A Dynamically Programmable Quantum Photonic Microprocessor for Graph Computation

Author:

Zhu Huihui1,Chen Haosen2,Li Shuyi1,Chen Tian2,Li Yuan1,Luo Xianshu3,Gao Feng3,Li Qiang3,Zhou Linjie4,Karim Muhammad Faeyz1,Shang Xiaopeng1,Duan Fei1,Cai Hong5,Chin Lip Ket6,Kwek Leong Chuan17,Zhang Xiangdong2,Liu Ai‐Qun1ORCID

Affiliation:

1. Quantum Science and Engineering Centre (QSec) Nanyang Technological University Singapore 639798 Singapore

2. Key Laboratory of advanced optoelectronic quantum architecture and measurements of Ministry of Education School of Physics Beijing Institute of Technology Beijing 100081 China

3. Advanced Micro Foundry 11 Science Park Road Singapore 117685 Singapore

4. State Key Laboratory of Advanced Optical Communication Systems and Networks Shanghai Jiao Tong University Shanghai 200240 China

5. Institute of Microelectronics A*STAR Agency for Science, Technology, and Research Singapore 138634 Singapore

6. Department of Electrical Engineering City University of Hong Kong Hong Kong SAR 999077 China

7. Centre for Quantum Technologies National University of Singapore Block S15, 3 Science Drive 2 Singapore 117543 Singapore

Abstract

AbstractQuantum computing has grown extensively, especially in system design and development, and the current research focus has gradually evolved from validating quantum advantage to practical applications. In particular, nondeterministic‐polynomial‐time (NP)‐complete problems are central in numerous important application areas. Still, in practice, it is difficult to solved efficiently with conventional computers, limited by the exponential jump in hardness. Here, a quantum photonic microprocessor based on Gaussian boson sampling (GBS) that offers dynamic programmability to solve various graph‐related NP‐complete problems is demonstrated. The system with optical, electrical, and thermal packaging implements a GBS with 16 modes of single‐mode squeezed vacuum states, a universal programmable 16‐mode interferometer, and a single photon readout on all outputs with high accuracy, generality, and controllability. The developed system is applied to demonstrate applications in solving NP‐complete problems, manifesting the ability of photonic quantum computing to realize practical applications for conventionally intractable computations. The GBS‐based quantum photonic microprocessor is applied to solve task assignment, Boolean satisfiability, graph clique, max cut, and vertex cover. These demonstrations suggest an excellent benchmarking platform, paving the way toward large‐scale combinatorial optimization.

Funder

National Research Foundation Singapore

Publisher

Wiley

Subject

Condensed Matter Physics,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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