Utvidet returrett til 31. januar 2025

Remote Sensing Intelligent Interpretation for Mine Geological Environment

Om Remote Sensing Intelligent Interpretation for Mine Geological Environment

This book examines the theory and methods of remote sensing intelligent interpretation based on deep learning. Based on geological and environmental effects on mines, this book constructs a set of systematic mine remote sensing datasets focusing on the multi-level task with the system of ¿target detection¿scene classification¿semantic segmentation." Taking Chinäs Hubei Province as an example, this book focuses on the following four aspects: 1. Development of a multiscale remote sensing dataset of the mining area, including mine target remote sensing dataset, mine (including non-mine areas) remote sensing scene dataset, and semantic segmentation remote sensing dataset of mining land cover. The three datasets are the basis of intelligent interpretation based on deep learning. 2. Research on mine target remote sensing detection method based on deep learning. 3. Research on remote sensing scene classification method of mine and non-mine areas based on deep learning. 4. Research on the fine-scale classification method of mining land cover based on semantic segmentation. The book is a valuable reference both for scholars, practitioners and as well as graduate students who are interested in mining environment research.

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  • Språk:
  • Engelsk
  • ISBN:
  • 9789811937415
  • Bindende:
  • Paperback
  • Sider:
  • 260
  • Utgitt:
  • 20. august 2023
  • Utgave:
  • 23001
  • Dimensjoner:
  • 155x14x235 mm.
  • Vekt:
  • 447 g.
  • BLACK NOVEMBER
  Gratis frakt
Leveringstid: Ukjent

Beskrivelse av Remote Sensing Intelligent Interpretation for Mine Geological Environment

This book examines the theory and methods of remote sensing intelligent interpretation based on deep learning. Based on geological and environmental effects on mines, this book constructs a set of systematic mine remote sensing datasets focusing on the multi-level task with the system of ¿target detection¿scene classification¿semantic segmentation."
Taking Chinäs Hubei Province as an example, this book focuses on the following four aspects: 1. Development of a multiscale remote sensing dataset of the mining area, including mine target remote sensing dataset, mine (including non-mine areas) remote sensing scene dataset, and semantic segmentation remote sensing dataset of mining land cover. The three datasets are the basis of intelligent interpretation based on deep learning. 2. Research on mine target remote sensing detection method based on deep learning. 3. Research on remote sensing scene classification method of mine and non-mine areas based on deep learning. 4. Research on the fine-scale classification method of mining land cover based on semantic segmentation.
The book is a valuable reference both for scholars, practitioners and as well as graduate students who are interested in mining environment research.

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