Towards Efficient Quantum Spin System Simulations on NISQ
Norhan M Eassa, Jeffrey Cohn, et al.
APS March Meeting 2022
Off-resonant error for a driven quantum system refers to interactions due to the input drives having non-zero spectral overlap with unwanted system transitions. Here, we quantify off-resonant error for the cross-resonance interaction with application to a direct CNOT gate implementation [1, 2]. We show that pulse parameters should be optimized so that off-resonant transition frequencies coincide with the local minima due to the pulse spectrum sidebands. Additionally, we show that a Y-DRAG [3, 4] pulse on the control qubit can significantly help to mitigate the effects of off-resonant error. Depending on system parameters, the proposed methods can improve the average off-resonant error by up to an order of magnitude for a direct CNOT calibration.
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[4] Jay M Gambetta, F Motzoi, ST Merkel, and Frank K Wilhelm. “Analytic control methods for high-fidelity unitary operations in a weakly nonlinear oscillator”. Physical Review A, 83(1):012308, 2011. *This work was supported by the Intelligence Advanced Research Projects Activity (IARPA) under contract W911NF-16-1-0114.
Norhan M Eassa, Jeffrey Cohn, et al.
APS March Meeting 2022
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