35 results on '"Veloso, Gustavo Vieira"'
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2. Mapping soil thickness using a mechanistic model and machine learning approaches
3. Application of sensing techniques for quantifying CO2 flux and dynamics in environments affected by the fundão dam collapse, mariana, Brazil
4. Mapping soil drainage classes: Comparing expert knowledge and machine learning strategies
5. Integrating proximal geophysical sensing and machine learning for digital soil mapping: Spatial prediction and model evaluation using a small dataset
6. The Brazilian semiarid region over the past 21,000 years: Vegetation dynamics in small pulses of higher humidity
7. Chemical weathering detection in the periglacial landscapes of Maritime Antarctica: New approach using geophysical sensors, topographic variables and machine learning algorithms
8. Digital mapping of soil weathering using field geophysical sensor data coupled with covariates and machine learning
9. Sensor-based field methods for pedology and soil surveys: Protocol suggestions for Brazilian tropical soils
10. Potential of plant species adapted to semi-arid conditions for phytoremediation of contaminated soils
11. Geomorphic indices, machine learning and osl-palynology chronology to assess neotectonic deformation in the continental margin – Northeastern Brazil
12. Modeling and mapping of Inselberg habitats for environmental conservation in the Atlantic Forest and Caatinga domains, Brazil
13. Predictive modeling of contents of potentially toxic elements using morphometric data, proximal sensing, and chemical and physical properties of soils under mining influence
14. Spatio-temporal dynamics of land use changes of an intense anthropized basin in the Brazilian semi-arid region
15. Machine learning models applied to TSS estimation in a reservoir using multispectral sensor onboard to RPA
16. Soil predictors are crucial for modelling vegetation distribution and its responses to climate change
17. Effect of environmental covariable selection in the hydrological modeling using machine learning models to predict daily streamflow
18. Geostatistical modeling and traditional approaches for streamflow regionalization in a Brazilian Southeast watershed
19. Soil sampling strategy in areas of difficult acess using the cLHS method
20. Machine learning models for streamflow regionalization in a tropical watershed
21. Relative Radiometric Normalization for the PlanetScope Nanosatellite Constellation Based on Sentinel-2 Images.
22. Analysis of terrain attributes in different spatial resolutions for digital soil mapping application in southeastern Brazil
23. The establishment of a secondary forest in a degraded pasture to improve hydraulic properties of the soil
24. Modelling and mapping soil organic carbon stocks in Brazil
25. Application of machine learning to proximal gamma-ray and magnetic susceptibility surveys in the Maritime Antarctic: assessing the influence of periglacial processes and landforms.
26. Soil Erosion Satellite-Based Estimation in Cropland for Soil Conservation.
27. Proximal sensing approach for soil characterization and discrimination: a case of study in Brazil.
28. Spatiotemporal prediction of rainfall erosivity by machine learning in southeastern Brazil.
29. Soil apparent electrical conductivity survey in different pedoenvironments by geophysical sensor EM38: a potential tool in pedology and pedometry studies.
30. Characterizing and Modeling Tropical Sandy Soils through VisNIR-SWIR, MIR Spectroscopy, and X-ray Fluorescence.
31. A new methodological framework for geophysical sensor combinations associated with machine learning algorithms to understand soil attributes.
32. A new methodological framework by geophysical sensors combinations associated with machine learning algorithms to understand soil attributes.
33. Radiometric and magnetic susceptibility characterization of soil profiles: Geophysical data and their relationship with Antarctic periglacial processes, pedogenesis, and lithology.
34. Sand subfractions by proximal and satellite sensing: Optimizing agricultural expansion in tropical sandy soils.
35. Modeling regolith thickness in iron formations using machine learning techniques.
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