Session

Building World-Aware Robots with Agent Memory and Context Graphs

What if robots didn’t just react - but actually understood their world and remembered it? In this session, we explore how to build world-aware, context-driven agents using a graph-based memory layer and real-world robotics.

You’ll see how users, objects, and environments can be modeled as a living digital twin, how interactions are captured as structured memory, and how agents reason over long-term context. Through a live demo, a robot recognizes returning users, recalls preferences, and adapts its behavior across sessions.

Zaid Zaim

Developer Advocate EMEA at Neo4j | Microsoft AI MVP

Berlin, Germany

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