Experimental Solutions to the High-Dimensional Mean King's Problem
Abstract
In 1987, Vaidman, Aharanov, and Albert put forward a puzzle called the Mean King's Problem (MKP) that can be solved only by harnessing quantum entanglement. Prime-powered solutions to the problem have been shown to exist, but they have not yet been experimentally realized for any dimension beyond two. We propose a general first-of-its-kind experimental scheme for solving the MKP in prime dimensions (). Our search is guided by the digital discovery framework PyTheus, which finds highly interpretable graph-based representations of quantum optical experimental setups; using it, we find specific solutions and generalize to higher dimensions through human insight. As proof of principle, we present a detailed investigation of our solution for the three-, five-, and seven-dimensional cases. We obtain maximum success probabilities of , , and , respectively. We, therefore, posit that our computer-inspired scheme yields solutions that exceed the classical probability () twofold, demonstrating its promise for experimental implementation.
Cite
@article{arxiv.2307.12938,
title = {Experimental Solutions to the High-Dimensional Mean King's Problem},
author = {Tareq Jaouni and Xiaoqin Gao and Sören Arlt and Mario Krenn and Ebrahim Karimi},
journal= {arXiv preprint arXiv:2307.12938},
year = {2024}
}
Comments
Fixed unusual visual aberration in Figure 2, and moved Acknowledgements section