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TOPIC · ENTITY #3626

latent hub states

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RESEARCH · 1 SOURCE · arXiv cs.AI

AALT: composition-aware active imitation learning that maximizes start-goal connectivity

The paper introduces Adaptive Agents via Latent Topologies (AALT), an active imitation-learning method that selects demonstrations to maximize expected gains in start–goal connectivity by organizing demonstrations into a topology of latent hub states and identifying high-value bridge demonstrations. In a simulated UR5e ordered-retrieval domain with 72 tasks, AALT raised success from 42/72 to 72/72 using only 3 additional demonstrations (5 transitions); after 20 demonstrations, the best baseline averaged 88.6% success using 98 transitions.

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