Probing Quantum Telecloning on Superconducting Quantum Processors

被引:0
作者
Pelofske, Elijah [1 ]
Bartschi, Andreas [1 ]
Eidenbenz, Stephan [1 ]
Garcia, Bryan [2 ]
Kiefer, Boris [2 ]
机构
[1] Los Alamos Natl Lab, CCS 3 Informat Sci, Los Alamos, NM 87545 USA
[2] New Mexico State Univ, Dept Phys, Las Cruces, NM 88003 USA
来源
IEEE TRANSACTIONS ON QUANTUM ENGINEERING | 2024年 / 5卷
关键词
Cloning; Qubit; Quantum computing; Program processors; Logic gates; Quantum mechanics; Protocols; Dicke states; dynamic circuits; quantum circuit if statements; quantum circuits; quantum cloning; quantum computing; quantum telecloning; quantum teleportation; real-time feedforward quantum circuit control; superconducting qubit quantum processor; OPTIMAL UNIVERSAL; !text type='PYTHON']PYTHON[!/text] FRAMEWORK; CLONING; INFORMATION; STATE; ENTANGLEMENT; DYNAMICS; QUTIP;
D O I
10.1109/TQE.2024.3391654
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
Quantum information can not be perfectly cloned, but approximate copies of quantum information can be generated. Quantum telecloning combines approximate quantum cloning, more typically referred as quantum cloning, and quantum teleportation. Quantum telecloning allows approximate copies of quantum information to be constructed by separate parties, using the classical results of a Bell measurement made on a prepared quantum telecloning state. Quantum telecloning can be implemented as a circuit on quantum computers using a classical co-processor to compute classical feed forward instructions using if statements based on the results of a mid-circuit Bell measurement in real time. We present universal, symmetric, optimal 1 -> M telecloning circuits, and experimentally demonstrate these quantum telecloning circuits for M=2 up to M=10, natively executed with real time classical control systems on IBM Quantum superconducting processors, known as dynamic circuits. We perform the cloning procedure on many different message states across the Bloch sphere, on 7 IBM Quantum processors, optionally using the error suppression technique X-X sequence digital dynamical decoupling. Two circuit optimizations are utilized, one which removes ancilla qubits for M=2,3, and one which reduces the total number of gates in the circuit but still uses ancilla qubits. Parallel single qubit tomography with MLE density matrix reconstruction is used in order to compute the mixed state density matrices of the clone qubits, and clone quality is measured using quantum fidelity. These results present one of the largest and most comprehensive NISQ computer experimental analyses on (single qubit) quantum telecloning to date. The clone fidelity sharply decreases to 0.5 for M>5, but for M=2 we are able to achieve a mean clone fidelity of up to 0.79 using dynamical decoupling.
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页数:19
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