2022
DOI: 10.48550/arxiv.2205.13013
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Learning Deterministic Finite Automata Decompositions from Examples and Demonstrations

Abstract: The identification of a deterministic finite automaton (DFA) from labeled examples is a well-studied problem in the literature; however, prior work focuses on the identification of monolithic DFAs. Although monolithic DFAs provide accurate descriptions of systems' behavior, they lack simplicity and interpretability; moreover, they fail to capture sub-tasks realized by the system and introduce inductive biases away from the inherent decomposition of the overall task. In this paper, we present an algorithm for l… Show more

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