Multiplatform Remote Sensing Techniques for Active Tectonics, Seismotectonics, and Volcanic Hazard Assessment
1. Introduction
2. An Overview of Published Articles
3. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
List of Contributions
- Occhipinti, M.; Carboni, F.; Amorini, S.; Paltriccia, N.; López-Martínez, C.; Porreca, M. Implementing the European Space Agency’s SentiNel Application Platform’s Open-Source Python Module for Differential Synthetic Aperture Radar Interferometry Coseismic Ground Deformation from Sentinel-1 Data. Remote Sens. 2024, 16, 48. https://doi.org/10.3390/rs16010048.
- Cui, Y.; Huang, J.; Zeng, Z.; Zou, Z. CO Emissions Associated with Three Major Earthquakes Occurring in Diverse Tectonic Environments. Remote Sens. 2024, 16, 480. https://doi.org/10.3390/rs16030480.
- Jamšek Rupnik, P.; Atanackov, J.; Horn, B.; Mušič, B.; Zajc, M.; Grützner, C.; Ustaszewski, K.; Tsukamoto, S.; Novak, M.; Milanič, B., et al. Revealing Subtle Active Tectonic Deformation: Integrating Lidar, Photogrammetry, Field Mapping, and Geophysical Surveys to Assess the Late Quaternary Activity of the Sava Fault (Southern Alps, Slovenia). Remote Sens. 2024, 16, 1490. https://doi.org/10.3390/rs16091490.
- Wen, H.; Tian, Y.; Liu, C.; Li, H. Complex Discontinuity Structure Beneath the Changbaishan-Tianchi Volcano Revealed by the P-Wave Coda Autocorrelation Method Based on Dense Seismic Array. Remote Sens. 2024, 16, 3615. https://doi.org/10.3390/rs16193615.
- Ghari, H.; Parnow, S.; Varfinezhad, R.; Milano, M.; Fourie, F.D.; Tosti, F. Cross-Gradient Joint Inversion of DC Resistivity and Gravity Gradient Data: A Multi-Disciplinary Approach for Geoscience, Heritage, and the Built Environment. Remote Sens. 2024, 16, 4468. https://doi.org/10.3390/rs16234468.
- Mercogliano, F.; Barone, A.; D’Auria, L.; Castaldo, R.; Silvestri, M.; Bellucci Sessa, E.; Caputo, T.; Stroppiana, D.; Caliro, S.; Minopoli, C., et al. Thermal Patterns at the Campi Flegrei Caldera Inferred from Satellite Data and Independent Component Analysis. Remote Sens. 2024, 16, 4615. https://doi.org/10.3390/rs16234615.
- Niu, P.; Han, Z.; Guo, P.; Ma, S.; Ma, H. New Evidence of Holocene Faulting Activity and Strike-Slip Rate of the Eastern Segment of the Sunan–Qilian Fault from UAV-Based Photogrammetry and Radiocarbon Dating, NE Tibetan Plateau. Remote Sens. 2024, 16, 4704. https://doi.org/10.3390/rs16244704.
- Basiou, E.; Castro-Melgar, I.; Kranis, H.; Karavias, A.; Lekkas, E.; Parcharidis, I. Assessment of the Ground Vulnerability in the Preveza Region (Greece) Using the European Ground Motion Service and Geospatial Data Concerning Critical Infrastructures. Remote Sens. 2025, 17, 327. https://doi.org/10.3390/rs17020327.
- Yi, H.; Zhan, W.; Yang, X.; Li, J.; Wu, X.; Sun, J.; Yao, Y.; Huang, J.; Ju, Z. Shallow Structural Deformation Reveals Intraplate Seismicity Triggered by Graben Motion in the South China Littoral Fault Zone. Remote Sens. 2025, 17, 2153. https://doi.org/10.3390/rs17132153.
- Battistelli, M.; Ferrarini, F.; Bucci, F.; Santangelo, M.; Cardinali, M.; Boncori, J.P.M.; Cirillo, D.; Carafa, M.M.C.; Brozzetti, F. Bridging the Gap Between Active Faulting and Deformation Across Normal-Fault Systems in the Central-Southern Apennines (Italy): Multi-Scale and Multi-Source Data Analysis. Remote Sens. 2025, 17, 2491. https://doi.org/10.3390/rs17142491.
- Romero-Toribio, M.C.; Martín-Hernández, F.; Ledo, J. High-Resolution Drone-Based Aeromagnetic Survey at the Tajogaite Volcano (La Palma, Canary Islands): Insights into Its Early Post-Eruptive Shallow Structure. Remote Sens. 2025, 17, 3153. https://doi.org/10.3390/rs17183153.
References
- Tronin, A.A. Satellite Remote Sensing in Seismology. A Review. Remote Sens. 2010, 2, 124–150. [Google Scholar] [CrossRef]
- Antoine, R.; Lopez, T.; Tanguy, M.; Lissak, C.; Gailler, L.; Labazuy, P.; Fauchard, C. Geoscientists in the Sky: Unmanned Aerial Vehicles Responding to Geohazards. Surv. Geophys. 2020, 41, 1285–1321. [Google Scholar] [CrossRef]
- Ren, Z.; Zhang, P.; Oguchi, T.; He, Z. Remote Sensing Perspectives on Geomorphology and Tectonic Processes. Remote Sens. 2023, 15, 2327. [Google Scholar] [CrossRef]
- Silva-Fragoso, A.; Norini, G.; Nappi, R.; Groppelli, G.; Michetti, A.M. Improving the Accuracy of Digital Terrain Models Using Drone-Based LiDAR for the Morpho-Structural Analysis of Active Calderas: The Case of Ischia Island, Italy. Remote Sens. 2024, 16, 1899. [Google Scholar] [CrossRef]
- Cirillo, D.; Tangari, A.C.; Scarciglia, F.; Lavecchia, G.; Brozzetti, F. UAV-PPK Photogrammetry, GIS, and Soil Analysis to Estimate Long-Term Slip Rates on Active Faults in a Seismic Gap of Northern Calabria (Southern Italy). Remote Sens. 2025, 17, 3366. [Google Scholar] [CrossRef]
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Cirillo, D.; Tizzani, P.; Brozzetti, F. Multiplatform Remote Sensing Techniques for Active Tectonics, Seismotectonics, and Volcanic Hazard Assessment. Remote Sens. 2025, 17, 3768. https://doi.org/10.3390/rs17223768
Cirillo D, Tizzani P, Brozzetti F. Multiplatform Remote Sensing Techniques for Active Tectonics, Seismotectonics, and Volcanic Hazard Assessment. Remote Sensing. 2025; 17(22):3768. https://doi.org/10.3390/rs17223768
Chicago/Turabian StyleCirillo, Daniele, Pietro Tizzani, and Francesco Brozzetti. 2025. "Multiplatform Remote Sensing Techniques for Active Tectonics, Seismotectonics, and Volcanic Hazard Assessment" Remote Sensing 17, no. 22: 3768. https://doi.org/10.3390/rs17223768
APA StyleCirillo, D., Tizzani, P., & Brozzetti, F. (2025). Multiplatform Remote Sensing Techniques for Active Tectonics, Seismotectonics, and Volcanic Hazard Assessment. Remote Sensing, 17(22), 3768. https://doi.org/10.3390/rs17223768

