Learning Link-Probabilities in Causal Trees

Roizer, Igor, Pearl, Judea

arXiv.org Artificial Intelligence 

A learning algorithm is presented which given the structure of a causal tree, will estimate its link probabilities by sequential measurements on the leaves only. Internal nodes of the tree represent conceptual (hidden) variables inaccessible to observation. The method described is incremental, local, efficient, and remains robust to measurement imprecisions.

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