the Synaptic Theory of Agentic Systems: How Multi-Agent AI Mirrors Architecture Brain - and What Neuroscience Reveals About Building That Learns, Remembers, Grows

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Bol What if the best model for understanding AI is already inside your head?The brain does not think in straight lines. It fires in parallel, prunes what it does not use, and rewires itself based on what it practices. Multi-agent AI systems work the same way - and once you see it, you cannot unsee it.In The Synaptic Theory of Agentic Systems, Danny Argudin maps ten neuroscience principles onto the mechanics of running agentic workflows: working memory, Hebbian learning, synaptic pruning, predictive coding, myelination, and more. Each chapter takes a mechanism the brain already uses and shows exactly how it appears - and fails - in a live AI operating system.This is not a theoretical book. It was written inside a real agentic OS, with real agents contributing to the chapters, real failures informing the lessons, and real parallels discovered through operation rather than imagination.You will walk away with: - A neuroscience vocabulary that makes agentic system behavior legible- Practical models for managing context windows, agent specialization, and memory degradation- A new way of thinking about coherence, drift, and recovery in multi-session AI programs- The specific parallel between myelinated neural pathways and optimized agent routingWhether you run one AI assistant or a galaxy of specialized agents, the synaptic model will change how you design, observe, and tune your systems.Part of the Danny Argudin non-fiction library on agentic AI systems.

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What if the best model for understanding AI is already inside your head?The brain does not think in straight lines. It fires in parallel, prunes what it does not use, and rewires itself based on what it practices. Multi-agent AI systems work the same way - and once you see it, you cannot unsee it.In The Synaptic Theory of Agentic Systems, Danny Argudin maps ten neuroscience principles onto the mechanics of running agentic workflows: working memory, Hebbian learning, synaptic pruning, predictive coding, myelination, and more. Each chapter takes a mechanism the brain already uses and shows exactly how it appears - and fails - in a live AI operating system.This is not a theoretical book. It was written inside a real agentic OS, with real agents contributing to the chapters, real failures informing the lessons, and real parallels discovered through operation rather than imagination.You will walk away with: - A neuroscience vocabulary that makes agentic system behavior legible- Practical models for managing context windows, agent specialization, and memory degradation- A new way of thinking about coherence, drift, and recovery in multi-session AI programs- The specific parallel between myelinated neural pathways and optimized agent routingWhether you run one AI assistant or a galaxy of specialized agents, the synaptic model will change how you design, observe, and tune your systems.Part of the Danny Argudin non-fiction library on agentic AI systems.

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Pagina's: 252, Paperback, Independently published


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Merk Independently Published
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  • 9798198971110
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