Embedded Machine Learning with Microcontrollers: Applications on Arduino Boards 2024th Edition

Embedded Machine Learning with Microcontrollers: Applications on Arduino Boards 2024th Edition book cover

Embedded Machine Learning with Microcontrollers: Applications on Arduino Boards 2024th Edition

Author(s): Cem Ünsalan (Author), Berkan Höke (Author), Eren Atmaca (Author)

  • Publisher: Springer
  • Publication Date: 22 Oct. 2024
  • Edition: 2024th
  • Language: English
  • Print length: 384 pages
  • ISBN-10: 3031694201
  • ISBN-13: 9783031694202

Book Description

This textbook introduces basic and advanced embedded machine learning methods by exploring practical applications on Arduino boards. By covering traditional and neural network-based machine learning methods implemented on microcontrollers, the text is designed for use in courses on microcontrollers and embedded machine learning systems. Following the learning-by-doing approach, the book will enable students to grasp embedded machine learning concepts through real-world examples, providing them with the design and implementation skills needed for a competitive job market. By utilizing a programming environment that enables students to reach and modify microcontroller properties easily, the material allows for fast implementation of the developed system. Students are guided in implementing machine learning methods to be deployed and tested on microcontrollers throughout the book, with the theory behind the implemented methods also emphasized. Sample codes and real-world projects are available for readers and instructors. The book will also be an ideal reference for practicing engineers and electronics hobbyists.

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From the Back Cover

This textbook introduces basic and advanced embedded machine learning methods by exploring practical applications on Arduino boards. By covering traditional and neural network-based machine learning methods implemented on microcontrollers, the text is designed for use in courses on microcontrollers and embedded machine learning systems. Following the learning-by-doing approach, the book will enable students to grasp embedded machine learning concepts through real-world examples, providing them with the design and implementation skills needed for a competitive job market. By utilizing a programming environment that enables students to reach and modify microcontroller properties easily, the material allows for fast implementation of the developed system. Students are guided in implementing machine learning methods to be deployed and tested on microcontrollers throughout the book, with the theory behind the implemented methods also emphasized. Sample codes and real-world projects are available for readers and instructors. The book will also be an ideal reference for practicing engineers and electronics hobbyists.

  • Teaches embedded machine learning system design skills needed for today’s job market;
  • Thoroughly explains each concept and provides illustrated examples and projects;
  • Includes sample codes, course slides, and a solutions manual.

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