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Efficient learning of mixed-state tomography for photonic quantum walk. | LitMetric

AI Article Synopsis

  • Scientists found new ways to use noise in open quantum walks, which helps them perform better!
  • It’s usually really hard to check if these quantum walks are successful because it needs a lot of complicated measurements!
  • A new method using neural networks can figure out the quantum states much faster and requires fewer measurements, making things easier for experiments!

Article Abstract

Noise-enhanced applications in open quantum walk (QW) has recently seen a surge due to their ability to improve performance. However, verifying the success of open QW is challenging, as mixed-state tomography is a resource-intensive process, and implementing all required measurements is almost impossible due to various physical constraints. To address this challenge, we present a neural-network-based method for reconstructing mixed states with a high fidelity (∼97.5%) while costing only 50% of the number of measurements typically required for open discrete-time QW in one dimension. Our method uses a neural density operator that models the system and environment, followed by a generalized natural gradient descent procedure that significantly speeds up the training process. Moreover, we introduce a compact interferometric measurement device, improving the scalability of our photonic QW setup that enables experimental learning of mixed states. Our results demonstrate that highly expressive neural networks can serve as powerful alternatives to traditional state tomography.

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Source
http://dx.doi.org/10.1126/sciadv.adl4871DOI Listing

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