Crossing versus locking: Bit threads and continuum multiflows
arXiv:2008.03197 · doi:10.1007/s00220-022-04476-w
Abstract
Bit threads are curves in holographic spacetimes that manifest boundary entanglement, and are represented mathematically by continuum analogues of network flows or multiflows. Subject to a density bound, the maximum number of threads connecting a boundary region to its complement computes the Ryu-Takayanagi entropy. When considering several regions at the same time, for example in proving entropy inequalities, there are various inequivalent density bounds that can be imposed. We investigate for which choices of bound a given set of boundary regions can be "locked", in other words can have their entropies computed by a single thread configuration. We show that under the most stringent bound, which requires the threads to be locally parallel, non-crossing regions can in general be locked, but crossing regions cannot, where two regions are said to cross if they partially overlap and do not cover the entire boundary. We also show that, under a certain less stringent density bound, a crossing pair can be locked, and conjecture that any set of regions not containing a pairwise crossing triple can be locked, analogously to the situation for networks.
54 pages, 23 figures, 18 theorems
References in corpus (3)
Cited by in corpus (15)
- Covariant bit threads
- The PEE aspects of entanglement islands from bit threads
- Bit thread, entanglement distillation, and entanglement of purification
- Modular conjugations in 2D conformal field theory and holographic bit threads
- Geometrizing the Partial Entanglement Entropy: from PEE Threads to Bit Threads
- Quantum bit threads and holographic entanglement
- Thread/State correspondence: from bit threads to qubit threads
- Properties of the contraction map for holographic entanglement entropy inequalities
- Bit threads on hypergraphs
- Beyond the Holographic Entropy Cone via Cycle Flows
- Towards bit threads in general gravitational spacetimes
- First Law and Quantum Correction for Holographic Entanglement Contour
- Weaving the (AdS) spaces with partial entanglement entropy threads
- Discrete Bulk Reconstruction
- Exploring the holographic entropy cone via reinforcement learning