English

Parity Cross-Resonance: A Multiqubit Gate

Quantum Physics 2025-08-15 v1 Machine Learning Optimization and Control

Abstract

We present a native three-qubit entangling gate that exploits engineered interactions to realize control-control-target and control-target-target operations in a single coherent step. Unlike conventional decompositions into multiple two-qubit gates, our hybrid optimization approach selectively amplifies desired interactions while suppressing unwanted couplings, yielding robust performance across the computational subspace and beyond. The new gate can be classified as a cross-resonance gate. We show it can be utilized in several ways, for example, in GHZ triplet state preparation, Toffoli-class logic demonstrations with many-body interactions, and in implementing a controlled-ZZ gate. The latter maps the parity of two data qubits directly onto a measurement qubit, enabling faster and higher-fidelity stabilizer measurements in surface-code quantum error correction. In all these examples, we show that the three-qubit gate performance remains robust across Hilbert space sizes, as confirmed by testing under increasing total excitation numbers. This work lays the foundation for co-designing circuit architectures and control protocols that leverage native multiqubit interactions as core elements of next-generation superconducting quantum processors.

Keywords

Cite

@article{arxiv.2508.10807,
  title  = {Parity Cross-Resonance: A Multiqubit Gate},
  author = {Xuexin Xu and Siyu Wang and Radhika Joshi and Rihan Hai and Mohammad H. Ansari},
  journal= {arXiv preprint arXiv:2508.10807},
  year   = {2025}
}

Comments

19 pages, 10 figures

R2 v1 2026-07-01T04:50:15.319Z