Toward Scalable Boson Sampling with Photon Loss

Hui Wang(Alibaba Group (China)), Wei Li(Hefei National Center for Physical Sciences at Nanoscale), Xiao Jiang(University of Science and Technology of China), Yuming He(University of Science and Technology of China), Yongbin Li(Alibaba Group (China)), Xing Ding(Hefei National Center for Physical Sciences at Nanoscale), Minjia Chen(CAS Key Laboratory of Urban Pollutant Conversion), Jian Qin(Alibaba Group (China)), Cheng-Zhi Peng(CAS Key Laboratory of Urban Pollutant Conversion), Christian Schneider(University of Würzburg), M. Kamp(University of Würzburg), W. J. Zhang(Shanghai Institute of Microsystem and Information Technology), Hao Li(Shanghai Institute of Microsystem and Information Technology), Lixing You(Chinese Academy of Sciences), Zehua Wang(Shanghai Institute of Microsystem and Information Technology), Jonathan P. Dowling(Louisiana State University), Sven Höfling(University of Science and Technology of China), Chao‐Yang Lu(Alibaba Group (China)), Jian-Wei Pan(CAS Key Laboratory of Urban Pollutant Conversion)
Physical Review Letters
June 6, 2018
Cited by 129Open Access
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Abstract

Boson sampling is a well-defined task that is strongly believed to be intractable for classical computers, but can be efficiently solved by a specific quantum simulator. However, an outstanding problem for large-scale experimental boson sampling is the scalability. Here we report an experiment on boson sampling with photon loss, and demonstrate that boson sampling with a few photons lost can increase the sampling rate. Our experiment uses a quantum-dot-micropillar single-photon source demultiplexed into up to seven input ports of a 16×16 mode ultralow-loss photonic circuit, and we detect three-, four- and fivefold coincidence counts. We implement and validate lossy boson sampling with one and two photons lost, and obtain sampling rates of 187, 13.6, and 0.78 kHz for five-, six-, and seven-photon boson sampling with two photons lost, which is 9.4, 13.9, and 18.0 times faster than the standard boson sampling, respectively. Our experiment shows an approach to significantly enhance the sampling rate of multiphoton boson sampling.


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