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Machine Learning for Earth Sciences

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Machine Learning for Earth Sciences Synopsis

This textbook introduces the reader to Machine Learning (ML) applications in Earth Sciences. In detail, it starts by describing the basics of machine learning and its potentials in Earth Sciences to solve geological problems. It describes the main Python tools devoted to ML, the typical workflow of ML applications in Earth Sciences, and proceeds with reporting how ML algorithms work.

The book provides many examples of ML application to Earth Sciences problems in many fields, such as the clustering and dimensionality reduction in petro-volcanological studies, the clustering of multi-spectral data, well-log data facies classification, and machine learning regression in petrology. Also, the book introduces the basics of parallel computing and how to scale ML models in the cloud. The book is devoted to Earth Scientists, at any level, from students to academics and professionals.

About This Edition

ISBN: 9783031351136
Publication date:
Author: Maurizio Petrelli
Publisher: Springer International Publishing AG
Format: Hardback
Pagination: 209 pages
Series: Springer Textbooks in Earth Sciences, Geography and Environment
Genres: Earth sciences
Machine learning
Applied mathematics
Applied computing

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