Composable Verification in the Circuit-Model via Magic-Blindness
Sami Abdul Sater, Harold Ollivier

TL;DR
This paper develops noise-robust, composable, and efficient verification protocols for circuit-model quantum computing, specifically using Magic State Injection, bridging a gap with MBQC-based protocols and enabling practical near-term implementation.
Contribution
It introduces a novel verification protocol for Clifford + MSI circuits that enhances security, reduces communication costs, and bridges the modularity gap with MBQC protocols.
Findings
Achieves noise robustness and composability in circuit-model verification.
Reduces quantum communication costs by localizing qubit transmission.
Extends security guarantees of previous protocols to circuit-based architectures.
Abstract
As quantum computing machines move towards the utility regime, it is essential that users are able to verify their delegated quantum computations with security guarantees that are (i) robust to noise (ii) composable with other secure protocols and (iii) exponentially stronger as the number of resources dedicated to security increases. Previous works that achieve these guarantees are expressed in the Measurement-Based Quantum Computation (MBQC) model and benefit from a modular framework of verification protocols. This leaves architectures based on the circuit-model -- in particular those using the Magic State Injection (MSI) -- with fewer options to verify their computations or with the need to compile their circuits in MBQC which leads to overheads. This paper introduces a family of noise robust, composable and efficient verification protocols for Clifford + MSI circuits that are…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum Information and Cryptography · Physical Unclonable Functions (PUFs) and Hardware Security
