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Quantum neural computation of entanglement is robust to noise and decoherence
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In previous work, we have proposed an entanglement indicator for a general multiqubit state, which can be "learned" by a quantum system, acting as a neural network. The indicator can be used for a pure or a mixed state, and it need not be "close" to any particular state; moreover, as the size of the system grows, the amount of additional training necessary diminishes. Here, we show that the indicator is stable to noise and decoherence.
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- DOI
- 10.48550/arxiv.1510.09173
- OpenAlex
- W4301195844
- Document type
- preprint
- Language
- EN
- Source
- arXiv (Cornell University)
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