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Atomic and Laser Physics
Credit: Jack Hobhouse

Prof Vlatko Vedral FInstP

Professor of Quantum Information Science

Sub department

  • Atomic and Laser Physics

Research groups

  • Frontiers of quantum physics
vlatko.vedral@physics.ox.ac.uk
Telephone: 01865 (2)72389
Clarendon Laboratory, room 241.8
  • About
  • Publications

Quantum gravitational deflection of parallel matter wave beams

(2026)

Authors:

Soham Sen, Vlatko Vedral

Double Slit Experiment in the Heisenberg Picture of Quantum Mechanics

(2026)

Gravity mediated entanglement of phonons in Bose-Einstein condensates

(2026)

Authors:

Soham Sen, Sunandan Gangopadhyay, Vlatko Vedral

On Lorentzian symmetries of quantum information

(2026)

Authors:

James Fullwood, Vlatko Vedral, Edgar Guzm谩n-Gonz谩lez

Practical blind quantum computation with parity quantum computing framework

Quantum Science and Technology IOP Publishing 11:2 (2026) 025033

Authors:

Yuxun Wang, Qin Li, Shao-Ming Fei, Vlatko Vedral

Abstract:

Blind quantum computation (BQC) allows clients with limited quantum capabilities to delegate computational tasks to remote quantum servers while keeping the privacy of their data. However, existing BQC protocols often fail to balance resource consumption and practical feasibility, which is particularly significant in the noisy intermediate-scale quantum era. In this paper, we propose a practical BQC model based on the parity quantum computing framework. It requires the server to perform operations only on adjacent qubits and eliminates the need for additional SWAP gates when two-qubit gates should be applied to non-adjacent qubits, greatly facilitating the physical implementation on real quantum devices. Furthermore, we prove that the proposed BQC model ensures the privacy of client鈥檚 information and satisfies the property of verifiability which enables clients to identify dishonest servers. Finally, a detailed example is given and simulated on the IBM鈥檚 quantum platform to demonstrate its feasibility.

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