Realising and compressing quantum circuits with quantum reservoir computing

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作者
Sanjib Ghosh
Tanjung Krisnanda
Tomasz Paterek
Timothy C. H. Liew
机构
[1] Nanyang Technological University,School of Physical and Mathematical Sciences
[2] University of Gdańsk,Institute of Theoretical Physics and Astrophysics, Faculty of Mathematics, Physics and Informatics
[3] CNRS,MajuLab, International Joint Research Unit UMI 3654
[4] Université Côte d’Azur,undefined
[5] Sorbonne Université,undefined
[6] National University of Singapore,undefined
[7] Nanyang Technological University,undefined
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Quantum computers require precise control over parameters and careful engineering of the underlying physical system. In contrast, neural networks have evolved to tolerate imprecision and inhomogeneity. Here, using a reservoir computing architecture we show how a random network of quantum nodes can be used as a robust hardware for quantum computing. Our network architecture induces quantum operations by optimising only a single layer of quantum nodes, a key advantage over the traditional neural networks where many layers of neurons have to be optimised. We demonstrate how a single network can induce different quantum gates, including a universal gate set. Moreover, in the few-qubit regime, we show that sequences of multiple quantum gates in quantum circuits can be compressed with a single operation, potentially reducing the operation time and complexity. As the key resource is a random network of nodes, with no specific topology or structure, this architecture is a hardware friendly alternative paradigm for quantum computation.
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