Universal Blind Quantum Computing with Weak Coherent Pulses
arXiv:1108.5571 · doi:10.1103/PhysRevLett.108.200502
Abstract
The recently proposed Universal Blind Quantum Computation (UBQC) protocol allows a client to perform an arbitrary quantum computation on a remote server such that perfect privacy is guaranteed if the client is capable of producing random separable single qubit states. While from a theoretical point of view, this arguably constitutes the lowest possible quantum requirement, from a pragmatic point of view, generation of random single qubits which can be sent along long distances without loss is quite challenging and can never be achieved perfectly. In analogy to the concept of approximate security developed for other cryptographic protocols, we introduce here the concept of approximate blindness for UBQC, allowing us to characterize the robustness of the protocol to possible imperfections. Following this, we present a remote blind single qubit preparation protocol, by which a client with access to realistic quantum devices (such as coherent laser light) can in a delegated fashion prepare quantum states arbitrarily close to perfect random single qubit states. We finally prove that access to coherent states is sufficient to efficiently achieve approximate blindness with arbitrary small security parameter.
16 pages, 1 figure
References in corpus (6)
- Topological fault-tolerance in cluster state quantum computation
- Progressive field-state collapse and quantum non-demolition photon counting
- Experimental Demonstration of Blind Quantum Computing
- Cryptography from Noisy Storage
- Generalized Flow and Determinism in Measurement-based Quantum Computation
- Composability in quantum cryptography
Cited by in corpus (56)
- Secure quantum key distribution with realistic devices
- Photonic quantum information processing: a review
- Unconditionally verifiable blind computation
- Measurement-device-independent quantum key distribution over untrustful metropolitan network
- Verifiable measurement-only blind quantum computing with stabilizer testing
- Blind quantum computation protocol in which Alice only makes measurements
- Experimental verification of quantum computations
- Blind topological measurement-based quantum computation
- Discrete-phase-randomized coherent state source and its application in quantum key distribution
- Experimental Blind Quantum Computing for a Classical Client
- Experimental quantum key distribution with source flaws
- Quantum walks with encrypted data
- Efficient universal blind computation
- Demonstration of measurement-only blind quantum computing
- Composable security of delegated quantum computation
- Effect of source tampering in the security of quantum cryptography
- Ancilla-Driven Universal Blind Quantum Computation
- Secure entanglement distillation for double-server blind quantum computation
- Continuous-variable blind quantum computation
- Multiparty Delegated Quantum Computing
- Blind quantum computation with noise environment
- Practical quantum computing on encrypted data
- Semiquantum key distribution with secure delegated quantum computation
- Blind quantum computation over a collective-noise channel
- Measurement-device-independent quantum communication with an untrusted source
- Measurement-only verifiable blind quantum computing with quantum input verification
- QFactory: classically-instructed remote secret qubits preparation
- Requirements for a processing-node quantum repeater on a real-world fiber grid
- Multi-client distributed blind quantum computation with the Qline architecture
- Fault-tolerant Operations for Universal Blind Quantum Computation
- Security of quantum key distribution with imperfect phase randomisation
- Remote blind state preparation with weak coherent pulses in the field
- Flow Ambiguity: A Path Towards Classically Driven Blind Quantum Computation
- Acausal measurement-based quantum computing
- Blind quantum computation for a user who only performs single-qubit gates
- Quantum cryptography beyond key distribution: theory and experiment
- Security Limitations of Classical-Client Delegated Quantum Computing
- Deploying hybrid quantum-secured infrastructure for applications: When quantum and post-quantum can work together
- Client-friendly continuous-variable blind and verifiable quantum computing
- Measurement-based universal blind quantum computation with minor resources
- Rigorous calibration method for photon-number statistics
- Blind quantum computation with a heralded single photon source
- Verified Delegated Quantum Computing with One Pure Qubit
- Trusted center verification model and classical channel remote state preparation
- Lattice-Based Quantum Advantage from Rotated Measurements
- Testing honesty of quantum server
- Tripartite Blind Quantum Computation
- A Remote Quantum Error-correcting Code Preparation Protocol on Cluster State
- Quantum-secure multiparty deep learning
- Towards practical secure delegated quantum computing with semi-classical light
- Blind quantum computing can always be made verifiable
- Impossibility of blind quantum sampling for classical client
- Measurement-based quantum computation cannot avoid byproducts
- Gate Teleportation-based Universal Blind Quantum Computation
- Blind quantum computing with different qudit resource state architectures
- Optical Quantum Computing