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From Statistical to Causal Learning

Published 1 Apr 2022 in cs.AI, cs.LG, and stat.ML | (2204.00607v1)

Abstract: We describe basic ideas underlying research to build and understand artificially intelligent systems: from symbolic approaches via statistical learning to interventional models relying on concepts of causality. Some of the hard open problems of machine learning and AI are intrinsically related to causality, and progress may require advances in our understanding of how to model and infer causality from data.

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