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Quantum-enhanced bosonic learning machine

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arxiv 2104.04168 v1 pith:SEACSQT7 submitted 2021-04-09 quant-ph physics.atom-ph

classification quant-phphysics.atom-ph
keywords quantumlearningmachinebosonicstatesspacealgorithmcircuit
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Quantum processors enable computational speedups for machine learning through parallel manipulation of high-dimensional vectors. Early demonstrations of quantum machine learning have focused on processing information with qubits. In such systems, a larger computational space is provided by the collective space of multiple physical qubits. Alternatively, we can encode and process information in the infinite-dimensional Hilbert space of bosonic systems such as quantum harmonic oscillators. This approach offers a hardware-efficient solution with potential quantum speedups to practical machine learning problems. Here we demonstrate a quantum-enhanced bosonic learning machine operating on quantum data with a system of trapped ions. Core elements of the learning processor are the universal feature-embedding circuit that encodes data into the motional states of ions, and the constant-depth circuit that estimates overlap between two quantum states. We implement the unsupervised K-means algorithm to recognize a pattern in a set of high-dimensional quantum states and use the discovered knowledge to classify unknown quantum states with the supervised k-NN algorithm. These results provide building blocks for exploring machine learning with bosonic processors.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Pound-Drever-Hall Feedforward for Trapped-Ion Optical Qubits

    quant-ph 2026-07 conditional novelty 5.0 of 10

    PDH feedforward cuts 132-kHz servo-bump phase noise by 15 dB on a 1762-nm barium-ion optical-qubit laser and improves Rabi coherence time from ~3.7 to ~21.7 µs.

  2. Doubling Qubits in a Trapped-Ion System via Vibrational Dual-Rail Encoding

    quant-ph 2025-05 conditional novelty 5.0 of 10

    A proposal for encoding dual-rail qubits in trapped-ion vibrational modes and combining them with the ions' internal qubits to nearly double the logical qubit count with all-to-all connectivity.

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