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2,359 results for “Southwest”
Figure 1 in Do Morphological Similarities and human-induced dispersal explain the non-native occurrence of Serpulidae (Annelida) in Southwest Atlantic? Taxonomic detailing is the key
Figure 1. Distribution of the sampling locations at Sepetiba Bay, Ilha Grande and Marambaia Island in the Rio de Janeiro coast.
Figure 9 from: Mu Y-H, Hu Y-P, Wei Y-L, Yuan H-S (2020) Hydnaceous fungi of China 8. Morphological and molecular identification of three new species of Sarcodon and a new record from southwest China. MycoKeys 66: 83-103. https://doi.org/10.3897/mycokeys.66.49910
Figure 9 SEM of basidiospores of Sarcodon lidongensis (holotype: IFP 019357).
Figure 8 from: Mu Y-H, Hu Y-P, Wei Y-L, Yuan H-S (2020) Hydnaceous fungi of China 8. Morphological and molecular identification of three new species of Sarcodon and a new record from southwest China. MycoKeys 66: 83-103. https://doi.org/10.3897/mycokeys.66.49910
Figure 8 Basidiocarps of Sarcodon lidongensis (holotype: IFP 019357).
Figure 5 from: Mu Y-H, Hu Y-P, Wei Y-L, Yuan H-S (2020) Hydnaceous fungi of China 8. Morphological and molecular identification of three new species of Sarcodon and a new record from southwest China. MycoKeys 66: 83-103. https://doi.org/10.3897/mycokeys.66.49910
Figure 5 Basidiocarps of Sarcodon grosselepidotus (holotype: IFP 012529).
Figure 6 from: Mu Y-H, Hu Y-P, Wei Y-L, Yuan H-S (2020) Hydnaceous fungi of China 8. Morphological and molecular identification of three new species of Sarcodon and a new record from southwest China. MycoKeys 66: 83-103. https://doi.org/10.3897/mycokeys.66.49910
Figure 6 SEM of basidiospores of Sarcodon grosselepidotus (holotype: IFP 012529).
Figure 3 from: Mu Y-H, Hu Y-P, Wei Y-L, Yuan H-S (2020) Hydnaceous fungi of China 8. Morphological and molecular identification of three new species of Sarcodon and a new record from southwest China. MycoKeys 66: 83-103. https://doi.org/10.3897/mycokeys.66.49910
Figure 3 SEM of basidiospores of Sarcodon coactus (holotype: IFP 019351).
Figure 2 from: Mu Y-H, Hu Y-P, Wei Y-L, Yuan H-S (2020) Hydnaceous fungi of China 8. Morphological and molecular identification of three new species of Sarcodon and a new record from southwest China. MycoKeys 66: 83-103. https://doi.org/10.3897/mycokeys.66.49910
Figure 2 A basidiocarp of Sarcodon coactus (holotype: IFP 019351).
Appendix 1 in Saproxylic beetle (Coleoptera) communities and forest management practices in coniferous stands in southwest Nova Scotia, Canada
Appendix 1. Species, trophic categories, and numbers of Coleoptera collected
Temperature and fluid pressurization effects on frictional stability of shale faults reactivated by hydraulic fracturing in the Changning Block, Southwest China
<p class="Affiliation"><span>A shale fault reactivated during multi-stage hydraulic fracturing in the Changning block in the Sichuan Basin, southwest China accompanied a cluster of small earthquakes with the largest reaching<span> </span></span><em>M<sub>L</sub></em><span><span> </span>~0.8. We illuminate the underlying mechanisms of fault reactivation through measurements of frictional properties on simulated fault gouge under hydrothermal conditions. Velocity-stepping experiments were performed at a confining pressure of 60<span> </span></span><em>MPa</em><span>, temperatures from 30 to 300<span> </span></span><em>℃</em><span>, pore fluid pressures from 10 to 55<span> </span></span><em>MPa</em><span><span> </span>and shear velocities between 0.122 and 1.22<span> </span></span><em>μm/s</em><span>. Results show that the gouge is frictionally strong with coefficient of friction of 0.6-0.7 across all experimental conditions. At observed<span> </span></span><em>in-situ</em><span><span> </span>pore fluid pressure (30<span> </span></span><em>MPa</em><span>), the slip stability response is characterized by velocity strengthening at temperatures of 30-200<span> </span></span><em>℃</em><span><span> </span>and velocity weakening at temperatures of 250-300<span> </span></span><em>℃</em><span>. Increasing the pore fluid pressure can increase values of (</span><em>a – b</em><span>) at temperatures ≥ 200<span> </span></span><em>℃</em><span>, narrowing the temperature range where velocity weakening occurs. At the<span> </span></span><em>in-situ</em><span><span> </span>temperature (90</span><em>℃</em><span>), the simulated gouge shows only velocity strengthening behavior and aseismic slip at elevated pore fluid pressures, contrary to the observed seismicity. We postulate that the aseismic slip at elevated pore fluid pressures may trigger seismicity by activating adjacent earthquake-prone faults.</span></p>
Soil physical-hydric attributes under no-tillage crop in the savannah of the Southwest region of the Piaui State, Brazil
<p>The soils of the savannah region, Piaui State, Brazil, are favorable to agriculture; however, intensive use combined with inadequate management has caused soil degradation in the region. For this reason, studies focused on the use of alternative production systems as a no-till system (SPD), have become essential. Thus, the objective was to evaluate the changes in the physical-hydric attributes and organic matter in Oxisols under different times of no-tillage crop under straw in savannah areas of the Southwest region of the Piaui State, Brazil. Field data collection was carried out on commercial farms in the municipalities of Baixa Grande do Ribeiro (07° 48'10" S, 45° 00'60" W and altitude of 600 m), Uruçuí (08º14'07" S, 44º38'09" W and altitude of 550 m) and Bom Jesus (09º10'35" S, 44º50'36" W and altitude of 600 m), Piaui State, Brazil. The areas had different times of no-tillage crop under straw: SPD2 - 2 years, SPD3 - 3 years, SPD6 - 6 years, SPD10 - 10 years, SPD12 - 12 years, SPD15 - 15 years and SPD18 - 18 years old, as well as areas of native forest (control), in which the physical-water attributes were evaluated (distribution of granulometric fractions, soil density, total porosity, macro and microporosity, available water and field capacity), organic matter and the humid fraction. The database is organized as follows: identification of sampling sites, characterization of no-tillage systems under straw, soil physical-hydric attributes by layers and figures with the location of the farms and points sampling.</p>
Figure 3 from: Lu Z, Sun Y (2020) Rhamnella intermedia (Rhamnaceae), a new evergreen species from southwest Guangxi. PhytoKeys 159: 115-126. https://doi.org/10.3897/phytokeys.159.53177
Figure 3 Phenotypic clustering based on principal component analysis.
Figure 6 from: Liu B, Zhang F (2024) Hotwheels gen. nov., a new ground spider genus (Araneae, Gnaphosidae) from southwest China. ZooKeys 1189: 337-347. https://doi.org/10.3897/zookeys.1189.115996
Figure 6 Map showing type locality and other records of Hotwheels sisyphus sp. nov.
Figure 2 from: Li S-G, Huang Q-C, Liu S-Y, Xiang C-L, Wang H-C (2024) Isodon xiaoluzhiensis (Lamiaceae, Nepetoideae), a new species from Yunnan, southwest China. PhytoKeys 237: 191-200. https://doi.org/10.3897/phytokeys.237.117071
Figure 2 Holotype of Isodon xiaoluzhiensis (YUKU-05008415).
Figure 4 from: Chen T, Wang T-T, Liu S-Y, Wang H-C (2024) Gentiana mopanshanensis (Gentianaceae), a new species from Yunnan, southwest China. PhytoKeys 239: 215-228. https://doi.org/10.3897/phytokeys.239.119800
Figure 4 Geographical distribution of Gentiana mopanshanensis sp. nov. (red dot).
Figure 3 from: Chen T, Wang T-T, Liu S-Y, Wang H-C (2024) Gentiana mopanshanensis (Gentianaceae), a new species from Yunnan, southwest China. PhytoKeys 239: 215-228. https://doi.org/10.3897/phytokeys.239.119800
Figure 3 Holotype of Gentiana mopanshanensis sp. nov.(YUKU-05008414).
Figure 5 from: Yao L, Yang Y, Zhao X-L, Wang Q-P, Wang H-C (2024) Indigofera jintongpenensis (Fabaceae, Papilionoideae, Indigofereae), a new species from Yunnan, southwest China. PhytoKeys 241: 91-101. https://doi.org/10.3897/phytokeys.241.120230
Figure 5 Geographical distribution of Indigofera jintongpenensis sp. nov. (red dot).
Figure 3 from: Yao L, Yang Y, Zhao X-L, Wang Q-P, Wang H-C (2024) Indigofera jintongpenensis (Fabaceae, Papilionoideae, Indigofereae), a new species from Yunnan, southwest China. PhytoKeys 241: 91-101. https://doi.org/10.3897/phytokeys.241.120230
Figure 3 Holotype of Indigofera jintongpenensis (YUKU-05008413).
Figure 1 from: Zhou H, Li S, Shen Z, Liu S, Rao D (2024) A new species of Hemiphyllodactylus (Squamata, Gekkonidae) from southwest Yunnan, China. ZooKeys 1197: 197-213. https://doi.org/10.3897/zookeys.1197.117359
Figure 1 Distribution map of the genus Hemiphyllodactylus in Yunnan Province, China.
eBird Checklists (2017-2018) and Environmental Covariates for 31 Avian Species in Southwest Oregon, USA
<p>Dataset of eBird Checklists (2017-2018) and Environmental Covariates for 31 Avian Species in Southwest Oregon, USA</p> <p><strong>checklist_data.zip</strong>: contains eBird checklists for 31 bird species over southwestern Oregon, United States.</p> <p><strong>occupancy_feature_raster.zip</strong>: occupancy feature rasters for informing spatial clustering algorithms and species distribution models, and for predicting occupancy maps.</p>
Catches of Argentine hake patagonian stock in the Southwest Atlantic
<p>The dataset includes catches of Argentine hake from the patagonian stock specifically, in the EEZ of Argentina and in the waters around the Falkland Islands under UK control. Data from 1987 to 2020 in thousand tonnes.</p>
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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.