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Resource-efficient photonic quantum computation with high-dimensional cluster states

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arxiv 2309.10464 v2 pith:MRUA3YQS submitted 2023-09-19 quant-ph physics.optics

Resource-efficient photonic quantum computation with high-dimensional cluster states

classification quant-ph physics.optics
keywords computationquantumclusterhigh-dimensionalstatesencodingqubitsfeedforward
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Quantum computers can revolutionize science and technology, but their realization remains challenging across all platforms. A promising route to scalability is photonic measurement-based quantum computation, where single-qubit measurements on large cluster states, together with feedforward, enable fault-tolerant quantum computation. However, generating large cluster states at high rates is notoriously difficult, as detection probabilities drop exponentially with the number of photons comprising the state. We tackle this challenge by encoding multiple qubits on each photon through high-dimensional spatial encoding, generating cluster states with over nine qubits at a rate of 100Hz. Additionally, we demonstrate that high-dimensional encoding substantially reduces the computation duration by enabling instantaneous feedforward between qubits encoded in the same photon. Our findings pave the way for resource-efficient measurement-based quantum computation using high-dimensional entanglement.

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    quant-ph 2026-08 conditional novelty 7.0

    A witness method detects high-dimensional Schmidt numbers using only strings of single-qubit Pauli measurements, demonstrated up to 16-dimensional photonic entanglement.