Entanglement Wedge Reconstruction and the Information Paradox
Geoffrey Penington

TL;DR
This paper demonstrates how entanglement wedge reconstruction explains the black hole information paradox, showing a phase transition at the Page time and elucidating the conditions for interior operator reconstruction during evaporation.
Contribution
It introduces a detailed analysis of entanglement wedge phase transitions and state dependence in black hole interior reconstructions within AdS/CFT, addressing the information paradox.
Findings
Phase transition in RT surface at Page time
Interior operators reconstructed from Hawking radiation after Page time
State-dependent interior reconstructions avoid firewall paradox
Abstract
When absorbing boundary conditions are used to evaporate a black hole in AdS/CFT, we show that there is a phase transition in the location of the quantum Ryu-Takayanagi surface, at precisely the Page time. The new RT surface lies slightly inside the event horizon, at an infalling time approximately the scrambling time into the past. We can immediately derive the Page curve, using the Ryu-Takayanagi formula, and the Hayden-Preskill decoding criterion, using entanglement wedge reconstruction. Because part of the interior is now encoded in the early Hawking radiation, the decreasing entanglement entropy of the black hole is exactly consistent with the semiclassical bulk entanglement of the late-time Hawking modes, despite the absence of a firewall. By studying the entanglement wedge of highly mixed states, we can understand the state dependence of the interior…
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Taxonomy
TopicsBlack Holes and Theoretical Physics · Cosmology and Gravitation Theories · Quantum Electrodynamics and Casimir Effect
