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arXiv · 2608.12139

Why There is No Memory Burden in Holographic Space-time Models of Black Hole Formation and Evaporation

Abstract

Recent papers\cite{dvali} have claimed that general quantum information considerations put macroscopic constraints on the properties of large black holes, which can affect their lifetimes in cosmologically and astrophysically interesting ways. We examine black hole evaporation in Holographic Space Time (HST) models\cite{hstbh}, which appear to have the {\it memory burden} effect responsible for these deviations from semi-classical expectations, and explain why, in those models, no such effect exists. It is basically a consequence of Fermi's Golden Rule/The Principle of Detailed Balance, but depends crucially on both the definition of energy in HST models and the way in which causality is implemented.

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BibTeXRIS

T. Banks. 2026-08-12. Why There is No Memory Burden in Holographic Space-time Models of Black Hole Formation and Evaporation. https://arxiv.org/abs/2608.12139

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