首页> 外文会议>International Test Conference India >Resource Optimal Realization of Fault-Tolerant Quantum Circuit
【24h】

Resource Optimal Realization of Fault-Tolerant Quantum Circuit

机译:容错量子电路的资源优化实现

获取原文

摘要

Encoding of quantum information and carrying out computation on encoded state is an essential requirement for improving the reliability of a quantum computer. Resource limitation in today’s noisy intermediate scale quantum (NISQ) processors further restricts carrying out fault-tolerant quantum gate operations on such systems. Recent experiments conducted on physical qubits of superconducting transmon type and trapped atomic ions using the fault-tolerant scheme based on [[4, 2, 2]] code have shown a systematic improvement in the fidelity of all logical quantum gate operations except the logical controlled-NOT (CNOT) operation that requires 3 physical SWAP operations for fault-tolerant realization.In this present work we propose an optimal realization of logical CNOT operations on a single or two separate [[4, 2, 2]] code-words using 4 physical CNOT operations and an additional qubit. We further introduce logical two-qubit positive and negative controlled-phase operations with varying rotation angle, and also propose the fault-tolerant realization of logical 2-controlled-phase $(C^{2}Z)$ and 2-controlled-NOT (C2 NOT) operations that are required for universal computation using [[4, 2, 2]] encoding. The implementation requires less number of encoded operations and one additional qubit. Through experiments conducted on the 15-qubit IBM Quantum Experience processor and QASM simulator the fidelity and validity of all these proposed gate operations have been verified.
机译:量子信息的编码和对编码状态的计算是提高量子计算机可靠性的基本要求。当今嘈杂的中型量子(NISQ)处理器的资源限制进一步限制了在此类系统上执行容错量子门操作。最近基于[[4,2,2]]代码使用容错方案对超导transmon型物理量子位和捕获的原子离子进行的实验表明,除逻辑控制外,所有逻辑量子门操作的保真度都有系统的提高-NOT(CNOT)操作需要3个物理SWAP操作才能实现容错。在本工作中,我们建议使用单个或两个单独的[[4,2,2]]码字对逻辑CNOT操作进行最佳实现4个物理CNOT操作和一个附加的qubit。我们进一步介绍了具有可变旋转角度的逻辑两比特正负受控相运算,并提出了逻辑两受控相$(C ^ {2} Z)$和2-受控NOT的容错实现。 (C 2 NOT)使用[[4,2,2]]编码进行通用计算所需的操作。该实现需要较少数量的编码操作和一个额外的量子位。通过在15量子位IBM Quantum Experience处理器和QASM仿真器上进行的实验,已验证了所有这些拟议的门操作的保真度和有效性。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号