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Temporal Information Processing on Noisy Quantum Computers

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arxiv 2001.09498 v2 pith:DQ77BY4V submitted 2020-01-26 quant-ph cs.SYeess.SYstat.ML

Temporal Information Processing on Noisy Quantum Computers

classification quant-ph cs.SYeess.SYstat.ML
keywords quantumprocessingcomputerstemporalclasscomputingnoisynonlinear
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The combination of machine learning and quantum computing has emerged as a promising approach for addressing previously untenable problems. Reservoir computing is an efficient learning paradigm that utilizes nonlinear dynamical systems for temporal information processing, i.e., processing of input sequences to produce output sequences. Here we propose quantum reservoir computing that harnesses complex dissipative quantum dynamics. Our class of quantum reservoirs is universal, in that any nonlinear fading memory map can be approximated arbitrarily closely and uniformly over all inputs by a quantum reservoir from this class. We describe a subclass of the universal class that is readily implementable using quantum gates native to current noisy gate-model quantum computers. Proof-of-principle experiments on remotely accessed cloud-based superconducting quantum computers demonstrate that small and noisy quantum reservoirs can tackle high-order nonlinear temporal tasks. Our theoretical and experimental results pave the path for attractive temporal processing applications of near-term gate-model quantum computers of increasing fidelity but without quantum error correction, signifying the potential of these devices for wider applications including neural modeling, speech recognition and natural language processing, going beyond static classification and regression tasks.

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