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Jev-Mem: System-One-Controlled Agentic Memory for Efficient AI Agents

arXiv · AI, language, vision and robotics · article · Sep 21, 2026 · UTC

Agentic memory is becoming essential for long-horizon AI agents, yet many existing systems rely on autoregressive LLMs to control how memories are organized, retrieved, and used, placing expensive generation on the critical path of memory operations. We introduce \textbf{\method}, a new agentic memory architecture inspired by System-One/System-Two cognition. System One captures fast, lightweight decision-making, whereas System Two performs slower, deliberative reasoning. Jev-Mem brings this division of labor to agentic memory through a dedicated System-One control plane, a structured multi-rel

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Evidence & attribution

First collected: 2026-09-23T09:51:33.063Z. This is not the publication date.