2023
DOI: 10.48550/arxiv.2303.05394
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A Neurosymbolic Approach to the Verification of Temporal Logic Properties of Learning enabled Control Systems

Abstract: Signal Temporal Logic (STL) has become a popular tool for expressing formal requirements of Cyber-Physical Systems (CPS). The problem of verifying STL properties of neural network-controlled CPS remains a largely unexplored problem. In this paper, we present a model for the verification of Neural Network (NN) controllers for general STL specifications using a custom neural architecture where we map an STL formula into a feed-forward neural network with ReLU activation. In the case where both our plant model an… Show more

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