A novel semi-quantum co-signature scheme based on GHZ states and four-particle cluster states
DOI10.1007/s10773-023-05329-5zbMath1526.81019OpenAlexW4361228903MaRDI QIDQ6103754
Tianlong Chen, Xing-Qiang Zhao
Publication date: 27 June 2023
Published in: International Journal of Theoretical Physics (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1007/s10773-023-05329-5
Semiclassical techniques, including WKB and Maslov methods applied to problems in quantum theory (81Q20) Operator algebra methods applied to problems in quantum theory (81R15) (n)-body problems (70F10) Authentication, digital signatures and secret sharing (94A62) Quantum coherence, entanglement, quantum correlations (81P40) Cluster sets, prime ends, boundary behavior (30D40) Quantum coding (general) (81P70) Computer security (68M25)
Related Items (1)
Cites Work
- A novel semi-quantum secret sharing scheme of specific bits
- Authenticated semi-quantum key distribution protocol using Bell states
- Security of a single-state semi-quantum key distribution protocol
- Semi-quantum bi-signature scheme based on W states
- An efficient anti-quantum lattice-based blind signature for blockchain-enabled systems
- Semi-quantum proxy signature scheme with quantum walk-based teleportation
- Semi-quantum cryptography
- Qutrit-based semi-quantum key distribution protocol
- Semiquantum key distribution
- Quantum Key Distribution with Classical Bob
- Circular Semi-Quantum Secret Sharing Using Single Particles
- Observation of Three-Photon Greenberger-Horne-Zeilinger Entanglement
- On the security of arbitrated quantum signature schemes
- Quantum secret sharing with classical Bobs
- Distillation of secret key and entanglement from quantum states
- Mediated Semi‐Quantum Key Distribution Without Invoking Quantum Measurement
- Mediated Semi‐Quantum Key Distribution Using Single Photons
- Multi‐Party Semi‐Quantum Key Distribution Protocol With Four‐Particle Cluster States
This page was built for publication: A novel semi-quantum co-signature scheme based on GHZ states and four-particle cluster states