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Equivalence Checking of Quantum Circuits with the ZX-Calculus

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arxiv 2208.12820 v1 pith:CRNDIMWH submitted 2022-08-26 quant-ph cs.ET

classification quant-phcs.ET
keywords quantumcheckingequivalencecircuitszx-calculusmethodsbeenmethod
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

As state-of-the-art quantum computers are capable of running increasingly complex algorithms, the need for automated methods to design and test potential applications rises. Equivalence checking of quantum circuits is an important, yet hardly automated, task in the development of the quantum software stack. Recently, new methods have been proposed that tackle this problem from widely different perspectives. One of them is based on the ZX-calculus, a graphical rewriting system for quantum computing. However, the power and capability of this equivalence checking method has barely been explored. The aim of this work is to evaluate the ZX-calculus as a tool for equivalence checking of quantum circuits. To this end, it is demonstrated how the ZX-calculus based approach for equivalence checking can be expanded in order to verify the results of compilation flows and optimizations on quantum circuits. It is also shown that the ZX-calculus based method is not complete$\unicode{x2014}$especially for quantum circuits with ancillary qubits. In order to properly evaluate the proposed method, we conduct a detailed case study by comparing it to two other state-of-the-art methods for equivalence checking: one based on path-sums and another based on decision diagrams. The proposed methods have been integrated into the publicly available QCEC tool (https://github.com/cda-tum/qcec) which is part of the Munich Quantum Toolkit (MQT).

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Cited by 1 Pith paper

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  1. Entangled Threats: A Unified Kill Chain Model for Quantum Machine Learning Security

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    The paper adapts kill chain methodology from classical IT security to quantum machine learning, organizing published QML attacks into a five-stage lifecycle with attacker roles, capabilities, and defenses.

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