English

Informationally complete POVM-based shadow tomography

Quantum Physics 2021-05-27 v2 Information Theory math.IT

Abstract

Recently introduced shadow tomography protocols use classical shadows of quantum states to predict many target functions of an unknown quantum state. Unlike full quantum state tomography, shadow tomography does not insist on accurate recovery of the density matrix for high rank mixed states. Yet, such a protocol makes multiple accurate predictions with high confidence, based on a moderate number of quantum measurements. One particular influential algorithm, proposed by Huang, Kueng, and Preskill arXiv:2002.08953, requires additional circuits for performing certain random unitary transformations. In this paper, we avoid these transformations but employ an arbitrary informationally complete POVM and show that such a procedure can compute k-bit correlation functions for quantum states reliably. We also show that, for this application, we do not need the median of means procedure of Huang et al. Finally, we discuss the contrast between the computation of correlation functions and fidelity of reconstruction of low rank density matrices.

Keywords

Cite

@article{arxiv.2105.05992,
  title  = {Informationally complete POVM-based shadow tomography},
  author = {Atithi Acharya and Siddhartha Saha and Anirvan M. Sengupta},
  journal= {arXiv preprint arXiv:2105.05992},
  year   = {2021}
}

Comments

Added more references, and a description of numerical computations

R2 v1 2026-06-24T02:03:35.428Z