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Learned Enterprise Data Comprehension: Compression and Routing for Data Agents

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

Structured-data agents in enterprise settings must reason over complex data environments whose relevant evidence is distributed across schemas, relationships, policies, and recurring business roles. Modern agentic systems often address this burden through reusable markdown-style memory or skill files that preserve previously discovered information for later queries, reducing the need to rediscover the same structure repeatedly. This is useful, but it obscures a natural division of labor: agents are well suited to semantic reasoning, while learned systems are well suited to predicting and organ

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Evidence & attribution

First collected: 2026-09-23T06:11:12.848Z. This is not the publication date.