4.4 Article

Holographic complexity of LST and single trace T(T)over-bar, J(T)over-bar and T(J)over-bar deformations

Journal

JOURNAL OF HIGH ENERGY PHYSICS
Volume -, Issue 10, Pages -

Publisher

SPRINGER
DOI: 10.1007/JHEP10(2022)143

Keywords

Gauge-Gravity Correspondence; AdS-CFT Correspondence

Funding

  1. Senior Research Fellowship (SRF) from the Ministry of Education (MoE),12 Govt. of India
  2. RDF fund of SR [RDF/IITH/F171/SR]
  3. Department of Science and Technology (DST) of the Ministry of Science and Technology of India by a fellowship under the Innovation in Science Pursuit for Inspired Research (INSPIRE) scheme [DST/INSPIRE Fellowship/2019/IF190561]
  4. IIT Hyderabad seed grant [SG/IITH/F171/2016-17/SG-47]

Ask authors/readers for more resources

This study extends our previous work on the complexity characteristics of Little String Theory (LST) using holography. By incorporating Lorentz violating deformations in a 2d field theory, the effects of Lorentz violation and nonlocality on quantum complexity are investigated. The study finds that these effects are intertwined in the UV divergence structure of quantum complexity.
This work is an extension of our previous work [1] where we exploited holography to compute the complexity characteristics of Little String Theory (LST), a nonlocal, nongravitational field theory which flows to a local 2d CFT in the IR under RG via an integrable irrelevant (TT) deformation. Here we look at the more general LST obtained by UV deforming the 2d CFT by incorporating Lorentz violating irrelevant JT and TJ deformations on top of TT deformation, in an effort to capture the novel signatures of Lorentz violation (on top of nonlocality) on quantum complexity. In anticipation of the fact that the dual field theory is Lorentz violating, we compute the volume complexity in two different Lorentz frames and the comparison is drawn between the results. It turns out that for this system the nonlocality and Lorentz violation effects are inextricably intertwined in the UV divergence structure of the quantum complexity. The coefficients of the divergences carry the signature of Lorentz boost violation. We also compute the subregion complexity which displays a (Hagedorn) phase transition with the transition point being the same as that for the phase transition of entanglement entropy [2]. These new results are consistent with our previous work [1]. Null warped AdS3 is treated as special case of interest.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.4
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available