2 research outputs found
A universal programmable Gaussian Boson Sampler for drug discovery
Gaussian Boson Sampling (GBS) exhibits a unique ability to solve graph
problems, such as finding cliques in complex graphs. It is noteworthy that many
drug discovery tasks can be viewed as the clique-finding process, making them
potentially suitable for quantum computation. However, to perform these tasks
in their quantum-enhanced form, a large-scale quantum hardware with universal
programmability is essential, which is yet to be achieved even with the most
advanced GBS devices. Here, we construct a time-bin encoded GBS photonic
quantum processor that is universal, programmable, and software-scalable. Our
processor features freely adjustable squeezing parameters and can implement
arbitrary unitary operations with a programmable interferometer. Using our
processor, we have demonstrated the clique-finding task in a 32-node graph,
where we found the maximum weighted clique with approximately twice the
probability of success compared to classical sampling. Furthermore, a
multifunctional quantum pharmaceutical platform is developed. This GBS
processor is successfully used to execute two different drug discovery methods,
namely molecular docking and RNA folding prediction. Our work achieves the
state-of-the-art in GBS circuitry with its distinctive universal and
programmable architecture which advances GBS towards real-world applications.Comment: 10 pages, 5 figure