Change Detection and Image Time Series Analysis 2
Supervised Methods
Change Detection and Image Time Series Analysis 2 presents supervised machine-learning-based methods for temporal evolution analysis by using image time series associated with Earth observation data. Chapter 1 addresses the fusion of multisensor, multiresolution and multitemporal data. It proposes two supervised solutions that are based on a Markov random field: the first relies on a quad-tree and the second is specifically designed to deal with multimission, multifrequency and multiresolution time series.Chapter 2 provides an overview of pixel based methods for time series classification, from the earliest shallow learning methods to the mos…
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Produktdetails
Weitere Autoren: Atto, Abdourrahmane M. (Hrsg.) / Bovolo, Francesca (Hrsg.)
- ISBN: 978-1-119-88227-5
- EAN: 9781119882275
- Produktnummer: 37957347
- Verlag: Wiley
- Sprache: Englisch
- Erscheinungsjahr: 2021
- Seitenangabe: 272 S.
- Plattform: PDF
- Masse: 17'369 KB
Über den Autor
Abdourrahmane M. Atto is Associate Professor at the University Savoie Mont Blanc, France. His research interests include mathematical methods and models for artificial intelligence and image time series.Francesca Bovolo is the Head of the Remote Sensing for Digital Earth Unit, Fondazione Bruno Kessler, Italy. Her research interests include remote sensing image time series analysis, content-based time series retrieval and radar sounders.Lorenzo Bruzzone is Professor of Telecommunications and the Founder and Director of the Remote Sensing Laboratory at the University of Trento, Italy. His research interests include remote sensing, machine learning and pattern recognition.
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