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5 results for “predictive soil mapping”

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zenodo48/100

Predicted soil organic carbon stock at 30 m in t/ha for 0-100 cm depth global / update of the map of mangrove forest soil carbon

<p>This is the 2nd update of maps produced by&nbsp;<a href="https://doi.org/10.1088/1748-9326/aabe1c">Sanderman et al (2018)</a>. The improvements to the <a href="https://opengeohub.github.io/spatial-prediction-eml/spatiotemporal-prediction-of-soil-organic-carbon.html">3D spatial predictions</a> include:</p> <ul> <li> <p>new updated global mangrove coverage map (contact Thomas Worthington),</p> </li> <li> <p>spatiotemporal predictions to account for differences in spectral reflectance at the time of field work,</p> </li> <li> <p>additional SOC points <a href="https://static-content.springer.com/esm/art%3A10.1038%2Fs41558-018-0162-5/MediaObjects/41558_2018_162_MOESM2_ESM.xlsx">published in Rovai et al. (2018)</a>&nbsp;used in model training (see gpkg file).</p> </li> </ul> <p>To open map in QGIS or similar, drag and drop the *.tif files. You can than add also the gpkg file contain the training points.</p> <p>Production steps (ensemble predictions using SuperLearner) are explained in detail at:&nbsp;</p> <ul> <li>R code:&nbsp;<a href="https://github.com/whrc/Mangrove-Soil-Carbon/">https://github.com/whrc/Mangrove-Soil-Carbon/</a>&nbsp;(see &quot;R_code/GMW_mangroves_SOC_30m.R&quot;)</li> <li>Tutorial:&nbsp;<a href="https://envirometrix.github.io/PredictiveSoilMapping/soilmapping-using-mla.html#ensemble-predictions-using-superlearner-package">&quot;Predictive Soil Mapping with R&quot;</a></li> </ul> <p>Produced&nbsp;for the purpose of Mangrove Restoration Potential Map funded by The&nbsp;Nature Conservancy and IUCN. Contact TNC: Emily Landis&nbsp;&lt;<a href="mailto:elandis@TNC.ORG">elandis@TNC.ORG</a>&gt;.&nbsp;Contact IUCN / University of Cambridge: Thomas Worthington &lt;<a href="mailto:taw52@cam.ac.uk">taw52@cam.ac.uk</a>&gt;.</p> <ul> <li>The mangrove restoration potential map is available at: <a href="https://www.researchgate.net/deref/http%3A%2F%2Fmaps.oceanwealth.org%2Fmangrove-restoration%2F">http://maps.oceanwealth.org/mangrove-restoration/</a></li> </ul>

opencc-by-sa-4.0Oct 2018View details →
zenodo40/100

Data: Spatio-temporal prediction of soil moisture using soil maps, topographic indices and SMAP retrievals

<p><strong>Data used in:</strong></p> <p>Sch&ouml;nauer, M., Prinz, R., V&auml;&auml;t&auml;inen, K., Astrup, R., Pszenny, D., Lindeman, H., et al. (2022). Spatiotemporal prediction of soil moisture using soil maps, topographic indices and SMAP retrievals. <em>International Journal of Applied Earth Observation and Geoinformation</em>, 102730. doi: 10.1016/j.jag.2022.102730</p>

opencc-by-4.0Feb 2021View details →
zenodo40/100

Prince Edward Island (Canada) Predictive Soil Mapping data set (30 m)

<p>Prince Edward Island (Canada) Predictive Soil Mapping data set. Training points include:</p> <ul> <li>soil organic matter (624 points): unit: percent, g/100g ) samples from the topsoil (0-23 cm depth),</li> <li>soil types (672 points),</li> </ul> <p>Covariate layers include:</p> <ul> <li>DEM derivatives (Channel_Network_Base_Level.tif, MRRTF.tif, Relative_Slope_Position.tif, Slope.tif, TWI.tif, Valley_Depth.tif, Vertical_Distance_To_Channel_Network.tif),</li> <li>landcover_2016_reclassify.tif (categorical values),</li> <li>DSS_soil_polygons.tif (soil polygons),</li> </ul> <p>Some covariates are type numeric, some type factor. To use the pre-processed data download only the RDS file. E.g. &quot;PEI100m.soil.rds&quot; contains all covariates layers resampled to 100 m resolution and all training points.</p>

opencc-by-nc-sa-4.0May 2019View details →
zenodo40/100

Impact of Schistosomiasis, Soil-Transmitted Helminthiasis and Anaemia on preschool and school-age children's health condition: post treatment predictive mapping in Benin Republic.

<p>This dataset provides information about the epidemiology of schistosomiasis, soil transmitted helminthiasis and anemia alongside malnutrition among preschool and school age children in Ouake and Bembereke districts of donga and borgou departments in Benin republic.</p>

opencc-by-4.0Mar 2023View details →
zenodo40/100

Soil texture dataset from the publication: "Machine learning applied for Antarctic soil mapping: Spatial prediction of soil texture for Maritime Antarctica and Northern Antarctic Peninsula'

<p>Clay, silt and sand distribution in Antarctic soils&nbsp;modeled and predicted through Machine Learning approaches, legacy soil data and environmental covariates. The coefficient of variation and quantile&nbsp;data represent the spatial uncertainty of the predictions. For more information about the methodology used, users are referred to the article:&nbsp;</p> <p>Siqueira, R.G., Moquedace, C.M., Francelino, M.R., Schaefer, C.E.G.R., Fernandes-Filho, E.I., 2023. Machine learning applied for Antarctic soil mapping: Spatial prediction of soil texture for Maritime Antarctica and Northern Antarctic Peninsula. Geoderma 432, 116405. https://doi.org/10.1016/j.geoderma.2023.116405</p> <p>The .zip file has the following folders:</p> <p>1) soil_texture_antarctica: soil texture information containing clay, silt and sand contents</p> <p>2)&nbsp;soil_texture_coefficient_variation: uncertainty from the coefficient of variation of the soil texture prediction</p> <p>3) soil_texture_prediction_interval: uncertainty from the prediction interval 90% (Q95% - Q5%) of the soil texture prediction</p> <p>4) soil_texture_quantile05: quantile 5% of the soil texture prediction</p> <p>5) soil_texture_quantile95: quantile 95% of the soil texture prediction</p>

opencc-by-4.0Sep 2023View details →

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