Certifying the dimension of classical and quantum systems in a prepare-and-measure scenario with independent devices
arXiv:1311.1525 · doi:10.1103/PhysRevLett.112.140407
Abstract
We consider the problem of testing the dimension of uncharacterised classical and quantum systems in a prepare-and-measure setup. Here we assume the preparation and measurement devices to be independent, thereby making the problem non-convex. We present a simple method for generating nonlinear dimension witnesses for systems of arbitrary dimension. The simplest of our witnesses is highly robust to technical imperfections, and can certify the use of qubits in the presence of arbitrary noise and arbitrarily low detection efficiency. Finally, we show that this witness can be used to certify the presence of randomness, suggesting applications in quantum information processing.
References in corpus (8)
- Testing the Hilbert space dimension
- Device-independent tests of classical and quantum dimensions
- Semi-device-independent security of one-way quantum key distribution
- Beyond Bell's Theorem: Correlation Scenarios
- A lower bound on the dimension of a quantum system given measured data
- Unbounded violation of tripartite Bell inequalities
- Dimension witnesses and quantum state discrimination
- Efficiency of higher dimensional Hilbert spaces for the violation of Bell inequalities
Cited by in corpus (76)
- Quantum Random Number Generators
- Quantum random number generation
- Self-testing of quantum systems: a review
- Certified randomness in quantum physics
- A self-testing quantum random number generator
- MHz-rate semi-device-independent quantum random number generators based on unambiguous state discrimination
- Optimal randomness certification in the quantum steering and prepare-and-measure scenarios
- Semi-device-independent framework based on natural physical assumptions
- A Comprehensive Review of Quantum Random Number Generators: Concepts, Classification and the Origin of Randomness
- Bounding the set of finite dimensional quantum correlations
- Characterising the correlations of prepare-and-measure quantum networks
- Quantum cryptography: key distribution and beyond
- Semidefinite programming relaxations for quantum correlations
- Identifying Nonconvexity in the Sets of Limited-Dimension Quantum Correlations
- Causal modeling the delayed choice experiment
- Certifying an irreducible 1024-dimensional photonic state using refined dimension witnesses
- Super-Activation of Quantum Steering
- Activating hidden metrological usefulness
- Testing dimension and non-classicality in communication networks
- Device-independent certification of Hilbert space dimension using a family of Bell expressions
- Semi-device-independent certification of independent quantum state and measurement devices
- Device independent certification of a quantum delayed choice experiment
- Self-testing of any pure entangled state with minimal number of measurements and optimal randomness certification in one-sided device-independent scenario
- A new device-independent dimension witness and its experimental implementation
- Sharing nonlocality in quantum network by unbounded sequential observers
- Realization of a causal-modeled delayed-choice experiment using single photons
- Genuine temporal correlations can certify the quantum dimension
- Classical Cost of Transmitting a Qubit
- A loophole-free Wheeler-delayed-choice experiment
- Shared randomness and device-independent dimension witnessing
- Detection efficiency and noise in semi-device independent randomness extraction protocol
- Device-independent dimension tests in the prepare-and-measure scenario
- Classical model of delayed-choice quantum eraser
- Semi-device-independent characterization of quantum measurements under a minimum overlap assumption
- General Method for Classicality Certification in the Prepare and Measure Scenario
- Practical randomness amplification and privatisation with implementations on quantum computers
- Communication tasks in operational theories
- Sharing preparation contextuality in Bell experiment by arbitrary pair of sequential observers
- Practical quantum key distribution with non-phase-randomized coherent states
- Certified Randomness from Remote State Preparation Dimension Witness
- Semi device independence of the BB84 protocol
- Macroscopic delayed-choice and retrocausality: quantum eraser, Leggett-Garg and dimension witness tests with cat states
- Beating detection loophole in nonlinear entanglement witnesses
- More randomness from a prepare-and-measure scenario with independent devices
- A general bound for the dimension of quantum behaviours in the prepare-and-measure scenario
- Certification of three black boxes with unsharp measurements using sequential quantum random access codes
- Structure of dimension-bounded temporal correlations
- Interplays between classical and quantum entanglement-assisted communication scenarios
- Contextuality without access to a tomographically complete set
- Evidence-based certification of quantum dimensions
- Optimal classical and quantum real and complex dimension witness
- Generalized measurements on qubits in quantum randomness certification and expansion
- Biased Random Access Codes
- Precise certification of a qubit space
- Testing accuracy of qubit rotations on a public quantum computer
- Modified quantum delayed-choice experiment without quantum control
- Semi-device-independent certification of quantum non-Markovianity using sequential Random Access Codes
- An unconditional experimental test of Nonclassicality
- Theory-independent randomness generation from spatial symmetries
- Towards minimal self-testing of qubit states and measurements in prepare-and-measure scenarios
- Certifying quantumness beyond steering and nonlocality and its implications on quantum information processing
- Quantum Discord Witness With Uncharacterized Devices
- Experimental Device-Independent Tests of Classical and Quantum Entropy
- Characterizing high-dimensional quantum contextuality
- The role of entanglement in energy-restricted communication and randomness generation
- Detection Efficiency Bounds in (Semi-)Device-Independent Scenarios
- Quantum dimension witness with a single repeated operation
- Quantum null-hypothesis device-independent Schmidt rank witness
- Null dimension witness based on single measurements
- Semi-device-independent randomness certification on discretized continuous-variable platforms
- Experimental certification of ensembles of high-dimensional quantum states with independent quantum devices
- Dimensionality Distinguishers
- Measurement-device-independent nonlinear entanglement witnesses
- Cross-platform certification of the qubit space with a minimal number of parameters
- Interplay between Quantumness, Randomness, and Selftesting
- Device-independent dimension leakage null test on qubits at low operational cost