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QURE: Qubit Re-allocation in Noisy Intermediate-Scale Quantum Computers

机译:QURE:噪声中型量子计算机中的量子位重新分配

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Concerted efforts by the academia and the industries e.g., IBM, Google and Intel have brought us to the era of Noisy Intermediate-Scale Quantum (NISQ) computers. Qubits, the basic elements of quantum computer, have been proven extremely susceptible to different noises. Recent experiments have exhibited spatial variations among the qubits in NISQ hardware. Therefore, conventional mapping of qubit done without quality awareness results in significant loss of fidelity for a given workload. In this paper, we have analyzed the effects of various noise sources on the overall fidelity of the given workload for a real NISQ hardware. We have also presented novel optimization technique namely, Qubit Re-allocation (QURE) to maximize the sequence fidelity of a given workload. QURE is scalable and can be applied to future large scale quantum computers. QURE can improve the fidelity of a quantum workload up to 1.54X (1.39X on average) in simulation and up to 1.7X in real device compared to variation oblivious qubit allocation without incurring any physical overhead. CCS CONCEPTS • Hardware → Quantum error correction and fault tolerance;
机译:在学术界和IBM,Google和Intel等行业的共同努力下,我们进入了嘈杂的中级量子(NISQ)计算机时代。量子比特是量子计算机的基本元素,已被证明极易受到不同噪声的影响。最近的实验显示了NISQ硬件中量子位之间的空间变化。因此,对于给定的工作负载,在没有质量意识的情况下完成的传统的qubit映射会导致保真度的重大损失。在本文中,我们分析了各种噪声源对实际NISQ硬件给定工作负载的整体保真度的影响。我们还提出了一种新颖的优化技术,即Qubit重新分配(QURE),以最大化给定工作负载的序列保真度。 QURE具有可伸缩性,可以应用于未来的大规模量子计算机。与变异型量子比特分配相比,QURE可以在仿真中将量子工作负载的保真度提高多达1.54倍(平均为1.39倍),在真实设备中达到1.7倍,而不会产生任何物理开销。 CCS概念•硬件→量子纠错和容错;

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