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Quantum simulators gain quantitative error bars in 51-ion test

Quantum simulators gain quantitative error bars in 51-ion test

phys.org 19.08.2026 15:45 17 baxış
In the coming years, increasingly larger and more powerful quantum systems are expected to tackle problems that are difficult or impossible to solve using conventional computers. However, the more powerful quantum simula

This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: In the coming years, increasingly larger and more powerful quantum systems are expected to tackle problems that are difficult or impossible to solve using conventional computers. However, the more powerful quantum simulations become, the more difficult it is to independently verify their results.

Where classical simulation is still feasible, results can be cross-checked directly; beyond that regime, other methods are needed. Researchers led by Tristan Kraft of the Technical University of Munich and Peter Zoller of the University of Innsbruck and the Institute for Quantum Optics and Quantum Information at the Austrian Academy of Sciences, together with Barbara Kraus of the Technical University of Munich, have now demonstrated how a quantum simulator can be experimentally characterized and how the uncertainties that arise in the process can be translated into quantitative error limits for its results. The approach was demonstrated by a team led by Manoj Joshi and Christian Roos using an ion-trap quantum simulator containing up to 51 ions.

The paper is published in the journal Physical Review X. Quantum simulators are physical systems that can be used to replicate the behavior of other quantum systems. Their potential lies in the ability to study complex many-particle systems, the calculation of which quickly reaches its limits with classical computers.

"But no real experiment is perfect," says Kraft. "Interactions may turn out differently than expected, the system is influenced by its environment, and measurements are also subject to uncertainties." The researchers have now developed an approach that uses experimental data to learn how the quantum simulator actually behaves. "From this data, we determine the relevant interactions as well as key influences from fluctuations and noise.

We then calculate how the uncertainties in this model affect the simulation results," explains Kraft. "The quantum simulator thus provides not just a single value, but a result with error margins that quantify its accuracy." The new method was first tested on a system of 10 ions, whose dynamics can still be calculated using a conventional computer. The resulting models and error bounds were compared with independent measurements.

The researchers then applied the method to a chain of 51 ions and demonstrated that the approach can also be applied to significantly larger systems. The researchers will now apply this approach to two-dimensional quantum systems. "This is particularly important because classical calculations for such systems become significantly more difficult as the number of particles increases," explains quantum computing pioneer Zoller.

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