2022
DOI: 10.48550/arxiv.2202.04089
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Entanglement estimation in tensor network states via sampling

Noa Feldman,
Augustine Kshetrimayum,
Jens Eisert
et al.

Abstract: We introduce a method for extracting meaningful entanglement measures of tensor network states in general dimensions. Current methods require the explicit reconstruction of the density matrix, which is highly demanding, or the contraction of replicas, which requires an effort exponential in the number of replicas and which is costly in terms of memory. In contrast, our method requires the stochastic sampling of matrix elements of the classically represented reduced states with respect to random states drawn fr… Show more

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