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Abstract Combinatorial optimization problems on graphs have broad applications in science and engineering. The quantum approximate optimization algorithm (QAOA) is a method to solve these problems on a quantum computer by applying multiple rounds of variational circuits. However, there exist several challenges limiting the application of QAOA to real-world problems. In this paper, we demonstrate on a trapped-ion quantum computer that QAOA results improve with the number of rounds for multiple problems on several arbitrary graphs. We also demonstrate an advanced mixing Hamiltonian that allows sampling of all optimal solutions with predetermined weights. Our results are a step toward applying quantum algorithms to real-world problems.more » « less
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Nguyen, Nhung H.; Tran, Minh C.; Zhu, Yingyue; Green, Alaina M.; Alderete, C. Huerta; Davoudi, Zohreh; Linke, Norbert M. (, PRX Quantum)
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Daniel, Austin K.; Zhu, Yinyue; Huerta Alderete, C.; Buchemmavari, Vikas; Green, Alaina M.; Nguyen, Nhung H.; Thurtell, Tyler G.; Zhao, Andrew; Linke, Norbert M.; Miyake, Akimasa (, Physical review research)We propose a set of Bell-type nonlocal games that can be used to prove an unconditional quantum advantage in an objective and hardware-agnostic manner. In these games, the circuit depth needed to prepare a cyclic cluster state and measure a subset of its Pauli stabilizers on a quantum computer is compared to that of classical Boolean circuits with the same, nearest-neighboring gate connectivity. Using a circuit-based trapped-ion quantum computer, we prepare and measure a six-qubit cyclic cluster state with an overall fidelity of 60.6% and 66.4%, before and after correcting for measurement-readout errors, respectively. Our experimental results indicate that while this fidelity readily passes conventional (or depth-0) Bell bounds for local hidden-variable models, it is on the cusp of demonstrating a higher probability of success than what is possible by depth-1 classical circuits. Our games offer a practical and scalable set of quantitative benchmarks for quantum computers in the pre-fault-tolerant regime as the number of qubits available increases.more » « less
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Green, Alaina M.; Elben, A.; Alderete, C. Huerta; Joshi, Lata Kh; Nguyen, Nhung H.; Zache, Torsten V.; Zhu, Yingyue; Sundar, Bhuvanesh; Linke, Norbert M. (, Physical Review Letters)
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