Multitemporal Earth observation image analysis : remote sensing image sequences / coordinated by Clément Mallet, Nesrine Chehata.

Contributor(s): Mallet, Clément [editor.] | Chehata, Nesrine [editor.]
Language: English Series: Sciences. Image. Information seeking in images and videosPublisher: London, UK : Hoboken, NJ : ISTE Ltd ; John Wiley & Sons, Inc., 2024Copyright date: ©2024Description: 1 online resourceContent type: text Media type: computer Carrier type: online resourceISBN: 9781789451764; 9781394306657; 1394306652; 9781394306633; 1394306636; 9781394306640; 1394306644Subject(s): Remote-sensing images | Images-satellite | Image Processing | COMPUTERS | TECHNOLOGY & ENGINEERING | Remote Sensing & Geographic Information Systems | Image Processing | COMPUTERS | TECHNOLOGY & ENGINEERINGGenre/Form: Electronic books.Additional physical formats: Print version:: No titleLOC classification: G70.4 | .M85 2024Online resources: Full text is available at Wiley Online Library. Click here to view. Summary: Earth observation has witnessed a unique paradigm change in the last decade with a diverse and ever-growing number of data sources. Among them, time series of remote sensing images has proven to be invaluable for numerous environmental and climate studies. Multitemporal Earth Observation Image Analysis provides illustrations of recent methodological advances in data processing and information extraction from imagery, with an emphasis on the temporal dimension uncovered either by recent satellite constellations (in particular the Sentinels from the European Copernicus programme) or archival aerial images available in national archives. The book shows how complementary data sources can be efficiently used, how spatial and temporal information can be leveraged for biophysical parameter estimation, classification of land surfaces and object tracking, as well as how standard machine learning and state-of-the-art deep learning solutions can solve complex problems with real-world applications.
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Earth observation has witnessed a unique paradigm change in the last decade with a diverse and ever-growing number of data sources. Among them, time series of remote sensing images has proven to be invaluable for numerous environmental and climate studies. Multitemporal Earth Observation Image Analysis provides illustrations of recent methodological advances in data processing and information extraction from imagery, with an emphasis on the temporal dimension uncovered either by recent satellite constellations (in particular the Sentinels from the European Copernicus programme) or archival aerial images available in national archives. The book shows how complementary data sources can be efficiently used, how spatial and temporal information can be leveraged for biophysical parameter estimation, classification of land surfaces and object tracking, as well as how standard machine learning and state-of-the-art deep learning solutions can solve complex problems with real-world applications.

Description based on online resource; title from digital title page (viewed on July 24, 2024).

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