Accreditation Against Limited Adversarial Noise
arXiv:2409.03995 · doi:10.1002/qute.202500337
Abstract
I present an accreditation protocol (a variety of quantum verification) where error is assumed to be adversarial (in contrast to the assumption error is implemented by identical CPTP maps used in previous accreditation protocols) - albeit slightly modified to reflect physically motivated error assumptions. This is achieved by upgrading a pre-existing accreditation protocol (from [S. Ferracin et al. Phys. Rev. A 104, 042603 (2021)]) to function correctly in the face of adversarial error, with no diminution in efficiency or suitability for near-term usage.
Accepted to Advanced Quantum Technologies
References in corpus (39)
- Quantum Computing in the NISQ era and beyond
- Supplementary information for "Quantum supremacy using a programmable superconducting processor"
- Randomized Benchmarking of Quantum Gates
- Robust randomized benchmarking of quantum processes
- Exact and Approximate Unitary 2-Designs: Constructions and Applications
- High-fidelity preparation, gates, memory and readout of a trapped-ion quantum bit
- Noise tailoring for scalable quantum computation via randomized compiling
- Benchmarking an 11-qubit quantum computer
- Direct Fidelity Estimation from Few Pauli Measurements
- Universal blind quantum computation
- Self-Consistent Quantum Process Tomography
- Symmetrised Characterisation of Noisy Quantum Processes
- Characterizing large-scale quantum computers via cycle benchmarking
- Efficient learning of quantum noise
- Quantum Sampling Problems, BosonSampling and Quantum Supremacy
- Verification of quantum computation: An overview of existing approaches
- Experimental verification of quantum computations
- A general framework for randomized benchmarking
- Characterizing Universal Gate Sets via Dihedral Benchmarking
- Post hoc verification of quantum computation
- Post hoc verification with a single prover
- Interactive proofs for BQP via self-tested graph states
- Direct certification of a class of quantum simulations
- Benchmarking quantum computers
- Experimental Estimation of Average Fidelity of a Clifford Gate on a 7-qubit Quantum Processor
- How to Verify a Quantum Computation
- Robust self-testing of many-qubit states
- Practical experimental certification of computational quantum gates via twirling
- Randomized benchmarking for individual quantum gates
- Optimised resource construction for verifiable quantum computation
- Modeling Noisy Quantum Circuits Using Experimental Characterization
- Accrediting outputs of noisy intermediate-scale quantum computing devices
- Efficiently improving the performance of noisy quantum computers
- Reducing resources for verification of quantum computations
- Improved quantum error correction with randomized compiling
- Nonadaptive fault-tolerant verification of quantum supremacy with noise
- Unifying Quantum Verification and Error-Detection: Theory and Tools for Optimisations
- A game of quantum advantage: linking verification and simulation
- Accreditation of Analogue Quantum Simulators