Experimental quantum homomorphic encryption

Bibliographic Details
Title: Experimental quantum homomorphic encryption
Authors: Jonas Zeuner, Ioannis Pitsios, Si-Hui Tan, Aditya N. Sharma, Joseph F. Fitzsimons, Roberto Osellame, Philip Walther
Source: npj Quantum Information, Vol 7, Iss 1, Pp 1-6 (2021)
Publisher Information: Nature Portfolio, 2021.
Publication Year: 2021
Collection: LCC:Physics
LCC:Electronic computers. Computer science
Subject Terms: Physics, QC1-999, Electronic computers. Computer science, QA75.5-76.95
More Details: Abstract Quantum computers promise not only to outperform classical machines for certain important tasks, but also to preserve privacy of computation. For example, the blind quantum computing protocol enables secure delegated quantum computation, where a client can protect the privacy of their data and algorithms from a quantum server assigned to run the computation. However, this security comes with the practical limitation that the client and server must communicate after each step of computation. A practical alternative is homomorphic encryption, which does not require any interactions, while providing quantum-enhanced data security for a variety of computations. In this scenario, the server specifies the computation to be performed, and the client provides only the input data, thus enabling secure noninteractive computation. Here, we demonstrate homomorphic-encrypted quantum computing with unitary transformations of individual qubits, as well as multi-qubit quantum walk computations using single-photon states and non-birefringent integrated optics. The client encrypts their input in the photons’ polarization state, while the server performs the computation using the path degree of freedom. Our demonstration using integrated quantum photonics underlines the applicability of homomorphic-encrypted quantum computations, and shows the potential for delegated quantum computing using photons.
Document Type: article
File Description: electronic resource
Language: English
ISSN: 2056-6387
Relation: https://doaj.org/toc/2056-6387
DOI: 10.1038/s41534-020-00340-8
Access URL: https://doaj.org/article/76e214f3bab74d25809e88233c1db4ae
Accession Number: edsdoj.76e214f3bab74d25809e88233c1db4ae
Database: Directory of Open Access Journals
More Details
ISSN:20566387
DOI:10.1038/s41534-020-00340-8
Published in:npj Quantum Information
Language:English