Experimental Quantum Fast Hitting on Hexagonal Graphs
Nature Photonics 12, 754-758 (2018) Quantum walks are powerful kernels in quantum computing protocols that possess strong capabilities in speeding up various simulation and optimisation tasks. One striking example is given by quantum walkers evolving on glued trees for their faster hitting performan...
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Main Authors | , , , , , , , , , , , |
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Format | Journal Article |
Language | English |
Published |
17.07.2018
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Subjects | |
Online Access | Get full text |
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Summary: | Nature Photonics 12, 754-758 (2018) Quantum walks are powerful kernels in quantum computing protocols that
possess strong capabilities in speeding up various simulation and optimisation
tasks. One striking example is given by quantum walkers evolving on glued trees
for their faster hitting performances than in the case of classical random
walks. However, its experimental implementation is challenging as it involves
highly complex arrangements of exponentially increasing number of nodes. Here
we propose an alternative structure with a polynomially increasing number of
nodes. We successfully map such graphs on quantum photonic chips using
femtosecond laser direct writing techniques in a geometrically scalable
fashion. We experimentally demonstrate quantum fast hitting by implementing
two-dimensional quantum walks on these graphs with up to 160 nodes and a depth
of 8 layers, achieving a linear relationship between the optimal hitting time
and the network depth. Our results open up a scalable way towards quantum
speed-up in complex problems classically intractable. |
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DOI: | 10.48550/arxiv.1807.06625 |