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Simulating Large Quantum Circuits on a Small Quantum Computer

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arxiv 1904.00102 v2 pith:3RQQUKEY submitted 2019-03-29 quant-ph

classification quant-ph
keywords quantumcircuitclusteredqubitssimulateclusterclusterscomputer
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abstract

Limited quantum memory is one of the most important constraints for near-term quantum devices. Understanding whether a small quantum computer can simulate a larger quantum system, or execute an algorithm requiring more qubits than available, is both of theoretical and practical importance. In this Letter, we introduce cluster parameters $K$ and $d$ of a quantum circuit. The tensor network of such a circuit can be decomposed into clusters of size at most $d$ with at most $K$ qubits of inter-cluster quantum communication. We propose a cluster simulation scheme that can simulate any $(K,d)$-clustered quantum circuit on a $d$-qubit machine in time roughly $2^{O(K)}$, with further speedups possible when taking more fine-grained circuit structure into account. We show how our scheme can be used to simulate clustered quantum systems -- such as large molecules -- that can be partitioned into multiple significantly smaller clusters with weak interactions among them. By using a suitable clustered ansatz, we also experimentally demonstrate that a quantum variational eigensolver can still achieve the desired performance for estimating the energy of the BeH$_2$ molecule while running on a physical quantum device with half the number of required qubits.

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

  1. How Much Reconstruction Does Quantum Machine Learning Need? Late Fusion of Independently Trained Quantum Subcircuits

    quant-ph 2026-08 conditional novelty 6.0 of 10

    Late fusion of independently trained quantum subcircuits matches exact circuit-cutting reconstruction accuracy on tested tasks while avoiding exponential sampling overhead, with a diagnostic indicating when reconstruc...

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