Integrated Multisource Radar and Geophysical Data for Depth-Resolved Structural Analysis and Mineral Prospectivity: DEM, NISAR, BIOMASS, and Aeromagnetic Data

This study introduces a multisource, multiscale approach to delineate structural lineaments and assess mineralization controls in Wadi El-Markh, Central Eastern Desert, Egypt. Four datasets (ALOS PALSAR DEM, NISAR L-band SAR, BIOMASS P-band SAR, and aeromagnetic data) were processed using tailored workflows to extract lineaments at complementary depths, from the surface to deep crustal levels. The AP-DEM workflow employed multi-azimuth hill-shading and directional Prewitt filtering. NISAR data were speckle-denoised before directional filtering of the HH and HV polarizations. BIOMASS data underwent polarimetric decomposition followed by directional filtering. Aeromagnetic data were reduced to the pole, analyzed using power-spectrum for depth estimation and regional–residual separation, and then processed using a CET grid-analysis workflow for lineaments extraction and generation of a Contact Occurrence Density (COD) map. Directional analysis revealed sensor-dependent biases: NISAR HH favored an E-W trend, whereas HV yielded a more isotropic distribution; BIOMASS surface scattering highlighted E-W and N-S trends, whereas volume scattering emphasized NW-SE and NE-SW trends. Aeromagnetic data identified both shallow- and deep-seated structures, with a dominant NW-SE trend. GIS-based fuzzy overlay produced a consensus structural complexity map. Validation against 15 known mining sites showed spatial coincidence rates ranging from 60% (AP-DEM and NISAR HH) to 86.7% (BIOMASS volume scattering and fuzzy overlay) for mining sites falling within high-structural-complexity zones. The results establish a reliable framework for identifying structurally controlled mineralization targets in arid terrains.

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Publication Details

Journal
Minerals
Published
2026-09-14
DOI
https://doi.org/10.3390/min16090939
Primary Topic
Geochemistry and Geologic Mapping
Type
article
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article

Integrated Multisource Radar and Geophysical Data for Depth-Resolved Structural Analysis and Mineral Prospectivity: DEM, NISAR, BIOMASS, and Aeromagnetic Data

Sobhi M. Ghoneim, Changcheng Wang, HALA F. ALI, Faris A. Abanumay
Minerals
Geochemistry and Geologic Mapping
article

Integrated Multisource Radar and Geophysical Data for Depth-Resolved Structural Analysis and Mineral Prospectivity: DEM, NISAR, BIOMASS, and Aeromagnetic Data

Sobhi M. Ghoneim, Changcheng Wang, HALA F. ALI, Faris A. Abanumay
article en

Abstract

This study introduces a multisource, multiscale approach to delineate structural lineaments and assess mineralization controls in Wadi El-Markh, Central Eastern Desert, Egypt. Four datasets (ALOS PALSAR DEM, NISAR L-band SAR, BIOMASS P-band SAR, and aeromagnetic data) were processed using tailored workflows to extract lineaments at complementary depths, from the surface to deep crustal levels. The AP-DEM workflow employed multi-azimuth hill-shading and directional Prewitt filtering. NISAR data were speckle-denoised before directional filtering of the HH and HV polarizations. BIOMASS data underwent polarimetric decomposition followed by directional filtering. Aeromagnetic data were reduced to the pole, analyzed using power-spectrum for depth estimation and regional–residual separation, and then processed using a CET grid-analysis workflow for lineaments extraction and generation of a Contact Occurrence Density (COD) map. Directional analysis revealed sensor-dependent biases: NISAR HH favored an E-W trend, whereas HV yielded a more isotropic distribution; BIOMASS surface scattering highlighted E-W and N-S trends, whereas volume scattering emphasized NW-SE and NE-SW trends. Aeromagnetic data identified both shallow- and deep-seated structures, with a dominant NW-SE trend. GIS-based fuzzy overlay produced a consensus structural complexity map. Validation against 15 known mining sites showed spatial coincidence rates ranging from 60% (AP-DEM and NISAR HH) to 86.7% (BIOMASS volume scattering and fuzzy overlay) for mining sites falling within high-structural-complexity zones. The results establish a reliable framework for identifying structurally controlled mineralization targets in arid terrains.

MineralsVol. 16(9)
National Authority for Remote Sensing and Space Sciences (EG), Central South University (CN), King Saud University (SA)
Openalex Percentile: Top 8%
Geochemistry and Geologic Mapping
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