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Remote Sensing for Land Cover Mapping in Google Earth Engine

Remote Sensing for Land Cover Mapping in Google Earth Engine Learn machine learning, big data, and land use land cover classification using Google Earth Engine cloud API
Remote Sensing for Land Cover Mapping in Google Earth Engine Learn machine learning, big data, and land use land cover classification using Google Earth Engine cloud API

Remote Sensing for Land Cover Mapping in Google Earth Engine

Learn machine learning, big data, and land use land cover classification using Google Earth Engine cloud API

What you’ll learn

Remote Sensing for Land Cover Mapping in Google Earth Engine

  • Learn to apply land use land cover classification using satellite data
  • Land use land cover change detection analysis
  • Perform accuracy assessment of land use classifications
  • Download, and process satellite images
  • Learn digital image processing
  • Digitize reference training data
  • Understand satellite image bands and spectral indices
  • Predict new land use land cover products
  • Access global land use land cover products

Requirements

  • This course has no requirements.

Description

Do you want to implement a land cover classification algorithm on the cloud?

Do you want to quickly gain proficiency in digital image processing and classification?

Do you want to become a spatial data scientist?

Enroll in this Remote Sensing for Land Cover Mapping in Google Earth Engine course and master land use land cover classification on the cloud.

In this course we will cover the following topics:

  • Unsupervised Classification (Clustering)
  • Training Reference data
  • Supervised Classification with Landsat
  • The Supervised Classification with Sentinel
  • Supervised Classification with MODIS
  • Change Detection Analysis (Water and Forest Change Analysis)
  • Global Land Cover Products (NLCD, Globe Cover, and MODIS Land Cover)

What makes me qualified to teach you?

I am Dr. Alemayehu Midekisa, I have over 10 years of experience in processing and analyzing real big Earth observation data from various sources including Landsat, MODIS, Sentinel-2, SRTM, and other remote sensing products.

I am also the recipient of one of the prestigious NASA Earth and Space Science Fellowships. I teach over 10,000 students on Udemy.

I will provide you with hands-on training with example data, sample scripts, and real-world applications.

By taking this course, you will take your spatial data science skills to the next level by gaining proficiency in processing satellite data, applying classification algorithms,s and assessing classification accuracy using a confusion matrix. We will apply classification using various satellites including Landsat, MODIS, and Sentinel.

Jump in right now to enroll. To get started click the enroll button.

Who this course is for:

  • Anyone interested in land use land cover classification
  • Anyone who wants to quickly gain proficiency in digital image processing and classification
  • Who needs experience with implementing land cover classification on the cloud
  • Anyone wants to become a spatial data scientist
  • Last updated 7/2021

Content From: https://www.udemy.com/course/land-use-land-cover-classification/
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