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Causal Explanations for Sequential Decision Making Under Uncertainty

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arxiv 2205.15462 v2 pith:JDKBOAQ2 submitted 2022-05-30 cs.AI cs.MA

Causal Explanations for Sequential Decision Making Under Uncertainty

classification cs.AI cs.MA
keywords causalframeworkexplanationsdecisionexactmethodsresultssequential
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We introduce a novel framework for causal explanations of stochastic, sequential decision-making systems built on the well-studied structural causal model paradigm for causal reasoning. This single framework can identify multiple, semantically distinct explanations for agent actions -- something not previously possible. In this paper, we establish exact methods and several approximation techniques for causal inference on Markov decision processes using this framework, followed by results on the applicability of the exact methods and some run time bounds. We discuss several scenarios that illustrate the framework's flexibility and the results of experiments with human subjects that confirm the benefits of this approach.

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