Generating Haar-uniform Randomness using Stochastic Quantum Walks on a Photonic Chip
Abstract
As random operations for quantum systems are intensively used in various quantum information tasks, a trustworthy measure of the randomness in quantum operations is highly demanded. The Haar measure of randomness is a useful tool with wide applications such as boson sampling. Recently, a theoretical protocol was proposed to combine quantum control theory and driven stochastic quantum walks to generate Haar-uniform random operations. This opens up a promising route to converting classical randomness to quantum randomness. Here, we implement a two-dimensional stochastic quantum walk on the integrated photonic chip and demonstrate that the average of all distribution profiles converges to the even distribution when the evolution length increases, suggesting the 1-pad Haar-uniform randomness. We further show that our two-dimensional array outperforms the one-dimensional array of the same number of waveguide for the speed of convergence. Our work demonstrates a scalable and robust way to generate Haar-uniform randomness that can provide useful building blocks to boost future quantum information techniques.
Cite
@article{arxiv.2112.06549,
title = {Generating Haar-uniform Randomness using Stochastic Quantum Walks on a Photonic Chip},
author = {Hao Tang and Leonardo Banchi and Tian-Yu Wang and Xiao-Wen Shang and Xi Tan and Wen-Hao Zhou and Zhen Feng and Anurag Pal and Hang Li and Cheng-Qiu Hu and M. S. Kim and Xian-Min Jin},
journal= {arXiv preprint arXiv:2112.06549},
year = {2023}
}
Comments
6 pages and 4 figures for main text ; 16 pages and 16 figures for supplementary note