Primordial Gravitational Wave Circuit Complexity

Author:

Adhikari Kiran1,Choudhury Sayantan234ORCID,Pandya Hardey N.5,Srivastava Rohan6

Affiliation:

1. Department of Physics, RWTH Aachen University, D-52056 Aachen, Germany

2. Centre For Cosmology and Science Popularization (CCSP), SGT University, Gurugram 122505, India

3. National Institute of Science Education and Research, Bhubaneswar 752050, India

4. Homi Bhabha National Institute, Training School Complex, Anushakti Nagar 400085, India

5. School of Technology, Pandit Deendayal Energy University, Gandhinagar 382355, India

6. Indian Institute of Technology Jodhpur, Jodhpur 342011, India

Abstract

In this article, we investigate the various physical implications of quantum circuit complexity using the squeezed state formalism of Primordial Gravitational Waves (PGW). Recently, quantum information-theoretic concepts, such as entanglement entropy and complexity, have played a pivotal role in understanding the dynamics of quantum systems, even in diverse fields such as high-energy physics and cosmology. This paper is devoted to studying the quantum circuit complexity of PGW for various cosmological models, such as de Sitter, inflation, radiation, reheating, matter, bouncing, cyclic and black hole gas models, etc. We compute complexity measures using both Covariance and Nielsen’s wave function method for three different choices of quantum initial vacua: Motta-Allen, α and Bunch–Davies. Besides computing circuit complexity, we also compute the Von Neumann entanglement entropy. By making the comparison between complexity and entanglement entropy, we are able to probe various features regarding the dynamics of evolution for different cosmological models. Because entanglement entropy is independent of the squeezing angle, we are able to understand more details of the system using Nielsen’s measure of complexity, which is dependent on both squeezing parameter and angle. This implies that quantum complexity could indeed be a useful probe to study quantum features on a cosmological scale. Quantum complexity is also becoming a powerful technique to understand the chaotic behaviour and random fluctuations of quantum fields. Using the growth of complexity, we are able to compute the quantum Lyapunov exponent for various cosmological models and comment on its chaotic nature.

Publisher

MDPI AG

Subject

Physics and Astronomy (miscellaneous),General Mathematics,Chemistry (miscellaneous),Computer Science (miscellaneous)

Reference83 articles.

1. Observation of Gravitational Waves from a Binary Black Hole Merger;Abbott;Phys. Rev. Lett.,2016

2. Gravitational waves from inflation;Guzzetti;Riv. Nuovo Cim.,2016

3. A Preliminary Measurement of the Cosmic Microwave Background Spectrum by the Cosmic Background Explorer (COBE) Satellite;Mather;Astrophys. J.,1990

4. Planck 2018 results. X. Constraints on inflation;Akrami;Astron. Astrophys.,2020

5. Planck 2018 results. VI. Cosmological parameters;Aghanim;Astron. Astrophys.,2020

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

同舟云学术

1.学者识别学者识别

2.学术分析学术分析

3.人才评估人才评估

"同舟云学术"是以全球学者为主线,采集、加工和组织学术论文而形成的新型学术文献查询和分析系统,可以对全球学者进行文献检索和人才价值评估。用户可以通过关注某些学科领域的顶尖人物而持续追踪该领域的学科进展和研究前沿。经过近期的数据扩容,当前同舟云学术共收录了国内外主流学术期刊6万余种,收集的期刊论文及会议论文总量共计约1.5亿篇,并以每天添加12000余篇中外论文的速度递增。我们也可以为用户提供个性化、定制化的学者数据。欢迎来电咨询!咨询电话:010-8811{复制后删除}0370

www.globalauthorid.com

TOP

Copyright © 2019-2024 北京同舟云网络信息技术有限公司
京公网安备11010802033243号  京ICP备18003416号-3