DeepSeek R1 is a practical, example-first manual for building collaborative Multi-Agent Systems (MAS) that solve complex, distributed problems. Written for software engineers, AI practitioners, and systems architects, this book teaches modular agent design, inter-agent messaging protocols, negotiation and consensus strategies, task allocation, fault tolerance, and emergent behavior analysis. You'll learn how to integrate machine learning components supervised models, RL agents, and online learning into coordinated agent teams, plus how to containerize, orchestrate, and monitor multi-agent deployments with Docker, Kubernetes, and observability stacks (metrics, tracing, logging). Real projects warehouse robotics, fleet routing, environmental monitoring, and high-frequency decisioning show how to design for latency, throughput, and safety. Each of the 13 chapters includes runnable Python examples, architecture diagrams, debugging checklists, and performance tuning recipes. Key topics: multi-agent architectures, message buses & protocols, negotiation & auction strategies, task scheduling, RL for coordination, fault tolerance & consensus, simulation & testing, observability, containerization (Docker/K8s), security & privacy, real-world case studies.
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