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portada Tiny Machine Learning Techniques for Constrained Devices
Type
Physical Book
Year
2026
Pages
248
Format
Hardcover
Dimensions
23.40 x 15.60 cm
ISBN13
9781032897523

Tiny Machine Learning Techniques for Constrained Devices

Ahmed A. Abd El-Latif;Yassine Maleh;Khalid El-Makkaoui;Ismail Lamaakal;Ibrahim Ouahbi (Author) · Chapman & Hall/CRC · Hardcover

Tiny Machine Learning Techniques for Constrained Devices - Ahmed A. Abd El-Latif;Yassine Maleh;Khalid El-Makkaoui;Ismail Lamaakal;Ibrahim Ouahbi

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Synopsis "Tiny Machine Learning Techniques for Constrained Devices"

Tiny Machine Learning Techniques for Constrained Devices explores the cutting-edge field of TinyML, enabling intelligent machine learning on highly resource-limited devices such as microcontrollers and edge IoT nodes. It is a guide to designing, optimizing, securing, and applying TinyML models in real-world constrained environments.

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