Quantum Fingerprinting with Coherent States and a Constant Mean Number of Photons
arXiv:1309.5005 · doi:10.1103/PhysRevA.89.062305
Abstract
We present a protocol for quantum fingerprinting that is ready to be implemented with current technology and is robust to experimental errors. The basis of our scheme is an implementation of the signal states in terms of a coherent state in a superposition of time-bin modes. Experimentally, this requires only the ability to prepare coherent states of low amplitude, and to interfere them in a balanced beam splitter. The states used in the protocol are arbitrarily close in trace distance to states of qubits, thus exhibiting an exponential separation in communication complexity compared to the classical case. The protocol uses a number of optical modes that is proportional to the size of the input bit-strings, but a total mean photon number that is constant and independent of . Given the expended resources, our protocol achieves a task that is provably impossible using classical communication only. In fact, even in the presence of realistic experimental errors and loss, we show that there exist a large range of input sizes for which our quantum protocol requires communication that can be more than two orders of magnitude smaller than a classical fingerprinting protocol.
5 pages, 2 Figures
References in corpus (6)
- Detecting Single Infrared Photons with 93% System Efficiency
- Real-world two-photon interference and proof-of-principle quantum key distribution immune to detector attacks
- The SWAP test and the Hong-Ou-Mandel effect are equivalent
- Quantum Digital Signatures without quantum memory
- Experimental demonstration of quantum digital signatures using phase-encoded coherent states of light
- Experimental quantum "Guess my Number" protocol using multiphoton entanglement
Cited by in corpus (38)
- 600 km repeater-like quantum communications with dual-band stabilisation
- Long-Distance Measurement-Device-Independent Multiparty Quantum Communication
- Experimental Quantum Switching for Exponentially Superior Quantum Communication Complexity
- Experimental demonstration of high-rate measurement-device-independent quantum key distribution over asymmetric channels
- Experimental Quantum Fingerprinting
- Observation of quantum fingerprinting beating the classical limit
- Quantum Communication with Coherent States and Linear Optics
- Unconditionally Secure Quantum Signatures
- Measurement-device-independent quantum communication with an untrusted source
- Secure Quantum Secret Sharing without Signal Disturbance Monitoring
- Experimental quantum advantage with quantum coupon collector
- Hong-Ou-Mandel interference between independent III-V on silicon waveguide integrated lasers
- Experimental two-way communication with one photon
- Quantum money with nearly optimal error tolerance
- Experimental preparation and verification of quantum money
- Efficient quantum communications with multiplexed coherent state fingerprints
- Experimental demonstration of quantum advantage for one-way communication complexity
- Experimental demonstration of quantum advantage for NP verification with limited information
- Quantum cryptography beyond key distribution: theory and experiment
- Practical Quantum Retrieval Games
- Faithful quantum teleportation via a nanophotonic nonlinear Bell state analyzer
- Secret key expansion from covert communication
- Quantum superiority for verifying NP-complete problems with linear optics
- Quantum fingerprinting using two-photon interference
- Efficient experimental quantum fingerprinting with wavelength division multiplexing
- Visibility-based hypothesis testing using higher-order optical interference
- Quantum sketching protocols for Hamming distance and beyond
- Families of Quantum Fingerprinting Protocols
- Practical Quantum Appointment Scheduling
- Characterization of Gram matrices of multimode coherent states
- Quantum Fingerprinting over AWGN Channels with Power-Limited Optical Signals
- Implementation of a simultaneous message passing protocol using optical vortices
- Optical quantum communication complexity in the simultaneous message passing model
- Towards Photon-Number-Encoded High-dimensional Entanglement from a Sequentially Excited Quantum Three-Level System
- On decomposable correlation matrices
- Optimal single-shot discrimination of optical modes
- General theory of quantum fingerprinting network
- Multi-party quantum fingerprinting with weak coherent pulses: circuit design and protocol analysis