Machine Learning, revised and updated edition (The MIT Press Essential Knowledge series)
Language: English
Published by The MIT Press (edition Updated), 2021
- Softcover
- Used

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The item might be beaten up but readable. May contain markings or highlighting, as well as stains, bent corners, or any other major defect, but the text is not obscured in any way.
Seller Inventory # 0262542528-7-1
- Title
- Machine Learning, revised and updated edition (The MIT Press Essential Knowledge series)
- Author
- Alpaydin, Ethem
- Publisher
- The MIT Press (edition Updated)
- Publication year
- 2021
- Condition
- Fair
- Binding
- Paperback
- Language
- English
- ISBN 10
- 0262542528
- ISBN 13
- 9780262542524
- Edition
- Updated.
- Series
- Book 70 of 115: MIT Press Essential Knowledge
No in-depth knowledge of math or programming required!
Today, machine learning underlies a range of applications we use every day, from product recommendations to voice recognition—as well as some we don’t yet use every day, including driverless cars. It is the basis for a new approach to artificial intelligence that aims to program computers to use example data or past experience to solve a given problem. In this volume in the MIT Press Essential Knowledge series, Ethem Alpaydin offers a concise and accessible overview of “the new AI.” This expanded edition offers new material on such challenges facing machine learning as privacy, security, accountability, and bias.
Alpaydin explains that as Big Data has grown, the theory of machine learning—the foundation of efforts to process that data into knowledge—has also advanced. He covers:
• The evolution of machine learning
• Important learning algorithms and example applications
• Using machine learning algorithms for pattern recognition
• Artificial neural networks inspired by the human brain
• Algorithms that learn associations between instances
• Reinforcement learning
• Transparency, explainability, and fairness in machine learning
• The ethical and legal implicates of data-based decision making
A comprehensive introduction to machine learning, this book does not require any previous knowledge of mathematics or programming—making it accessible for everyday readers and easily adoptable for classroom syllabi.
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