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2,142 results for “by contact”
Fig. 5 in Introgression at the emerging secondary contact zone of magpie Pica pica subspecies (Aves: Corvidae): integrating data on nuclear and mitochondrial markers, vocalizations, and field observations
Fig. 5 Time-calibrated Bayesian tree based on mitochondrial control region sequences of Pica pica. Numbers at the branches indicate Bayesian posterior probability values (left) and bootstrap values of the ML analysis (right, in percent). Triangle widths are proportional to specimen numbers. Blue bars next to nodes indicate 95% credibility intervals for their age estimates. The figures in bold and the time scale below are in million years (Ma) before present
Fig. 4 in Introgression at the emerging secondary contact zone of magpie Pica pica subspecies (Aves: Corvidae): integrating data on nuclear and mitochondrial markers, vocalizations, and field observations
Fig. 4 Phylogenetic medianjoining network based on 256 mitochondrial control region sequences. Sizes of circles correspond to the number of birds sharing this haplotype; branch lengths are proportional to the number of substitutions and those over 2 are shown at the branches. Haplogroups 1–6 are indicated by numbers
Fig. 2 in Introgression at the emerging secondary contact zone of magpie Pica pica subspecies (Aves: Corvidae): integrating data on nuclear and mitochondrial markers, vocalizations, and field observations
Fig. 2 Map of sampling localities for mitochondrial DNA analysis in the zone of contact between Pica pica leucoptera and Pica pica jankowskii. Distribution of haplotypes is indicated by colours: Pica
Processed Hi-C contact matrices for "Three invariant Hi-C interaction patterns: applications to genome assembly"
<p>Processed Hi-C interaction matrices, saved in numpy npz format.</p> <p>Matrices were processed using Dekker lab cMapping pipeline.</p> <p>Raw sequence data was taken from:</p> <p>Hap1: Haarhuis et al 10.1016/j.cell.2017.04.013</p> <p>IMR90, H1ESC, MESC, MCORTEX: Dixon et al 10.1038/nature11082</p> <p>Worm: Crane et al 10.1038/nature14450</p> <p>Caulobacter: Le et al 10.1126/science.1242059</p> <p> </p>
Original reconstructions for the research in "X-ray nanotomography of individual pulp fibre bonds reveals the effect of wall thickness on contact area"
<p>The following data set contains the original cropped and straightened reconstruction stacks of all the cellulose fibre bond samples imaged for the study outlined in the article<strong> “</strong>X-ray nanotomography of individual pulp fibre bonds reveals the effect of wall thickness on contact area” by T. Sormunen, A. Ketola, A. Miettinen, J. Parkkonen and E. Retulainen. The article is currently (23.11.2018) in decision phase.</p> <p>In addition, the algorithm for reconstruction stack processing conducted in ImageJ and the MATLAB function for contact area and pixelwise correlation calculations are included.</p>
Data for the analysis from "Evidence for positive priming of leaf litter decomposition by contact with eutrophic pond sediments"
<p>These are the data files used in the analysis of the results of the experiments that are reported in the manuscript "Evidence for positive priming of leaf litter decomposition by contact with eutrophic pond sediments". More details on the analysis can be found in at: https://github.com/KennyPeanuts/sediment_priming</p>
Processed Hi-C contact matrices for "Single-cell DNA replication profiling identifies spatiotemporal developmental dynamics of chromosome organization"
<p>Processed Hi-C interaction matrices (iterative correction) saved in .hic format (40kb bins).</p> <p>.hic files were generated by juicer pipeline using processed Hi-C interaction matrices.</p> <p>Only <em>cis </em>interactions were available.</p> <p>To extract the data, please see </p> <p>https://github.com/aidenlab/juicer/wiki/Data-Extraction</p>
Photoelectron spectroscopy data of InP(100) surfaces in contact with water and oxygen
<p>Raw photoelectron spectroscopy data files (XPS and UPS) of InP(100) surfaces before and after adsorption of water and oxygen in ultra-high vacuum. The data was used to produce the graphs in the article M. M. May, H.-J. Lewerenz, and T. Hannappel. “Optical in situ Study of InP(100) Surface Chemistry: Dissociative Adsorption of Water and Oxygen”. <em>Journal of Physical Chemistry C</em> <strong>118</strong>(33) (2014), pp. 19032–19041. <a href="https://doi.org/10.1021/jp502955m">doi:10.1021/jp502955m</a>. Further details can be found in the README.md.</p>
Figure 4 in Distribution of two pine processionary moth species in Turkey evidences a contact zone
Figure 4. Distribution of pure T. wilkinsoni (black) and T. pityocampa (white), introgressed individuals (gray with Ia and Ib), dispersal routes and barriers, and the contact zone. Color and sign codes are given in the map legend.
Figure 3 in Distribution of two pine processionary moth species in Turkey evidences a contact zone
Figure 3. Consensus haplotype trees for COI, ITS-1, and photolyase. Three clades of wilkinsoni haplotypes are shown in shaded rectangles. All branches have bootstrap support values> 60%.
Figure 1 in Distribution of two pine processionary moth species in Turkey evidences a contact zone
Figure 1. Map of sampling locations and coniferous forests in Turkey and Cyprus (forest data is from EC-JRC Forest Map, 2006).
Figure 2 in Distribution of two pine processionary moth species in Turkey evidences a contact zone
Figure 2. Distribution maps of a) COI, b) ITS-1, and c) photolyase haplotypes. Haplotypes are colored and numbered in accordance with the network. Color and sign codes are given in the legends on the maps. d) Haplotype networks for COI, ITS-1, and photolyase. Numbers on the dashed lines indicate how many mutations separate two relevant haplotypes.
Figure 9 in The Leluh Royal Tombs and Pre-Contact Mortuary Patterns on Kosrae Island, Micronesia
Figure 9. Disk bead necklaces – Hambruch's reconstructions of necklaces, and examples of shell lancet-shaped necklace spreaders and disk beads from Hambruch's Inol-1 tomb excavation (Hambruch 1919).
Figure 2 in Mollusk Foraging and Gendered Labor at Litekyan (Ritidian) During the Spanish Contact Period in Guam
Figure 2. Map of the Guam National Wildlife Refuge showing the location of the two excavated latte (near the West End Cave) (Fig. 60 in Carson 2017).
Figure 6 in The Leluh Royal Tombs and Pre-Contact Mortuary Patterns on Kosrae Island, Micronesia
Figure 6. Hambruch's drawings showing the tomb shape and crypt locations (Hambruch 1919:257, Figs. 140 & 141).
Figure 6 in Mollusk Foraging and Gendered Labor at Litekyan (Ritidian) During the Spanish Contact Period in Guam
Figure 6. Visual representation of Latte 1 and 2. The units that were sampled are highlighted with an X.
Figure 5 in The Leluh Royal Tombs and Pre-Contact Mortuary Patterns on Kosrae Island, Micronesia
Figure 5. Detailed map of Insruun, showing locations of test units, seka and food pounding stones, and artifacts (Adapted from Cordy 1993:Fig. 57).
Figure 5 in Mollusk Foraging and Gendered Labor at Litekyan (Ritidian) During the Spanish Contact Period in Guam
Figure 5. Household excavation site (Miller et al. 2021). Latte Building 1 reveals cooking hearth features alongside its structure.
Figure 4 in The Leluh Royal Tombs and Pre-Contact Mortuary Patterns on Kosrae Island, Micronesia
Figure 4. Detailed map of Insru/Inol. Seka/food pounding stones with Roman numerals, and artifacts marked with "x" and numbers. Our 1980-81 test units are small squares. We excavated in the crypts of all four tombs in 1982 and 1984. Athens' 1989 test unit was in Inol-1 against the west wall enclosing the Inol-2 tomb (Adapted from Cordy 1993: Fig. 55).
Figure 3. Shun & Cordy 1980-81 in The Leluh Royal Tombs and Pre-Contact Mortuary Patterns on Kosrae Island, Micronesia
Figure 3. Shun & Cordy 1980-81 map of Leluh, showing the compounds and their names. Posral was the king's compound; Insru/Inol and Insruun were the royal tomb compounds (Adapted from Cordy 1993: Fig. 34).
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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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.