4.4 Article

Time evolution of complexity: a critique of three methods

期刊

JOURNAL OF HIGH ENERGY PHYSICS
卷 -, 期 4, 页码 -

出版社

SPRINGER
DOI: 10.1007/JHEP04(2019)087

关键词

Effective Field Theories; Lattice Quantum Field Theory; AdS-CFT Correspondence; Black Holes in String Theory

资金

  1. JSPS [17F17023]
  2. University of Windsor
  3. South African Research Chairs Initiative of the Department of Science and Technology
  4. National Research Foundation (NRF) of South Africa
  5. Perimeter Institute for Theoretical Physics
  6. Government of Canada through the Department of Innovation, Science, and Economic Development
  7. Province of Ontario through the Ministry of Research and Innovation
  8. Grants-in-Aid for Scientific Research [17F17023] Funding Source: KAKEN

向作者/读者索取更多资源

In this work, we propose a testing procedure to distinguish between the different approaches for computing complexity. Our test does not require a direct comparison between the approaches and thus avoids the issue of choice of gates, basis, etc. The proposed testing procedure employs the information-theoretic measures Loschmidt echo and Fidelity; the idea is to investigate the sensitivity of the complexity (derived from the different approaches) to the evolution of states. We discover that only circuit complexity obtained directly from the wave function is sensitive to time evolution, leaving us to claim that it surpasses the other approaches. We also demonstrate that circuit complexity displays a universal behaviour - the complexity is proportional to the number of distinct Hamiltonian evolutions that act on a reference state. Due to this fact, for a given number of Hamiltonians, we can always find the combination of states that provides the maximum complexity; consequently, other combinations involving a smaller number of evolutions will have less than maximum complexity and, hence, will have resources. Finally, we explore the evolution of complexity in non-local theories; we demonstrate the growth of complexity is sustained over a longer period of time as compared to a local theory.

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