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55 results for “bedrock”

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zenodo28/100

Data used in the article "Bedrock radioactivity influences the rate and spectrum of mutation"

<p>Data used in the article entitled &lsquo;Bedrock radioactivity influences the rate and spectrum of mutation&rsquo; by Nathana&euml;lle Saclier, Patrick Chardon, Florian Malard, Lara Konecny-Dupr&eacute;, David Eme, Arnaud Bellec, Vincent Breton, Laurent Duret, Tristan Lef&eacute;bure and Christophe J. Douady.</p> <p>Table 1: Description of sampling sites (species found and measurements of radioactivity).</p> <p>Table 2: Raw activity for each radionuclide in the selected sites</p> <p>Table 3: Computational methods to model the effective dose of radioactivity.</p> <p>Table 4: Corrected activity for each radionuclides.</p> <p>Table 5: Number of reads for each sequenced transcriptome</p> <p>Table 6: Mutation counts for each type of mutation, computed on all positions.</p> <p>Table 7: Mutation counts for each type of mutation, computed on third positions.</p> <p>Table 8: Relative frequency for each type of mutation, computed on all positions.</p> <p>Table 9: Relative frequency for each type of mutation, computed on third positions.</p> <p>&nbsp;</p> <p>&nbsp;</p> <p>&nbsp;</p>

opencc-by-4.0Jul 2019View details →
zenodo28/100

Text-fig. 2. Stratigraphical section at Předboj (according to Žítt et al. (1999), modified). Legend: 1 – Proterozoic bedrock, 2 – conglomerate, 3 – marl, marlstone, Ph – phosphatic crusts, R – reworked deposit, C – Upper Cenomanian, T – Lower Turonian, Q – Quaternary deposits, c – occurrence of invertebrate coprolites. in Sabellid And Serpulid Worms (Polychaeta, Canalipalpata, Sabellida, Sabellidae, Serpulidae) From The Rocky Coast Facies (Late Cenomanian) At Předboj Near Prague

Text-fig. 2. Stratigraphical section at Předboj (according to Žítt et al. (1999), modified). Legend: 1 – Proterozoic bedrock, 2 – conglomerate, 3 – marl, marlstone, Ph – phosphatic crusts, R – reworked deposit, C – Upper Cenomanian, T – Lower Turonian, Q – Quaternary deposits, c – occurrence of invertebrate coprolites.

opencc-by-4.0Oct 2015View details →
zenodo28/100

Data for JGR - Drought Differently Impacts Vegetation Activity According to the Bedrock Types and Sub-seasons

<p>For peer review purposes only</p>

opencc-by-4.0Sep 2024View details →
zenodo28/100

Bedrock fracture propagation

<p>The data for numerical results presented in the manuscript submitted to JGRES.</p>

opencc-by-4.0Jun 2023View details →
nasa28/100

Greenland 5 km DEM, Ice Thickness, and Bedrock Elevation Grids, Version 1

A Digital Elevation Model (DEM), ice thickness grid, and bedrock elevation grid of Greenland, acquired as part of the PARCA program. DEM data are a combination of ERS-1 and Geosat satellite radar altimetry data, Airborne Topographic Mapper (ATM) data, and photogrammetric digital height data. Ice thickness data are based on approximately 700,000 data points collected in the 1990s from a University of Kansas airborne Ice Penetrating Radar (IPR). Nearly 30,000 data points were collected in the 1970s from a Technical University of Denmark (TUD) airborne echo sounder.The ice thickness grid was subtracted from the DEM to produce a grid of bedrock elevation values. Data set applications include studies of gravitational driving stress and ice volume (mass balance) of the Greenland Ice Sheet.

restrictednotspecifiedApr 2025View details →
zenodo24/100

Seismic efficiency of meteoroid strikes in Martian bedrock and regolith

<p>Data set used in the submitted paper</p>

opencc-by-4.0Aug 2020View details →
zenodo24/100

Near-Surface Full-Waveform Inversion Reveals Bedrock Control on Critical Zone Architecture Resources

<p>Near-Surface Full-Waveform Inversion Reveals Bedrock Control on Critical Zone Architecture Resources</p> <p>&nbsp;</p>

opencc-by-4.0Dec 2022View details →
zenodo24/100

Ice-penetrating radar data used in paper "Evaluating and locating a suitable bedrock drilling site near Zhongshan Station with airborne and ground-based observations"

<p>These are the ice-penetrating radar data used in Figure 4 of the paper "Evaluating and locating a suitable bedrock drilling site near Zhongshan Station with airborne and ground-based observations".</p> <p>The"read_image.m" file can be used to re-display Figure 4(a) of the paper, where the "x.mat", "y.mat", and "radar_profile_data.mat" are the x and y coordinates of the survey line, and the return power of the ice-penetrating radar data, respectively.</p> <p>The "Data_of_profile_A-A'(Figure_4b).xlsx" file includes two sheets. One is the "subglacial topography" sheet, which includes information about longitude, latitude, ice thickness, bed elevation, and hydraulic potential along the profile A-A'. The other sheet is the "BRP" sheet, which includes information about bed reflection power along the profile A-A'.</p>

opencc-by-4.0Mar 2024View details →
zenodo24/100

Bedrock type reversed latitudinal biodiversity gradient patterns in forest communities

<p>The data supporting the findings of the study titled "Bedrock type reversed latitudinal biodiversity gradient patterns in forest communities". Lithology mediated the intrinsicly climatic effects on latitudinal diversity gradient (LDG) through controlling the soil stock as the substrate resource storage capacity and thus forming the opposite LDG pattern in karst forests.&nbsp;</p>

embargoedcc-by-4.0Apr 2024View details →
zenodo24/100

Data used for Investigating the role of Amazonian mesoscale wind patterns and strength on the spatial distribution of Martian bedrock exposures

<p>This upload contains four distinct zipped files with several different datasets contained within used for the analysis in publication &quot;Investigating the role of Amazonian mesoscale wind patterns and strength on the spatial distribution of Martian bedrock exposures&quot; by Gary-Bicas et al., 2022 Description for each dataset is below.</p> <p>- External data (Contains data used for thermophysical and morphological analysis).</p> <ul> <li>binary files NBmap2007.bin&nbsp;(Putzig and Mellon, 2007) and nmap2003.bin( Putzig et al., 2005) . These contain global Mars thermal inertia maps using the Thermal Emission Spectrometer (TES) onboard Mars Global Surveyor (MGS)&nbsp;</li> <li>Comma separated files with terminations &quot;...USGS.csv&quot; these are files extracting data for the studies&#39; regions from the Mars global USGS geologic map #3292 (Tanaka et al., 2014)&nbsp;</li> <li>Shape file for bedrock designations (bedrock.[shp,shx,prj,dbf]) created by Cowart et al., 2019 where they mapped locations with bedrock exposures on Mars. We also include comma separated value files of the same maps for locations studied in this analysis (files with termination &quot;...bedrock.csv&quot;)</li> <li>Shape file included has the locations of craters identified in all study regions for analysis (craters.point.[shp,shx,prj,dbf] and craters.polygon.[shp,shx,prj,dbf]) paired with the comma separated value intracrat.csv</li> <li>Shape file with study locations for analysis (windo_modeling_locations_revised3.[shp,shx,prj,dbf])</li> </ul> <p>- MRAMS data files.zip</p> <ul> <li>Contains 11 simulated climate states for each of the ten study location in analysis as well as Jezero crater using the Mars Regional Atmospheric Modeling System (MRAMS, Rafkin and Michaels, 2019). For each simulated case there are 4 seasonal time steps equating to 44 simulated cases for each study region in total (484 files) see associated python software publication indicating ingestion and processing of MRAMS datasets</li> </ul> <p>- MRAMS output files.zip</p> <ul> <li>After ingesting the datasets in MARS data files.zip into a python algorithm (see associated software publication) values for Wind Erosion Potential were extracted from the datasets and weighted sums were conducted to get annual values (see manuscript&nbsp;publication and associated python software publication,&quot;MRAMS Data Output.ipynb&quot;) data was output into comma separated values for ease of use</li> </ul> <p>-MRAMS elevation and slope files.zip</p> <ul> <li>MRAMS data from output files.zip was further ingested into other algorithms to extract elevation and terrain slope values (see associated python software publication, &quot;MRAMS Data Output.ipynb&quot;) that were output into comma separated values for ease of use</li> </ul> <p>&nbsp;</p> <p>&nbsp;</p>

opencc-by-4.0Jul 2022View details →
ClinicalTrials.gov24/100

Evaluation of the IFuse Bedrock Technique in Association with Posterior Lumbosacral Fusion with Iliac Fixation.

ClinicalTrials.gov study NCT05276024. IPD Sharing: NO. Countries: 1. Publications: 0.

closedIPD-NOFeb 2026View details →
zenodo20/100

Dataset for "A Numerical Investigation of Bedrock Groundwater Recharge and Exfiltration on Soil Mantled Hillslopes."

<p>Model input and output data used to produce the results in the publication.</p>

opencc-by-4.0Oct 2019View details →
zenodo12/100

Particial Dataset to the article: Bedrock meadows: a distinct vegetation type in northwestern North America

<p>This dataset is part of the data used in the article &quot;Bedrock meadows: a distinct vegetation type in northwestern North America&quot; published in the Journal &quot;Applied Vegetation Science&quot;. It includes several datasets that are already merged:</p> <ol> <li>Fairbarns, 2001-2009, Unpublished data provided by Matt Fairbarns</li> <li>Roemer, 1996/97,&nbsp;Unpublished data provided by Hans Roemer</li> <li>Wagner, V., Spribille, T., Abrahamczyk, S. &amp; Bergmeier, E. (2014) Timberline meadows along a 1000-km transect in NW North America: Species diversity and community patterns. <em>Applied Vegetation Science</em>, 17: 129&ndash;141. https://doi.org/10.1111/avsc.12045</li> <li>Zapisocki, Z. (2021) <em>Patterns of </em><em>non-native plants among native grasslands in Alberta, Canada.</em> Master thesis, University of Alberta, Edmonton, Alberta, Canada.</li> <li>Zapisocki, Z., Murillo, R.A. &amp; Wagner, V. (2022) <em>Non-native plant invasions in prairie grasslands of </em><em>Alberta, Canada</em>. <em>Rangeland Ecology &amp; Management</em>, 83: 20&ndash;30. https://doi.org/10.1016/j.rama.2022.02.011</li> </ol> <p>Further data used in the article can be retrieved from the original sources (Damm, 2001; Waterton-Glacier National Park, 1994-2002; Hop et al., 2007).&nbsp;</p>

restrictedNov 2022View details →
zenodo12/100

bedrock DEM in the vicinity of lac de Bossons

<p>bedrock DEM in the vicinity of lac de Bossons calculated from radar 2021, radar 2022, bathymetry sept 2022 and surface DEM from sept 2022.&nbsp;</p> <p>Format: x, y (meters Lambert 2) and z ((meters NGF IGN 69).</p>

restrictedNov 2022View details →
zenodo8/100

Data to manuscript "Habitat and bedrock modify the relationship between plant and herbivore species richness in a South-African savanna"

<p>Data on herbivore abundance and species richness and grass cover and species richness obtained in the MOSAIK project. Detailed description is provided in the manuscript &quot;Habitat and bedrock modify the relationship between plant and herbivore species richness in a South-African savanna&quot;.</p>

restrictedJul 2023View details →

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allen-brain-atlas
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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.

ibl
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Last verified 2026-04-29Open record

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openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record