English

Robust Quantum Gates against Correlated Noise in Integrated Quantum Chips

Quantum Physics 2024-06-27 v3

Abstract

As quantum circuits become more integrated and complex, additional error sources that were previously insignificant start to emerge. Consequently, the fidelity of quantum gates benchmarked under pristine conditions falls short of predicting their performance in realistic circuits. To overcome this problem, we must improve their robustness against pertinent error models besides isolated fidelity. Here we report the experimental realization of robust quantum gates in superconducting quantum circuits based on a geometric framework for diagnosing and correcting various gate errors. Using quantum process tomography and randomized benchmarking, we demonstrate robust single-qubit gates against quasi-static noise and spatially-correlated noise in a broad range of strengths, which are common sources of coherent errors in large-scale quantum circuit. We also apply our method to non-static noises and to realize robust two-qubit gates. Our work provides a versatile toolbox for achieving noise-resilient complex quantum circuits.

Keywords

Cite

@article{arxiv.2401.01810,
  title  = {Robust Quantum Gates against Correlated Noise in Integrated Quantum Chips},
  author = {Kangyuan Yi and Yong-Ju Hai and Kai Luo and Ji Chu and Libo Zhang and Yuxuan Zhou and Yao Song and Song Liu and Tongxing Yan and Xiu-Hao Deng and Yuanzhen Chen and Dapeng Yu},
  journal= {arXiv preprint arXiv:2401.01810},
  year   = {2024}
}

Comments

6 pages, 4 figures plus Supplementary Information

R2 v1 2026-06-28T14:07:55.369Z