Multi agent reinforcement learning par tech sammy (6 résultats)

Langue : anglais
Edité par Independently Published, 2026
Série : Livre 4 sur 12 - Programming AI & Development Handbook Collection
- Couverture souple
Vendeur : PBShop.store US, Wood Dale, IL, Etats-UnisPBShop.store US
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PAP. Etat : New. New Book. Shipped from UK. Established seller since 2000.

Langue : anglais
Edité par Independently Published, 2026
Série : Livre 4 sur 12 - Programming AI & Development Handbook Collection
- Couverture souple
Vendeur : PBShop.store UK, Fairford, GLOS, Royaume-UniPBShop.store UK
Contacter le vendeurVendeur avec une évaluation de 5 étoilesEtat: Neuf
EUR 21,72
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PAP. Etat : New. New Book. Shipped from UK. Established seller since 2000.

Langue : anglais
Edité par Independently Published Mai 2026, 2026
Série : Livre 4 sur 12 - Programming AI & Development Handbook Collection
- Couverture souple
Vendeur : AHA-BUCH GmbH, Einbeck, AllemagneAHA-BUCH GmbH
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EUR 26,31
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Taschenbuch. Etat : Neu. Neuware - The Final Frontier of AI is Collaborative.The era of isolated AI is over. From autonomous warehouse swarms and smart energy grids to decentralized finance and cooperative robotics, the future belongs to systems that can communicate, coordinate, and compete. But scaling reinforcement learning from a single agent to a collective of intelligent actors introduces a chaotic new world of non-stationarity and coordination failure.The Multi-Agent Reinforcement Learning Handbook is your definitive blueprint for navigating this complexity.Written for senior AI engineers, researchers, and data scientists, this handbook cuts through the academic noise to provide a hands-on, implementation-first guide to MARL. You won't just learn the theory; you will master the architectures-like QMIX, MAPPO, and Multi-Agent Transformers-that allow agents to thrive in decentralized environments.What You Will Master: - The Fundamentals of Cooperation: Master the Dec-POMDP framework and learn how to solve the 'Moving Target' problem in non-stationary environments.- Value Factorization & Credit Assignment: Deep dive into VDN and QMIX to understand how individual agent contributions are distilled from a collective team reward.- Policy Optimization at Scale: Implement state-of-the-art algorithms like MAPPO and explore the cutting-edge Multi-Agent Transformer (MAT).- Emergent Communication: Learn how agents 'invent' their own languages and protocols to solve tasks through differentiable communication channels.- Offline MARL & Safety: Discover how to train collaborative agents from static datasets using Conservative Q-Learning (CQL) and ensure human-AI alignment.- The Transformers & Diffusion Frontier: Explore the 2026 vanguard, including trajectory stitching with Diffusion models and the role of LLMs in agent reasoning.Why This Book In just 137 concise, high-impact pages, Sammy Tech distills years of research and industrial application into a focused mastery guide. Leveraging the power of Python and PyTorch 2.x, this handbook provides the code-heavy, logic-driven approach necessary to build production-ready collaborative AI.Whether you are building the next generation of autonomous traffic control or designing complex ad-hoc teamwork protocols, this book is your essential companion on the road to MARL mastery.Architect the future of collective intelligence. Order your copy today.…

Langue : anglais
Edité par Independently Published, 2026
Série : Livre 4 sur 12 - Programming AI & Development Handbook Collection
- Couverture souple
- impression à la demande
Vendeur : Grand Eagle Retail, Bensenville, IL, Etats-UnisGrand Eagle Retail
Contacter le vendeurVendeur avec une évaluation de 5 étoilesEtat: Neuf
EUR 22,87
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Paperback. Etat : new. Paperback. The Final Frontier of AI is Collaborative.The era of isolated AI is over. From autonomous warehouse swarms and smart energy grids to decentralized finance and cooperative robotics, the future belongs to systems that can communicate, coordinate, and compete. But scaling reinforcement learning from a single agent to a collective of intelligent actors introduces a chaotic new world of non-stationarity and coordination failure.The Multi-Agent Reinforcement Learning Handbook is your definitive blueprint for navigating this complexity.Written for senior AI engineers, researchers, and data scientists, this handbook cuts through the academic noise to provide a hands-on, implementation-first guide to MARL. You won't just learn the theory; you will master the architectures-like QMIX, MAPPO, and Multi-Agent Transformers-that allow agents to thrive in decentralized environments.What You Will Master: The Fundamentals of Cooperation: Master the Dec-POMDP framework and learn how to solve the "Moving Target" problem in non-stationary environments.Value Factorization & Credit Assignment: Deep dive into VDN and QMIX to understand how individual agent contributions are distilled from a collective team reward.Policy Optimization at Scale: Implement state-of-the-art algorithms like MAPPO and explore the cutting-edge Multi-Agent Transformer (MAT).Emergent Communication: Learn how agents "invent" their own languages and protocols to solve tasks through differentiable communication channels.Offline MARL & Safety: Discover how to train collaborative agents from static datasets using Conservative Q-Learning (CQL) and ensure human-AI alignment.The Transformers & Diffusion Frontier: Explore the 2026 vanguard, including trajectory stitching with Diffusion models and the role of LLMs in agent reasoning.Why This Book?In just 137 concise, high-impact pages, Sammy Tech distills years of research and industrial application into a focused mastery guide. Leveraging the power of Python and PyTorch 2.x, this handbook provides the code-heavy, logic-driven approach necessary to build production-ready collaborative AI.Whether you are building the next generation of autonomous traffic control or designing complex ad-hoc teamwork protocols, this book is your essential companion on the road to MARL mastery.Architect the future of collective intelligence. Order your copy today. This item is printed on demand. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.…

Langue : anglais
Edité par Independently published, 2026
Série : Livre 4 sur 12 - Programming AI & Development Handbook Collection
- Couverture souple
- impression à la demande
Vendeur : California Books, Miami, FL, Etats-UnisCalifornia Books
Contacter le vendeurVendeur avec une évaluation de 5 étoilesEtat: Neuf
EUR 22,88
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Etat : New. Print on Demand.

Langue : anglais
Edité par Independently Published, 2026
Série : Livre 4 sur 12 - Programming AI & Development Handbook Collection
- Couverture souple
- impression à la demande
Vendeur : CitiRetail, Stevenage, Royaume-UniCitiRetail
Contacter le vendeurVendeur avec une évaluation de 5 étoilesEtat: Neuf
EUR 25,49
EUR 43,62 expéditionExpédition depuis Royaume-Uni vers Etats-UnisQuantité disponible : 1 disponible
Paperback. Etat : new. Paperback. The Final Frontier of AI is Collaborative.The era of isolated AI is over. From autonomous warehouse swarms and smart energy grids to decentralized finance and cooperative robotics, the future belongs to systems that can communicate, coordinate, and compete. But scaling reinforcement learning from a single agent to a collective of intelligent actors introduces a chaotic new world of non-stationarity and coordination failure.The Multi-Agent Reinforcement Learning Handbook is your definitive blueprint for navigating this complexity.Written for senior AI engineers, researchers, and data scientists, this handbook cuts through the academic noise to provide a hands-on, implementation-first guide to MARL. You won't just learn the theory; you will master the architectures-like QMIX, MAPPO, and Multi-Agent Transformers-that allow agents to thrive in decentralized environments.What You Will Master: The Fundamentals of Cooperation: Master the Dec-POMDP framework and learn how to solve the "Moving Target" problem in non-stationary environments.Value Factorization & Credit Assignment: Deep dive into VDN and QMIX to understand how individual agent contributions are distilled from a collective team reward.Policy Optimization at Scale: Implement state-of-the-art algorithms like MAPPO and explore the cutting-edge Multi-Agent Transformer (MAT).Emergent Communication: Learn how agents "invent" their own languages and protocols to solve tasks through differentiable communication channels.Offline MARL & Safety: Discover how to train collaborative agents from static datasets using Conservative Q-Learning (CQL) and ensure human-AI alignment.The Transformers & Diffusion Frontier: Explore the 2026 vanguard, including trajectory stitching with Diffusion models and the role of LLMs in agent reasoning.Why This Book?In just 137 concise, high-impact pages, Sammy Tech distills years of research and industrial application into a focused mastery guide. Leveraging the power of Python and PyTorch 2.x, this handbook provides the code-heavy, logic-driven approach necessary to build production-ready collaborative AI.Whether you are building the next generation of autonomous traffic control or designing complex ad-hoc teamwork protocols, this book is your essential companion on the road to MARL mastery.Architect the future of collective intelligence. Order your copy today. This item is printed on demand. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability.…