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Matrix Entanglement

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arxiv 2204.06472 v2 pith:IROF4NWM submitted 2022-04-13 hep-th quant-ph

classification hep-thquant-ph
keywords entanglementmatrixapproachdegreesfreedomgaugeimportantplay
verification ladder T0 review T1 audit T2 compute T3 formal
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In gauge/gravity duality, matrix degrees of freedom on the gauge theory side play important roles for the emergent geometry. In this paper, we discuss how the entanglement on the gravity side can be described as the entanglement between matrix degrees of freedom. Our approach, which we call 'matrix entanglement', is different from 'target-space entanglement' proposed and discussed recently by several groups. We consider several classes of quantum states to which our approach can play important roles. When applied to fuzzy sphere, matrix entanglement can be used to define the usual spatial entanglement in two-brane or five-brane world-volume theory nonperturbatively in a regularized setup. Another application is to a small black hole in AdS5*S5 that can evaporate without being attached to a heat bath, for which our approach suggests a gauge theory origin of the Page curve. The confined degrees of freedom in the partially-deconfined states play the important roles.

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Cited by 1 Pith paper

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  1. A Central Charge for sub-AdS Holography

    hep-th 2024-12 conditional novelty 5.0 of 10

    Sub-AdS scales are mapped to sub-stacks of M < N D-branes, yielding a scale-dependent central charge c(R0) = (R0/L)^{d+q-1} c(L), with consistency checks from small black holes and Dp-brane theories.

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