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Machine Learning for maximizing the memristivity of single and coupled quantum memristors
Published 10 Sep 2023 in quant-ph, cs.AI, and cs.LG | (2309.05062v1)
Abstract: We propose ML methods to characterize the memristive properties of single and coupled quantum memristors. We show that maximizing the memristivity leads to large values in the degree of entanglement of two quantum memristors, unveiling the close relationship between quantum correlations and memory. Our results strengthen the possibility of using quantum memristors as key components of neuromorphic quantum computing.
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