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This book demonstrates the measurement, monitoring, mapping, and
modeling of forest resources. It explores state-of-the-art
techniques based on open-source software & R statistical
programming and modeling specifically, with a focus on the recent
trends in data mining/machine learning techniques and robust
modeling in forest resources.Discusses major topics such as forest
health assessment, estimating forest biomass & carbon stock,
land use forest cover (LUFC), dynamic vegetation modeling (DVM)
approaches, forest-based rural livelihood, habitat suitability
analysis, biodiversity and ecology, and biodiversity, the book
presents novel advances and applications of RS-GIS and R in a
precise and clear manner. By offering insights into various
concepts and their importance for real-world applications, it
equips researchers, professionals, and policy-makers with the
knowledge and skills to tackle a wide range of issues related to
geographic data, including those with scientific, societal, and
environmental implications.
The wide range of challenges in studying Earth system dynamics due
to uncertainties in climate change and complex interference from
human activities is creating difficulties in managing land and
water resources and ensuring their sustainable use. Mapping,
Monitoring, and Modeling Land and Water Resources brings together
real-world case studies accurately surveyed and assessed through
spatial modeling. The book focuses on the effectiveness of
combining remote sensing, geographic information systems, and R.
The use of open source software for different spatial modeling
cases in various fields, along with the use of remote sensing and
geographic information systems, will aid researchers, students, and
practitioners to understand better the phenomena and the
predictions by future analyses for problem-solving and
decision-making.
This book demonstrates the measurement, monitoring, mapping, and
modeling of forest resources. It explores state-of-the-art
techniques based on open-source software & R statistical
programming and modeling specifically, with a focus on the recent
trends in data mining/machine learning techniques and robust
modeling in forest resources.Discusses major topics such as forest
health assessment, estimating forest biomass & carbon stock,
land use forest cover (LUFC), dynamic vegetation modeling (DVM)
approaches, forest-based rural livelihood, habitat suitability
analysis, biodiversity and ecology, and biodiversity, the book
presents novel advances and applications of RS-GIS and R in a
precise and clear manner. By offering insights into various
concepts and their importance for real-world applications, it
equips researchers, professionals, and policy-makers with the
knowledge and skills to tackle a wide range of issues related to
geographic data, including those with scientific, societal, and
environmental implications.
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