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2,015 results for “context”
FIGURE 4 in Trans-Japan Sea land-bridge disjunction: A case of vicariance in the subterranean genus Nipponasellus (Crustacea, Isopoda, Asellidae) in a largescale biogeographical context
FIGURE 4. Habitus of examined specimens: (A, B) Nipponasellus sudzukhensis spec. nov., holotype X54657/Cr-2475-FEFU, male, 5.5 mm, dorsal view (A); lateral view (B). (C, D) Nipponasellus matsumotoi spec. nov., holotype X54659/Cr-2477-FEFU, male, 5.0 mm, dorsal view (C); lateral view (D).
FIGURE 9 in Trans-Japan Sea land-bridge disjunction: A case of vicariance in the subterranean genus Nipponasellus (Crustacea, Isopoda, Asellidae) in a largescale biogeographical context
FIGURE 9. Scanning electron micrographs of pleopod 2 of Nipponasellus sudzukhensis spec. nov., adult male: (A) pair of pleopods 2, ventral view; (B) endopodite of pleopod 2, right; (C, D) appendix masculina enlarged, right and left.
FIGURE 8. Nipponasellus sudzukhensis spec. nov., holotype X54657 in Trans-Japan Sea land-bridge disjunction: A case of vicariance in the subterranean genus Nipponasellus (Crustacea, Isopoda, Asellidae) in a largescale biogeographical context
FIGURE 8. Nipponasellus sudzukhensis spec. nov., holotype X54657/Cr-2475-FEFU, male, 5.0 mm: (A) pleotelson, ventral view (g.p., genital papilla); (B) pleopod 1; (C) pleopod 2, with schematic outline of details of appendix masculina; (D) pleopod 3; (E) pleopod 4; (F) pleopod 5; (G) uropod. Paratype X54658/Cr-2476-FEFU, female, 6.0 mm: (H) pleopod 2.
FIGURE 12. Nipponasellus matsumotoi spec. nov., holotype X54659 in Trans-Japan Sea land-bridge disjunction: A case of vicariance in the subterranean genus Nipponasellus (Crustacea, Isopoda, Asellidae) in a largescale biogeographical context
FIGURE 12. Nipponasellus matsumotoi spec. nov., holotype X54659/Cr-2477-FEFU, male, 5.5 mm: (A) pleotelson, ventral view, with enlarged section of coxopodite 7 (g.p., genital papilla); (B) pleopod 1; (C) pleopod 2, with schematic outline of details of appendix masculina; (D) pleopod 3; (E) pleopod 4; (F) pleopod 5; (G) uropod. Paratype X54660/Cr-2478-FEFU, female, 4.2 mm: (H) pleopod 2.
FIGURE 3 in Trans-Japan Sea land-bridge disjunction: A case of vicariance in the subterranean genus Nipponasellus (Crustacea, Isopoda, Asellidae) in a largescale biogeographical context
FIGURE 3. Consensus tree of genera and informal groups of Asellidae showing distribution of character states, with Nipponasellus highlighted in gray and Asellus-pattern highlighted in green. Additive characters nos. 2, 7, 8, 9, 10, 11. Black rectangles – unreversed apomorphies, empty rectangles – homoplasious apomorphies.
FIGURE 10. Nipponasellus matsumotoi spec. nov., holotype X54659 in Trans-Japan Sea land-bridge disjunction: A case of vicariance in the subterranean genus Nipponasellus (Crustacea, Isopoda, Asellidae) in a largescale biogeographical context
FIGURE 10. Nipponasellus matsumotoi spec. nov., holotype X54659/Cr-2477-FEFU, male, 5.5 mm: (A) antennula; (B) antenna; (C) mandible, left; (D) mandible, right; (E) labium; (F) labrum; (G) maxillula, with enlarged outer plate; (H) maxilla, with enlarged inner plate; (I) maxilliped.
FIGURE 2 in Trans-Japan Sea land-bridge disjunction: A case of vicariance in the subterranean genus Nipponasellus (Crustacea, Isopoda, Asellidae) in a largescale biogeographical context
FIGURE 2. Worldwide distribution (A) Asellus macrogroup (green dots) and Calasellus-Columbasellus macrogroup (blue dots); (B) Caecidotea-Proasellus macrogroup (maroon dots), showing localization of Nipponasellus (orange dots). Shaded area indicates hypothetical outline of Late Paleozoic Angarida (Siberia) mainland (after Ganelin 2021).
FIGURE 7. Nipponasellus sudzukhensis spec. nov., holotype X54657 in Trans-Japan Sea land-bridge disjunction: A case of vicariance in the subterranean genus Nipponasellus (Crustacea, Isopoda, Asellidae) in a largescale biogeographical context
FIGURE 7. Nipponasellus sudzukhensis spec. nov., holotype X54657/Cr-2475-FEFU, male, 5.0 mm: (A) pereopod 1, with enlarged palm; (B) pereopod 2; (C) pereopod 3; (D) pereopod 4; (E) pereopod 5; (F) pereopod 6; (G) pereopod 7.
FIGURE 6. Nipponasellus sudzukhensis spec. nov., holotype X54657 in Trans-Japan Sea land-bridge disjunction: A case of vicariance in the subterranean genus Nipponasellus (Crustacea, Isopoda, Asellidae) in a largescale biogeographical context
FIGURE 6. Nipponasellus sudzukhensis spec. nov., holotype X54657/Cr-2475-FEFU, male, 5.0 mm: (A) antennula; (B) antenna; (C) mandible, left; (D) mandible, right; (E) labium; (F) maxillula, with enlarged outer plate; (G) maxilla; (H) maxilliped.
Dataset for "Context effects on the perception of saturation of fruit colors in still-life paintings" by Toscani, Wolf, Gegenfurtner & Braun. Journal of Vision, in press
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Fig. 1 in Estimating Migration of Gonioctena quinquepunctata (Coleoptera: Chrysomelidae) Inside a Mountain Range in a Spatially Explicit Context
Fig. 1. Strategy developed in this study to compare observed and simulated SNP data in a spatially explicit context, using the new DSVSF statistic. Allele frequencies per SNP are recorded for each sampled grid cell and organized in an array. Frequency arrays can then be categorized into patterns by associating them with one of three categories, according to their frequency (category 0 corresponds to a frequency ≤ 0.1, category 2 to a frequency ≥ 0.9, and category 1 otherwise). We then compared the resulting observed and simulated distributions of pattern frequencies using a standard dissimilarity index (see text). Each simulated distribution shown at the bottom of the figure corresponds to one specific combination of Ne and m values.
Fig. 5 in Estimating Migration of Gonioctena quinquepunctata (Coleoptera: Chrysomelidae) Inside a Mountain Range in a Spatially Explicit Context
Fig. 5. Results of the validation analyses. Each dot presents, for one ABC analysis run on a pseudo-observed data set, the estimated value of Nm as a function of its known value. Dots are black when the real value was included inside the 95% highest posterior density interval, white otherwise. Real values are along the red line.
Fig. 4 in Estimating Migration of Gonioctena quinquepunctata (Coleoptera: Chrysomelidae) Inside a Mountain Range in a Spatially Explicit Context
Fig. 4. Principal component analysis (PCA) graph resulting from analyzing all SNPs from all sampled individuals. Each population is identified by a different color.
Fig. 3 in Estimating Migration of Gonioctena quinquepunctata (Coleoptera: Chrysomelidae) Inside a Mountain Range in a Spatially Explicit Context
Fig. 3. Grids defining the spatially explicit context used in the coalescence models for simulating SNP data with PhyloGeoSim. Insects are absent from white cells but are potentially present in orange cells. Blue dots on the right grid (15,000 a—0) depict sampling locations.The left grid describes the spatial context assumed during the last glaciation.
GTnum GEST-PRO #PratiquesHybrides - Enseigner en contexte hybride. Plan de gestion de données
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Fig. 1 in Jumping to new hosts: the diversification of flea beetles (Coleoptera: Chrysomelidae: Alticini) in the context of their host plant associations
Fig. 1. Tree reconstruction results of the 113 taxa mitogenome data set. a) Maximum likelihood tree inferred from nucleotide data set using IQ-TREE. Node numbers show bootstrap support values. b) Bayesian tree inferred from the amino acid taxa data using PhyloBayes under the site-heterogeneous CAT-GTR model. Node numbers show the posterior probability values. Alticini representatives (from top to bottom): Blepharida sacra, Altica bicarinata, Chaetocnema angustula, Oedionychis cincta, Dibolia alpestris, and Longitarsus gruevi. Picture copyright: Lech Borowiec,Wroclaw, Poland, used with permission.
Fig. 2 in Jumping to new hosts: the diversification of flea beetles (Coleoptera: Chrysomelidae: Alticini) in the context of their host plant associations
Fig. 2. Results of diversification rate analyses. a) Results of the branch-specific diversification rate analyses as inferred in BAMM, based on a uniform sampling strategy. Colors indicate relative speciation rates along each branch on the chronogram (increasing from blue to red).The red circles on the branches indicate regime shifts in the maximum shift credibility (MSC) configuration. b) Results of the branch-specific diversification rates as indicated by the LSBDS model in RevBayes. Colors indicate relative speciation rates along each branch on the chronogram (increasing from violet to yellow). c) Net diversification rates as indicated by the best BayesRate model. Alticini representatives (right to left): Psylliodes chalcomera, Phyllotreta armoraciae, Oedionychis cincta, Longitarsus gruevi, and Altica bicarinata. Picture copyright: Lech Borowiec,Wroclaw, Poland, used with permission.
Dataset for the paper - "Synchronized LFP rhythmicity in the social brain reflects the context of social encounters"
<p>Dataset for the paper:</p><p>Synchronized LFP rhythmicity in the social brain reflects the context of social encounters</p><p>Alok Nath Mohapatra,*, David Peles, Shai Netser, Shlomo Wagner</p><p>*Corresponding author: Alok Nath Mohapatra, Email: thinkalok@gmail.com </p><p>Affiliation: Sagol Department of Neurobiology, Faculty of Natural Sciences, University of Haifa, POB. 3338, Haifa 3103301, Israel.</p><p> </p>
Kniende Engel / Kneeling Angel - #1 - In context
This a copy of [Kniende Engel - Kneeling Angel - 1 of 2](https://sketchfab.com/3d-models/kniende-engel-kneeling-angel-1-of-2-7c6471d3946d4dc0bbe99a1b492a3f01) placed in the original scenery. Source: Objaverse 1.0 / Sketchfab
A Context-Driven Approach for Co-Auditing Smart Contracts with The Support of GPT-4
<p>This is the latest version that contains all the data related to the experiment. This version is a merge of all the previous versions and does not add any new data</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.