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On the origin of finite entanglement scaling

arXiv
Authors: Luke Hodgkiss, Laurens Lootens, Atsushi Ueda, Bram Vanhecke, Frank Verstraete

Year

2026

Paper ID

72631

Status

Preprint

Abstract Read

~2 min

Abstract Words

117

Citations

0

Abstract

The concept of finite entanglement scaling forms one of the pillars on which the tensor network ecosystem is built. In this paper, we resolve the open problem of determining the actual perturbations induced by matrix product state approximations of critical systems, and we demonstrate that these can be quite different than the ones predicted by conformal field theory. To that aim, we develop a sparse linear solver to calculate the forward and backward derivatives of 2-dimensional tensor networks with respect to their defining parameters in an implicit way. This algorithm is of independent interest as it provides a primitive for the variational optimization of projected entangled pair states that circumvents the instabilities plaguing traditional automatic differentiation methods.

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  • This paper contributes to the Quantum Networks research area in the Quantum Articles archive.
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  • The concept of finite entanglement scaling forms one of the pillars on which the tensor network ecosystem is built.

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Current Paper #72631 #73048 A Non-Commutative Voronovskaya ... #73041 Comment on "Beyond-classical co... #73036 Keyless Covert Communication Ov... #73034 A Novel Parallel QCNN Architect...

External citation index: OpenAlex citation signal • updated 2026-07-24 01:03:06

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