Papers › Simulating the Sycamore quantum supremacy circuits

Simulating the Sycamore quantum supremacy circuits

4 Mar 2021arXiv:2103.03074links table onlyarchive 2025-07-28

Feng Pan, Pan Zhang

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We propose a general tensor network method for simulating quantum circuits. The method is massively more efficient in computing a large number of correlated bitstring amplitudes and probabilities than existing methods. As an application, we study the sampling problem of Google's Sycamore circuits, which are believed to be beyond the reach of classical supercomputers and have been used to demonstrate quantum supremacy. Using our method, employing a small computational cluster containing 60 graphical processing units (GPUs), we have generated one million correlated bitstrings with some entries fixed, from the Sycamore circuit with 53 qubits and 20 cycles, with linear cross-entropy benchmark (XEB) fidelity equals 0.739, which is much higher than those in Google's quantum supremacy experiments.

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Fanerst/simulate_sycamore officialmentioned in papermentioned on GitHubpytorch report
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