Demonstration of measurement-only blind quantum computing
arXiv:1601.02451 · doi:10.1088/1367-2630/18/1/013020
Abstract
Blind quantum computing allows for secure cloud networks of quasi-classical clients and a fully fledged quantum server. Recently, a new protocol has been proposed, which requires a client to perform only measurements. We demonstrate a proof-of-principle implementation of this measurement-only blind quantum computing, exploiting a photonic setup to generate four-qubit cluster states for computation and verification. Feasible technological requirements for the client and the device-independent blindness make this scheme very applicable for future secure quantum networks.
References in corpus (12)
- High-speed linear optics quantum computing using active feed-forward
- Integrated spatial multiplexing of heralded single photon sources
- Entanglement Detection in the Stabilizer Formalism
- Quantum computing on encrypted data
- Experimental verification of quantum computations
- Generation of high-fidelity four-photon cluster state and quantum-domain demonstration of one-way quantum computing
- Quantum random number generation on a mobile phone
- Optimal Blind Quantum Computation
- Efficient universal blind computation
- One-way quantum computation with two-photon multiqubit cluster states
- Experimental characterization of universal one-way quantum computing
- Practical and efficient experimental characterization of multiqubit stabilizer states
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- Quantum information processing with superconducting circuits: a review
- Photonic quantum information processing: a review
- Photonic quantum information processing: a concise review
- Verification of quantum computation: An overview of existing approaches
- Experimental Verification of Multipartite Entanglement in Quantum Networks
- Experimental Blind Quantum Computing for a Classical Client
- Post hoc verification with a single prover
- Post hoc verification of quantum computation
- Implementation vulnerabilities in general quantum cryptography
- Self-guaranteed measurement-based quantum computation
- Verifiable blind quantum computing with trapped ions and single photons
- Quantum NETwork: from theory to practice
- Securing Quantum Computations in the NISQ Era
- Experimental demonstration of secure quantum remote sensing
- Measurement-only verifiable blind quantum computing with quantum input verification
- Quantum remote sensing with asymmetric information gain
- Multi-client distributed blind quantum computation with the Qline architecture
- Experimental preparation and verification of quantum money
- Remote blind state preparation with weak coherent pulses in the field
- Flow Ambiguity: A Path Towards Classically Driven Blind Quantum Computation
- Robust and efficient verification of graph states in blind measurement-based quantum computation
- Quantum remote sensing under the effect of dephasing
- Identification of networking quantum teleportation on 14-qubit IBM universal quantum computer
- Quantum cryptography beyond key distribution: theory and experiment
- Probabilistic one-time programs using quantum entanglement
- A Hybrid and Universal Blind Quantum Computation
- Deploying hybrid quantum-secured infrastructure for applications: When quantum and post-quantum can work together
- Experimental verifiable multi-client blind quantum computing on a Qline architecture
- Client-friendly continuous-variable blind and verifiable quantum computing
- Variational secure cloud quantum computing
- Universal Single-Server Blind Quantum Computation for Classical Clients
- Hardware requirements for trapped-ion based verifiable blind quantum computing with a measurement-only client
- An integrated cryogenic optical modulator
- Blind Oracular Quantum Computation
- Experimental characterization of a non-local convertor for quantum photonic networks
- Anonymous estimation of intensity distribution of magnetic fields with quantum sensing network
- Information-theoretically-sound non-interactive classical verification of quantum computing with trusted center
- Towards practical secure delegated quantum computing with semi-classical light
- Impossibility of blind quantum sampling for classical client
- Blind quantum computing can always be made verifiable
- Gate Teleportation-based Universal Blind Quantum Computation
- Optical Quantum Computing
- Unifying communication paradigms in measurement-based delegated quantum computing
- Blind quantum computing with different qudit resource state architectures
- The QTF-Backbone: Proposal for a Nationwide Optical Fibre Backbone in Germany for Quantum Technology and Time and Frequency Metrology