Provably-secure quantum randomness expansion with uncharacterised homodyne detection
arXiv:2206.03660 · doi:10.1038/s41467-022-35556-z
Abstract
Quantum random number generators (QRNGs) are able to generate numbers that are certifiably random, even to an agent who holds some side-information. Such systems typically require that the elements being used are precisely calibrated and validly certified for a credible security analysis. However, this can be experimentally challenging and result in potential side-channels which could compromise the security of the QRNG. In this work, we propose, design and experimentally demonstrate a QRNG protocol that completely removes the calibration requirement for the measurement device. Moreover, our protocol is secure against quantum side-information. We also take into account the finite-size effects and remove the independent and identically distributed requirement for the measurement side. More importantly, our QRNG scheme features a simple implementation which uses only standard optical components and are readily implementable on integrated-photonic platforms. To validate the feasibility and practicability of the protocol, we set up a fibre-optical experimental system with a home-made homodyne detector with an effective efficiency of 91.7% at 1550nm. The system works at a rate of 2.5MHz, and obtains a net randomness expansion rate of 4.98kbits/s at 1E10 rounds. Our results pave the way for an integrated QRNG with self-testing feature and provable security.
This is a preliminary draft, comments and suggestions are welcomed!
References in corpus (20)
- Photonic quantum technologies
- A convergent hierarchy of semidefinite programs characterizing the set of quantum correlations
- Bounding the set of quantum correlations
- Security in Quantum Cryptography
- Leftover Hashing Against Quantum Side Information
- Certified randomness in quantum physics
- Real time demonstration of high bitrate quantum random number generation with coherent laser light
- High speed self-testing quantum random number generation without detection loophole
- Composability in quantum cryptography
- Maximization of Extractable Randomness in a Quantum Random-Number Generator
- 9~GHz measurement of squeezed light by interfacing silicon photonics and integrated electronics
- 18.8 Gbps real-time quantum random number generator with a photonic integrated chip
- Experimental measurement-device-independent quantum random number generation
- Security of quantum key distribution from generalised entropy accumulation
- Device-Independent Randomness Generation in the Presence of Weak Cross-Talk
- Practical Semi-Device Independent Randomness Generation Based on Quantum State's Indistinguishability
- Simple source device-independent continuous-variable quantum random number generator
- Generalised entropy accumulation
- Fast self-testing Quantum Random Number Generator based on homodyne detection
- Semi-device independent randomness from d-outcome continuous-variable detection
Cited by in corpus (12)
- Semidefinite programming relaxations for quantum correlations
- Experimental certification of more than one bit of quantum randomness in the two inputs and two outputs scenario
- Generalized measurements on qubits in quantum randomness certification and expansion
- Improving semi-device-independent randomness certification by entropy accumulation
- Sampled sub-block hashing for large input randomness extraction
- Fully passive quantum random number generation with untrusted light
- Randomness in quantum random number generator from vacuum fluctuations with source-device-independence
- Device-independent Shannon entropy certification
- Highly integrated broadband entropy source for quantum random number generators based on vacuum fluctuations
- Semi-device-independent randomness certification on discretized continuous-variable platforms
- Quantum Random Number Generation with Partial Source Assumptions
- Sequential Semi-Device-Independent Quantum Randomness Certification