Machine Learning in R: Land Use Land Cover Image Analysis
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- The lowest price of Machine Learning in R: Land Use Land Cover Image Analysis was obtained on May 22, 2026 6:46 am.
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Machine Learning in R: Land Use Land Cover Image Analysis
$49.99
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Machine Learning in R: Land Use Land Cover Image Analysis
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$399.00 in stock
Udemy.com
as of May 22, 2026 6:46 am
Learn supervised machine learning for Remote Sensing R & R-Studio, image classification, land use and land cover mapping
Created by:
Kate Alison
GIS & Data Science
GIS & Data Science
Rating:4.48 (114reviews)
476students enrolled
What Will I Learn?
- Learn supervised machine learning for image classification using R-programming language in R-Studio
- Learn theoretical background of Machine Learning
- Apply machine learning based algorithms (random forest, SVM) for image classification analysis in R and R-Studio
- Learn R-programming from scratch: R crash course is included that you could start R-programming for machine learning
- Fully understand the basics of Land use and Land Cover (LULC) Mapping based on satellite image classification
- Get an introduction and fully understand to Remote Sensing relevant for LULC mapping
- Pre-process and analyze Remote Sensing images in R
- Learn how to create training and validation data for image classification in QGIS
- Build machine learning based image classification models for LUCL analysis and test their robustness in R
- Implement Machine Learning algorithms, such as Random Forests, SVM in R
- Apply accuracy assessment for Machine Learning based image classification in R
- You'll have a copy of the scripts and step-by-step manuals used in the course for your reference to use in your analysis.
Requirements
- Availability computer and internet & strong interest in the topic
- The course will be demonstrated on Windows PC. Mac and Linux users will have to adapt the instructions to their operating systems.
Target audience
- Everyone who would like to learn Data Science Applications in the R & R Studio Environment
- Geographers, Programmers, geologists, biologists, social scientists, or every other expert who deals with GIS maps in their field
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