Symbol Grounding and Task Learning from Imperfect Corrections


Abstract in English

This paper describes a method for learning from a teacher's potentially unreliable corrective feedback in an interactive task learning setting. The graphical model uses discourse coherence to jointly learn symbol grounding, domain concepts and valid plans. Our experiments show that the agent learns its domain-level task in spite of the teacher's mistakes.

References used

https://aclanthology.org/

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