GPT Meets Game Theory: Training and Optimizing Generative AI Models
Autor Hamidou Tembineen Limba Engleză Paperback – 11 mar 2026
As AI models are growing larger and taking on more data, GPT Meets Game Theory draws from biology, physics, as well as game theory, to help readers understand how we can interpret and guide the models’ behavior. It also looks at how these ideas apply to "mean-field" models and how they can be used in situations like federated learning, where many devices work together to train an AI system. The book shows how choosing the right AI design and training method is like making strategic moves in a game - especially when multiple AI agents are involved.
GPT Meets Game Theory offers an illuminating read for computer science, engineering, and mathematics researchers interested in the mathematical underpinnings of deep learning models, particularly transformers, and also for those who are curious about how game theory can apply to the training and optimisation of these models.
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Specificații
ISBN-13: 9781041124078
ISBN-10: 1041124074
Pagini: 310
Ilustrații: 100
Dimensiuni: 178 x 254 mm
Ediția:1
Editura: CRC Press
Colecția Chapman and Hall/CRC
ISBN-10: 1041124074
Pagini: 310
Ilustrații: 100
Dimensiuni: 178 x 254 mm
Ediția:1
Editura: CRC Press
Colecția Chapman and Hall/CRC
Public țintă
Academic, Postgraduate, and Professional ReferenceCuprins
1. Deep Learning Meets Game Theory 2. Mathematics of Transformers 3. Extremely Large Transformers 4. Mean-Field-Type Transformers 5. Mean-Field-Type Learning 6. Strategic Deep Learning
Notă biografică
Hamidou Tembine is a professor of machine intelligence at the University of Quebec in Trois-Rivieres, Canada, and the co-founder of Timadie, which is a platform of platforms that brings together companies, laboratories, and professional associations.
Descriere
This book explores a new way to understand and employ neural networks through the lens of game theory. This is an illuminating read for computer science, engineering, and mathematics researchers interested in the mathematical underpinnings of deep learning models.