Aspects of holographic complexity and volume of the black holes

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Main Authors: Maurya, Suraj, Gutti, Sashideep, Nigam, Rahul, Bhattacharya, Swastik
Format: Preprint
Published: 2025
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author Maurya, Suraj
Gutti, Sashideep
Nigam, Rahul
Bhattacharya, Swastik
author_facet Maurya, Suraj
Gutti, Sashideep
Nigam, Rahul
Bhattacharya, Swastik
contents In this article, we study the complexity growth rate for Banados Teitlboim Zanelli, Schwarzschild, Reissner Nordstrom, and Kerr black holes using complexity-volume (CV) and complexity-action (CA) dualities and verify that it is proportional to the product of the horizon temperature and entropy of the black holes as conjectured by Susskind. Furthermore, we explore the variation in the complexity growth rate $δ\dot{\mathcal{C}}$ under various physical processes, including the Penrose process, superradiance, particle accretion, and Hawking radiation, and demonstrate that $δ\dot{\mathcal{C}}$ exhibits non-trivial behavior. Under the Penrose process and superradiance, $δ\dot{\mathcal{C}}$ always increases, and under particle accretion, $δ\dot{\mathcal{C}}$ can increase, remain zero, or decrease depending upon the direction of angular momentum of an infalling particle. For the cases of particle accretion, where we find $δ\dot{\mathcal{C}}$ to be negative, we argue that for a reliable estimate, one has to take into account the contribution of the horizon dynamics of the perturbed black hole to the growth of its complexity.
format Preprint
id arxiv_https___arxiv_org_abs_2510_11833
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Aspects of holographic complexity and volume of the black holes
Maurya, Suraj
Gutti, Sashideep
Nigam, Rahul
Bhattacharya, Swastik
General Relativity and Quantum Cosmology
High Energy Physics - Theory
In this article, we study the complexity growth rate for Banados Teitlboim Zanelli, Schwarzschild, Reissner Nordstrom, and Kerr black holes using complexity-volume (CV) and complexity-action (CA) dualities and verify that it is proportional to the product of the horizon temperature and entropy of the black holes as conjectured by Susskind. Furthermore, we explore the variation in the complexity growth rate $δ\dot{\mathcal{C}}$ under various physical processes, including the Penrose process, superradiance, particle accretion, and Hawking radiation, and demonstrate that $δ\dot{\mathcal{C}}$ exhibits non-trivial behavior. Under the Penrose process and superradiance, $δ\dot{\mathcal{C}}$ always increases, and under particle accretion, $δ\dot{\mathcal{C}}$ can increase, remain zero, or decrease depending upon the direction of angular momentum of an infalling particle. For the cases of particle accretion, where we find $δ\dot{\mathcal{C}}$ to be negative, we argue that for a reliable estimate, one has to take into account the contribution of the horizon dynamics of the perturbed black hole to the growth of its complexity.
title Aspects of holographic complexity and volume of the black holes
topic General Relativity and Quantum Cosmology
High Energy Physics - Theory
url https://arxiv.org/abs/2510.11833