A versatile single-photon-based quantum computing platform
Универсальная платформа квантовых вычислений на основе одиночных фотонов
2024-03-26
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boson samplingquantum-dot single-photon sourcesingle-photon quantum computinguniversal linear optical networkvariational quantum eigensolver
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Abstract (AI)
Abstract Quantum computing aims at exploiting quantum phenomena to efficiently perform computations that are unfeasible even for the most powerful classical supercomputers. Among the promising technological approaches, photonic quantum computing offers the advantages of low decoherence, information processing with modest cryogenic requirements, and native integration with classical and quantum networks. So far, quantum computing demonstrations with light have implemented specific tasks with specialized hardware, notably Gaussian boson sampling, which permits the quantum computational advantage to be realized. Here we report a cloud-accessible versatile quantum computing prototype based on single photons. The device comprises a high-efficiency quantum-dot single-photon source feeding a universal linear optical network on a reconfigurable chip for which hardware errors are compensated by a machine-learned transpilation process. Our full software stack allows remote control of the device to perform computations via logic gates or direct photonic operations. For gate-based computation, we benchmark one-, two- and three-qubit gates with state-of-the art fidelities of 99.6 ± 0.1%, 93.8 ± 0.6% and 86 ± 1.2%, respectively. We also implement a variational quantum eigensolver, which we use to calculate the energy levels of the hydrogen molecule with chemical accuracy. For photon native computation, we implement a classifier algorithm using a three-photon-based quantum neural network and report a six-photon boson sampling demonstration on a universal reconfigurable integrated circuit. Finally, we report on a heralded three-photon entanglement generation, a key milestone toward measurement-based quantum computing.
Key Findings
1
A cloud-accessible, versatile quantum computing prototype uses a high-efficiency quantum-dot single-photon source and a reconfigurable universal linear-optical chip.
2
A variational quantum eigensolver calculated hydrogen-molecule energy levels with chemical accuracy.
3
Gate-based benchmarks achieved fidelities of 99.6 ± 0.1% for one-qubit, 93.8 ± 0.6% for two-qubit, and 86 ± 1.2% for three-qubit gates.
4
Machine-learned transpilation compensates hardware errors, while the software stack supports remote computation through logic gates and direct photonic operations.
5
The platform demonstrated photon-native algorithms, including a three-photon quantum neural-network classifier, six-photon boson sampling, and heralded three-photon entanglement generation.
Research Object
A cloud-accessible versatile single-photon-based quantum computing platform comprising a quantum-dot single-photon source and a reconfigurable universal linear optical network
Research Subject
The platform’s quantum-computation capabilities, performance, and applications, including gate fidelities, variational quantum eigensolver accuracy, photonic algorithms, boson sampling, and multiphoton entanglement generation
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2024-03-26
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