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Machine Learning in Geohazard Risk Prediction and Assessment: From Microscale Analysis to Regional Mapping presents an overview of the most recent developments in machine learning techniques that have reshaped our understanding of geo-materials and management protocols of geo-risk. The book covers a broad category of research on machine-learning techniques that can be applied, from microscopic modeling to constitutive modeling, to physics-based numerical modeling, to regional susceptibility mapping. This is a good reference for researchers, academicians, graduate and undergraduate students, professionals, and practitioners in the field of geotechnical engineering and applied geology.

  • Introduces machine-learning techniques in the risk management of geo-hazards, particularly recent developments
  • Covers a broader category of research and machine-learning techniques that can be applied, from microscopic modeling to constitutive modeling, to physics-based numerical modeling, to regional susceptibility mapping
  • Contains contributions from top researchers around the world, including authors from the UK, USA, Australia, Austria, China, and India

Produktinformation

  • Utgivningsdatum2025-07-03
  • Mått191 x 235 x undefined mm
  • Vikt790 g
  • FormatHäftad
  • SpråkEngelska
  • Antal sidor376
  • FörlagElsevier Science
  • ISBN9780443236631

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