2024
DOI: 10.1007/s42484-024-00191-y
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On the interpretability of quantum neural networks

Lirandë Pira,
Chris Ferrie

Abstract: Interpretability of artificial intelligence (AI) methods, particularly deep neural networks, is of great interest. This heightened focus stems from the widespread use of AI-backed systems. These systems, often relying on intricate neural architectures, can exhibit behavior that is challenging to explain and comprehend. The interpretability of such models is a crucial component of building trusted systems. Many methods exist to approach this problem, but they do not apply straightforwardly to the quantum settin… Show more

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Cited by 3 publications
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