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Extending Neural Network Verification to a Larger Family of Piece-wise Linear Activation Functions

16 November 2023
László Antal
Hana Masara
Erika Ábrahám
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Abstract

In this paper, we extend an available neural network verification technique to support a wider class of piece-wise linear activation functions. Furthermore, we extend the algorithms, which provide in their original form exact respectively over-approximative results for bounded input sets represented as start sets, to allow also unbounded input set. We implemented our algorithms and demonstrated their effectiveness in some case studies.

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