arXiv · 2607.04914
Error Mitigation in Bosonic Systems via Virtual Distillation
Abstract
Virtual distillation is a promising error-mitigation technique that exploits multiple copies of a noisy quantum state to estimate observables as if measured on a purified state. Although originally introduced in the context of bosonic many-body systems under the name of virtual cooling, its development and applications have largely focused on qubit-based quantum computation. Here, we establish a framework for virtual distillation in bosonic quantum information processing and continuous-variable quantum computing. Building on a diagonalization of cyclic shift operators implemented with passive linear-optical interferometers, we derive experimentally accessible protocols for estimating virtually distilled expectation values of observables relevant to bosonic architectures. In particular, we show how to recover noise-mitigated expectation values of number operators, phase-shift operators, and arbitrary quadratures from multi-copy measurements. For number operators, we further demonstrate the estimation of virtually distilled correlators of arbitrary order through the characteristic function of the photon-number distribution. We apply the framework to states affected by photon loss and dephasing, two of the dominant noise mechanisms in bosonic quantum computation, and quantify the resulting suppression of noise contributions. Our results extend virtual distillation beyond its original setting and provide a practical route toward error-mitigated measurements in bosonic quantum processors using experimentally available linear-optical resources.
Explore related subjects
Keep this discovery
Leonardo Finocchiaro, Marco Robbio, Diogo Gomes, David Gunn, Adithi Udupa, Axel M. Eriksson, Leonardo Novo, Giulia Ferrini. 2026-07-06. Error Mitigation in Bosonic Systems via Virtual Distillation. https://arxiv.org/abs/2607.04914
Cite the original work for its findings. Save a collection to share your selection of sources.