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Machine Learning on Geographical Data Using Python - by  Joos Korstanje (Paperback) - 1 of 1

Machine Learning on Geographical Data Using Python - by Joos Korstanje (Paperback)

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About this item

Highlights

  • Get up and running with the basics of geographic information systems (GIS), geospatial analysis, and machine learning on spatial data in Python.
  • About the Author: Joos Korstanje is a data scientist, with over five years of industry experience in developing machine learning tools.
  • 312 Pages
  • Computers + Internet, Artificial Intelligence

Description



Book Synopsis



Get up and running with the basics of geographic information systems (GIS), geospatial analysis, and machine learning on spatial data in Python. This book starts with an introduction to geodata and covers topics such as GIS and common tools, standard formats of geographical data, and an overview of Python tools for geodata. Specifics and difficulties one may encounter when using geographical data are discussed: from coordinate systems and map projections to different geodata formats and types such as points, lines, polygons, and rasters. Analytics operations typically applied to geodata are explained such as clipping, intersecting, buffering, merging, dissolving, and erasing, with implementations in Python. Use cases and examples are included. The book also focuses on applying more advanced machine learning approaches to geographical data and presents interpolation, classification, regression, and clustering via examples and use cases. This book is your go-to resource for machine learning on geodata. It presents the basics of working with spatial data and advanced applications. Examples are presented using code (accessible at github.com/Apress/machine-learning-geographic-data-python) and facilitate learning by application.

What You Will Learn
  • Understand the fundamental concepts of working with geodata
  • Work with multiple geographical data types and file formats in Python
  • Create maps in Python
  • Apply machine learning on geographical data
Who This Book Is For
Readers with a basic understanding of machine learning who wish to extend their skill set to analysis of and machine learning on spatial data while remaining in a common data science Python environment



From the Back Cover



Get up and running with the basics of geographic information systems (GIS), geospatial analysis, and machine learning on spatial data in Python. This book starts with an introduction to geodata and covers topics such as GIS and common tools, standard formats of geographical data, and an overview of Python tools for geodata. Specifics and difficulties one may encounter when using geographical data are discussed: from coordinate systems and map projections to different geodata formats and types such as points, lines, polygons, and rasters. Analytics operations typically applied to geodata are explained such as clipping, intersecting, buffering, merging, dissolving, and erasing, with implementations in Python. Use cases and examples are included. The book also focuses on applying more advanced machine learning approaches to geographical data and presents interpolation, classification, regression, and clustering via examples and use cases. This book is your go-to resource for machine learning on geodata. It presents the basics of working with spatial data and advanced applications. Examples are presented using code and facilitate learning by application.
What You Will Learn
  • Understand the fundamental concepts of working with geodata
  • Work with multiple geographical data types and file formats in Python
  • Create maps in Python
  • Apply machine learning on geographical data



About the Author



Joos Korstanje is a data scientist, with over five years of industry experience in developing machine learning tools. He has a double MSc in Applied Data Science and in Environmental Science and has extensive experience working with geodata use cases. He currently works at Disneyland Paris where he develops machine learning for a variety of tools. His experience in writing and teaching have motivated him to write this book on machine learning for geodata with Python.
Dimensions (Overall): 10.0 Inches (H) x 7.0 Inches (W) x .69 Inches (D)
Weight: 1.26 Pounds
Suggested Age: 22 Years and Up
Number of Pages: 312
Genre: Computers + Internet
Sub-Genre: Artificial Intelligence
Publisher: Apress
Theme: General
Format: Paperback
Author: Joos Korstanje
Language: English
Street Date: July 21, 2022
TCIN: 1007912826
UPC: 9781484282861
Item Number (DPCI): 247-42-8465
Origin: Made in the USA or Imported
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Shipping details

Estimated ship dimensions: 0.69 inches length x 7 inches width x 10 inches height
Estimated ship weight: 1.26 pounds
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Q: What programming language is primarily used in this book?

submitted by AI Shopping Assistant - 5 hours ago
  • A: The book primarily uses Python for implementing geospatial analysis and machine learning techniques.

    submitted byAI Shopping Assistant - 5 hours ago
    Ai generated

Q: What topics are covered in this book?

submitted by AI Shopping Assistant - 5 hours ago
  • A: The book covers GIS basics, geospatial analysis, machine learning on spatial data, and various geodata formats.

    submitted byAI Shopping Assistant - 5 hours ago
    Ai generated

Q: Is this book suitable for beginners in machine learning?

submitted by AI Shopping Assistant - 5 hours ago
  • A: Yes, it is suitable for readers with a basic understanding of machine learning looking to expand their skills.

    submitted byAI Shopping Assistant - 5 hours ago
    Ai generated

Q: Who is the author of this book?

submitted by AI Shopping Assistant - 5 hours ago
  • A: The author is Joos Korstanje, a data scientist with over five years of experience in machine learning.

    submitted byAI Shopping Assistant - 5 hours ago
    Ai generated

Q: What can readers expect to learn from this book?

submitted by AI Shopping Assistant - 5 hours ago
  • A: Readers will learn about geodata concepts, file formats, map creation, and applying machine learning techniques.

    submitted byAI Shopping Assistant - 5 hours ago
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