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Synthesizing Toffoli-optimal quantum circuits for arbitrary multi-qubit unitaries

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arxiv 2401.08950 v1 pith:5M4SBIX4 submitted 2024-01-17 quant-ph

classification quant-ph
keywords mathcalunitariescliffordgateimplementableexactlymulti-qubitarbitrary
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abstract

In this paper we study the Clifford+Toffoli universal fault-tolerant gate set. We introduce a generating set in order to represent any unitary implementable by this gate set and with this we derive a bound on the Toffoli-count of arbitrary multi-qubit unitaries. We analyse the channel representation of the generating set elements, with the help of which we infer $|\mathcal{J}_n^{Tof}|<|\mathcal{J}_n^T|$, where $\mathcal{J}_n^{Tof}$ and $\mathcal{J}_n^T$ are the set of unitaries exactly implementable by the Clifford+Toffoli and Clifford+T gate set, respectively. We develop Toffoli-count optimal synthesis algorithms for both approximately and exactly implementable multi-qubit unitaries. With the help of these we prove $|\mathcal{J}_n^{Tof}|=|\mathcal{J}_n^{CS}|$, where $\mathcal{J}_n^{CS}$ is the set of unitaries exactly implementable by the Clifford+CS gate set.

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

  1. Noise-aware Verification and Synthesis of Quantum Programs

    cs.PL 2026-08 conditional novelty 6.0 of 10

    A noise-aware quantum Hoare logic and an automated synthesis method produce hardware-specific optimal quantum subroutines, showing that classical probabilistic branching can be necessary for optimality.

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