Structure-Based Super-Resolution Recovery of Three-Photon Quantum States from Two-Fold Coincidences
Dikla Oren, Yoav Shechtman, Maor Mutzafi, Yonina C. Eldar, Mordechai, Segev

TL;DR
This paper introduces a structure-based method for recovering three-photon quantum states using only two-fold correlation measurements, significantly reducing measurement complexity and increasing signal-to-noise ratio in quantum state tomography.
Contribution
The authors propose a novel approach that leverages the inherent structure of quantum states to enable super-resolution recovery from fewer measurements, specifically from two-fold instead of three-fold coincidences.
Findings
Recovery of three-photon states from two-fold measurements demonstrated
Method improves measurement efficiency and SNR in quantum state tomography
Paves the way for advanced structure-based quantum measurement techniques
Abstract
The field of quantum information has been growing fast over the past decade. Optical quantum computation, based on the concepts of KLM and cluster states, has witnessed experimental realizations of larger and more complex systems in terms of photon number. Quantum optical systems, which offer long coherence times and easy manipulation of single qubits, allow us to probe quantum properties of the light itself and of the physical systems around it. Recently, a linear scheme for quantum computing, relying on the bosonic nature of particles, has been proposed and realized experimentally with photons. The ability to efficiently measure superpositions of quantum states consisting of several photons is essential to the characterization of such systems. In fact, the entire field of quantum information completely relies on the ability to recover quantum states from measurements. However, the…
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Taxonomy
TopicsQuantum Information and Cryptography · Random lasers and scattering media · Advanced Optical Sensing Technologies
