One Gate Scheme to Rule Them All: Introducing a Complex Yet Reduced Instruction Set for Quantum Computing
Jianxin Chen, Dawei Ding, Weiyuan Gong, Cupjin Huang, Qi Ye
摘要
The design and architecture of a quantum instruction set are paramount to the performance of a quantum computer. This work introduces a gate scheme for qubits with XX + Y Y coupling that directly and efficiently realizes any two-qubit gate up to single-qubit gates. First, this scheme enables high-fidelity execution of quantum operations and achieves minimum possible gate times. Second, since the scheme spans the entire SU(4) group of two-qubit gates, we can use it to attain the optimal two-qubit gate count for algorithm implementation. These two advantages in synergy give rise to a quantum Complex yet Reduced Instruction Set Computer (CRISC). Though the gate scheme is compact, it supports a comprehensive array of quantum operations. This may seem paradoxical but is realizable due to the fundamental differences between quantum and classical computer architectures.
Using our gate scheme, we observe marked improvements across various applications, including generic n-qubit gate synthesis, quantum volume, and qubit routing. Furthermore, the proposed scheme also realizes a gate locally equivalent to the commonly used CNOT gate with a gate time of π 2g , where g is the two-qubit coupling. The AshN scheme is also completely impervious to ZZ error, the main coherent error in transversely coupled systems, as the control parameters implementing the gates can be easily adjusted to take the ZZ term into account.
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引用它的顶会 Paper3
- Unifying Qubit Routing Across Diverse Quantum ISAs via Canonical RepresentationZhaohui Yang, Kai Zhang, Xinyang Tian, Xiangyu Ren 等ISCA 2026 · 被引用 1 次
- PHOENIX: Pauli-Based High-Level Optimization Engine for Instruction Execution on NISQ DevicesZhaohui Yang, Dawei Ding, Chenghong Zhu, Jianxin Chen 等DAC 2025
- Reconfigurable Quantum Instruction Set Computers for High Performance Attainable on HardwareZhaohui Yang, Dawei Ding, Qi Ye, Cupjin Huang 等ASPLOS 2026
它引用的顶会 Paper2
- Designing Calibration and Expressivity-Efficient Instruction Sets for Quantum ComputingLingling Lao, Prakash Murali, Margaret Martonosi, Dan E. BrowneISCA 2021 · 被引用 23 次
- Let Each Quantum Bit Choose Its Basis GatesSophia Fuhui Lin, Sara Sussman, Casey Duckering, Pranav S. Mundada 等MICRO 2022 · 被引用 13 次
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