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个人简介
Dr. Oommen’s research efforts focus on developing improved susceptibility characterization and documentation of geo-hazards (e.g. earthquakes, landslides) and spatial modeling of georesource (e.g. mineral deposits) over a range of spatial scales and data types. To achieve his research interests, he has adopted an inter-disciplinary research approach from two main areas, specifically: aerial/satellite based remote sensing for obtaining data, and artificial intelligence/machine learning based methods for data processing and modeling.
Dr. Oommen is expanding his research to investigate future applications of satellite remote sensing and machine learning for geological engineering in the fields of geohazards and georesource characterization. His immediate goal is to verify the applicability of remote sensing techniques such as Differential Interferometric Synthetic Aperture Radar (DinSAR) and Light Detection and Ranging (LiDAR) as sustainable operational strategies for monitoring land subsidence. Land subsidence is often the surface expression of a variety of subsurface mechanisms such as lowering of water table, drainage, lateral flow, loading, vibration, and tectonic activity. Quantifying subsidence is critical for land use and infrastructure planning, health monitoring of engineered structures as well as for understanding the subsurface conditions.
Research Interests:
Liquefaction susceptibility evaluation at local and regional scales using in-situ measurements and remote sensing observations
Estimating liquefaction induced damage such as lateral spread displacement
Transportation Geotechniques
Documenting earthquake induced damages, especially liquefaction using aerial/satellite images that are sensitive to surficial moisture
Geotechnical asset monitoring
Machine Learning
Dr. Oommen is expanding his research to investigate future applications of satellite remote sensing and machine learning for geological engineering in the fields of geohazards and georesource characterization. His immediate goal is to verify the applicability of remote sensing techniques such as Differential Interferometric Synthetic Aperture Radar (DinSAR) and Light Detection and Ranging (LiDAR) as sustainable operational strategies for monitoring land subsidence. Land subsidence is often the surface expression of a variety of subsurface mechanisms such as lowering of water table, drainage, lateral flow, loading, vibration, and tectonic activity. Quantifying subsidence is critical for land use and infrastructure planning, health monitoring of engineered structures as well as for understanding the subsurface conditions.
Research Interests:
Liquefaction susceptibility evaluation at local and regional scales using in-situ measurements and remote sensing observations
Estimating liquefaction induced damage such as lateral spread displacement
Transportation Geotechniques
Documenting earthquake induced damages, especially liquefaction using aerial/satellite images that are sensitive to surficial moisture
Geotechnical asset monitoring
Machine Learning
研究兴趣
论文共 197 篇作者统计合作学者相似作者
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Navin Tony Thalakkottukara,Jobin Thomas, Melanie K. Watkins, Benjamin C. Holland,Thomas Oommen,Himanshu Grover
EARTH SCIENCE INFORMATICSno. 3 (2024): 1907-1921
crossref(2024)
GIScience and Geo-environmental Modelling Environmental Risk and Resilience in the Changing Worldpp.93-113, (2024)
ENVIRONMENTAL & ENGINEERING GEOSCIENCEno. 1-2 (2024): 19-30
Anush Kumar Kasaragod,Jobin Thomas,Thomas Oommen, Ryan Williams, Sidike Paheding, Abel Reyes Angulo,Jordan Ewing,Michael Cole, Paramsothy Jayakumar
Journal of Soils and Sedimentspp.1-16, (2024)
Marta Zocchi,Anush Kumar Kasaragod, Abby Jenkins, Chris Cook,Richard Dobson,Thomas Oommen, Dana Van Huis, Beau Taylor,Colin Brooks,Roberta Marini,Francesco Troiani,Paolo Mazzanti
REMOTE SENSINGno. 12 (2023): 3016-3016
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作者统计
#Papers: 204
#Citation: 2300
H-Index: 24
G-Index: 43
Sociability: 6
Diversity: 0
Activity: 2
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