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Catalysing Completeness and Universality

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arxiv 2404.09915 v1 pith:XKLP2MRP submitted 2024-04-15 quant-ph

classification quant-ph
keywords catalysisgateproofstateuniversalitycompletenesscomputationalhadamard
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abstract

A catalysis state is a quantum state that is used to make some desired operation possible or more efficient, while not being consumed in the process. Recent years have seen catalysis used in state-of-the-art protocols for implementing magic state distillation or small angle phase rotations. In this paper we will see that we can also use catalysis to prove that certain gate sets are computationally universal, and to extend completeness results of graphical languages to larger fragments. In particular, we give a simple proof of the computational universality of the CS+Hadamard gate set using the catalysis of a $T$ gate using a CS gate, which sidesteps the more complicated analytic arguments of the original proof by Kitaev. This then also gives us a simple self-contained proof of the computational universality of Toffoli+Hadamard. Additionally, we show that the phase-free ZH-calculus can be extended to a larger complete fragment, just by using a single catalysis rule (and one scalar rule).

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

  1. A small and interesting architecture for early fault-tolerant quantum computers

    quant-ph 2025-07 conditional novelty 5.0 of 10

    An early fault-tolerant quantum computer architecture that uses teleportation between the [[4,2,2]] and [[8,3,2]] color codes for a universal transversal gate set, plus a mirror-circuit benchmarking protocol.

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