Quantization-scheme-Independent Energy and Its Implications for Holographic Bounds

Fuente: arXiv
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Main Authors: Li, Ze, Liu, Hai-Shan, Xiao, Zi-Qing, Yang, Run-Qiu
Format: Preprint
Published: 2026
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author Li, Ze
Liu, Hai-Shan
Xiao, Zi-Qing
Yang, Run-Qiu
author_facet Li, Ze
Liu, Hai-Shan
Xiao, Zi-Qing
Yang, Run-Qiu
contents In holographic duality, the total energy of the dual field theory is obtained from the holographic renormalization, which depends not only on the bulk geometry but also on the choice of quantization schemes. We point out that the validity of several widely studied holographic inequalities -- including the AdS Penrose inequality, the late-time bound on entanglement entropy growth, and the growth-rate limits of CV and CA complexities -- depends on the choice of quantization schemes. Motivated by this issue, we introduce a modified total energy, which is still computed via holographic renormalization but the final value is independent of the choice of quantization schemes. We verify that this new ``total energy'' restores all these bounds to universal validity in the model of generalized free scalar field theory. Our results suggest that our modified total energy provides a more robust notion of energy when we talk about above inequalities in holographic settings.
format Preprint
id arxiv_https___arxiv_org_abs_2601_07607
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Quantization-scheme-Independent Energy and Its Implications for Holographic Bounds
Li, Ze
Liu, Hai-Shan
Xiao, Zi-Qing
Yang, Run-Qiu
High Energy Physics - Theory
In holographic duality, the total energy of the dual field theory is obtained from the holographic renormalization, which depends not only on the bulk geometry but also on the choice of quantization schemes. We point out that the validity of several widely studied holographic inequalities -- including the AdS Penrose inequality, the late-time bound on entanglement entropy growth, and the growth-rate limits of CV and CA complexities -- depends on the choice of quantization schemes. Motivated by this issue, we introduce a modified total energy, which is still computed via holographic renormalization but the final value is independent of the choice of quantization schemes. We verify that this new ``total energy'' restores all these bounds to universal validity in the model of generalized free scalar field theory. Our results suggest that our modified total energy provides a more robust notion of energy when we talk about above inequalities in holographic settings.
title Quantization-scheme-Independent Energy and Its Implications for Holographic Bounds
topic High Energy Physics - Theory
url https://arxiv.org/abs/2601.07607