niche modeling. <em>Ecography</em>, <em>41</em>(2), 291–307. <a href="https://doi.org/10.1111/ecog.02880">https://doi.org/10.1111/ecog.02880</a></li> <li>Opendatasoft (2023) Geonames - All Cities with a population > 1000. <a href="https://public.opendatasoft.com/explore/dataset/geonames-all-cities-with-a-population-1000/information/?disjunctive.cou_name_en&sort=name">https://public.opendatasoft.com/explore/dataset/geonames-all-cities-with-a-population-1000/information/?disjunctive.cou_name_en&sort=name</a> (accessed 22-JULY-2023)</li> <li>Meteostat (2024) Weather stations: Lite dump with active weather stations. <a href="https://github.com/meteostat/weather-stations">https://github.com/meteostat/weather-stations</a> (accessed 17-FEB-2024)</li> </ul> <p> </p> <p><strong>Funding</strong></p> <p>The data sets and maps available in this archive were created within the context of an agreement between The International Centre for Research in Agroforestry (ICRAF) and WORLD UNIVERSITY SERVICE OF CANADA (WUSC) for a <em><a href="https://ceci.org/en/projects/nature-based-climate-adaptation-guinean-forest-west-africa-sbn-guinean-forests">Nature-based climate adaptation project in the Guinean forests of West Africa (NbS Guinean Forests)</a></em> funded by <a href="https://www.international.gc.ca/global-affairs-affaires-mondiales/home-accueil.aspx?lang=eng">Global Affairs Canada</a>.</p>
Figs 220–228 in A revision of the spider genus Raveniola (Araneae, Nemesiidae). II. Species from Central Asia
Figs 220–228. Raveniola spp., ♂♂, holotypes (except 226, 228), sternum, labium and maxillae, ventral views. 220. R. ferghanensis (Zonstein, 1984) (ZISP). 221. R. kirgizica sp. nov. (SMNH). 222. R. kopetdaghensis (Fet, 1984) (ZISP). 223. R. mikhailovi Zonstein, 2021 (SMNH). 224. R. nenilini sp. nov. (SMNH). 225. R. ovchinnikovi sp. nov. (SMNH). 226. R. virgata (Simon, 1891), ♂ from vicinity of Arslanbob (SMNH). 227. R. vulpina sp. nov. (SMNH). 228. R. vulpina, paratype from Tereksai (SMNH). Scale bars: 1.0 mm.
FIG. 220 in Mammals collected and illustrated by the Baudin Expedition to Australia and Timor (1800-1804): A review of the current taxonomy of specimens in the Muséum national d'Histoire naturelle de Paris and the illustrations in the Muséum d'Histoire naturelle du Havre
FIG. 220. — Pteropodidae. Charles-Alexandre Lesueur. Pencil - 20 × 26 cm. Inv. no. 80045. Credits: MHNH.
Figures 220–223 in The Australian species of Encarsia Förster (Hymenoptera, Chalcidoidea: Aphelinidae), parasitoids of whiteflies (Hemiptera, Sternorrhyncha, Aleyrodidae) and armoured scale insects (Hemiptera, Coccoidea: Diaspididae)
Figures 220–223. Encarsia perseus (Girault), holotype female. (220) Type specimen. (221) Mesosoma and base of gaster. (222) Antenna. (223) Fore wing.
Figs. 218–221. Lampona cumberland, new species. 218. Left male palp, ventral view. 219. Same, retrolateral view. 220. Epigynum, ventral view. 221 in A Relimitation And Revision Of The Australasian Ground Spider Family Lamponidae (Araneae: Gnaphosoidea)
Figs. 218–221. Lampona cumberland, new species. 218. Left male palp, ventral view. 219. Same, retrolateral view. 220. Epigynum, ventral view. 221. Same, dorsal view.
FIGURES 220–231 in Three new genera of soft-bodied goblin spiders (Araneae, Oonopidae) from Mexico, Belize, and Guatemala
FIGURES 220–231. Guatemoonops purulha, new species, male (220–225) and female (226–231). 220. Carapace, lateral view. 221. Same, anterior view. 222. Sternum, ventral view. 223. Palp, prolateral view. 224. Same, dorsal view. 225. Same, retrolateral view. 226. Habitus, dorsal view. 227. Abdomen, anterior view. 228. Epigastric area, ventral view. 229. Same, dorsal view. 230. Genitalia, ventral view. 231. Same, dorsal view.
FIGURES 210–220 in The Goblin Spider Genus Costarina (Araneae, Oonopidae), Part 2: the Costa Rican fauna
FIGURES 210–220. Costarina carrillo, new species, male (210–215) and female (216–220). 210. Left palp, prolateral view. 211. Same, ventral view. 212. Same, retrolateral view. 213. Left embolus, prolateral view. 214. Same, ventral view. 215. Same, retrolateral view. 216. Sternum, ventral view. 217. Abdomen, lateral view. 218. Same, ventral view. 219. Digested female genitalia, ventral view. 220. Same, dorsal view.
FIGS. 220–229 in The Caribbean Goblin Spider Genera Scaphioides and Hortoonops (Araneae, Oonopidae)
FIGS. 220–229. Scaphioides reducta Bryant, male (220, 221, 223–226) and female (222, 227–229). 220. Carapace, dorsal view. 221, 222. Sternum, ventral view. 223. Left embolus, prolateral view. 224. Same, retrolateral view. 225. Left palp, prolateral view. 226. Same, retrolateral view. 227. Epigastric region, ventral view. 228. Genitalia, ventral view. 229. Same, dorsal view.
FIGS. 220–234 in The Goblin Spider Genus Costarina (Araneae, Oonopidae), Part 1
FIGS. 220–234. Costarina macha, new species, male (220–228) and female (229–234). 220. Carapace, dorsal view. 221, 229. Same, anterior view. 222. Same, lateral view. 223. Sternum, ventral view. 224. Left embolus, prolateral view. 225. Same, ventral view. 226. Left palp, prolateral view. 227. Same, ventral view. 228. Same, retrolateral view. 230. Abdomen, lateral view. 231. Same, ventral view. 232, 233. Genitalia, ventral view. 234. Same, dorsal view.
FIGS. 220–226 in The Malagasy Goblin Spiders of the New Genus Molotra (Araneae: Oonopidae)
FIGS. 220–226. Molotra molotra, new species, female internal genitalia, oblique sagittal section (PBI_01990). 220. Left section, dorsolateral view, arrow to gonopore. 221. Right section, lateral view, showing posterior and anterior apodemes, arrow points to anterior lobe of the posterior median process. 222. Left section, magnified view, arrow shows the junction of the median knob (GAp) to base of T-shaped process (TP), cuticle cross section highlighted. 223. Right section, magnified view, arrow shows anterior opening of gonopore, cuticle cross section highlighted. 224. Left section, a more posterior view. 225. Same, magnified view, arrows show edges of PMP. 226. Abdomen, ventral view, showing left half of sagittal section. AA = anterior apodeme, GAp = globular appendix (median knob), PA = posterior apodeme, TP = T-shaped process. Scale bars: 200 µm (226), 50 µm (all others).
Figs. 217–224. Simlops platnicki, female. 217. Cephalothorax, dorsal view. 218. Same, anterior view. 219. Same, ventral view. 220. Lateral view. 221. Dorsal view. 222. Cephalothorax, ventroposterior view. 223. Abdomen, ventral view. 224 in Simlops, A New Genus Of Goblin Spiders (Araneae: Oonopidae) From Northern South America
Figs. 217–224. Simlops platnicki, female. 217. Cephalothorax, dorsal view. 218. Same, anterior view. 219. Same, ventral view. 220. Lateral view. 221. Dorsal view. 222. Cephalothorax, ventroposterior view. 223. Abdomen, ventral view. 224. Epigyne, ventral view.
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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.