4.5 Article

A Secure Multiparty Quantum Homomorphic Encryption Scheme

期刊

CMC-COMPUTERS MATERIALS & CONTINUA
卷 73, 期 2, 页码 2835-2848

出版社

TECH SCIENCE PRESS
DOI: 10.32604/cmc.2022.029125

关键词

Quantum homomorphic encryption; secure multiparty computation; almost dishonest server; security

资金

  1. Open Fund of Advanced Cryptography and System Security Key Laboratory of Sichuan Province [SKLACSS-202101]
  2. NSFC [62176273, 61962009]
  3. Foundation of Guizhou Provincial Key Laboratory of Public Big Data [2019BDKFJJ010, 2019BDKFJJ014]
  4. Fundamental Re-search Funds for Beijing Municipal Commission of Education
  5. Natural Science Foundation of Inner Mongolia [2021MS06006]
  6. Baotou Kundulun District Science and technology plan project [YF2020013]
  7. Inner Mongolia discipline inspection and supervision big data laboratory open project fund [IMDBD2020020]
  8. Beijing Urban Governance Re-search Base of North China University of Technology

向作者/读者索取更多资源

This paper proposes a novel secure multiparty quantum homomorphic encryption scheme that can complete arbitrary quantum computations on private data of multiple clients without decryption. The scheme utilizes quantum key distribution protocols and non-maximally entangled states to achieve secure homomorphic evaluation.
The significant advantage of the quantum homomorphic encryption scheme is to ensure the perfect security of quantum private data. In this paper, a novel secure multiparty quantum homomorphic encryption scheme is proposed, which can complete arbitrary quantum computation on the private data of multiple clients without decryption by an almost dishonest server. Firstly, each client obtains a secure encryption key through the measurement device independent quantum key distribution protocol and encrypts the private data by using the encryption operator and key. Secondly, with the help of the almost dishonest server, the non-maximally entangled states are pre shared between the client and the server to correct errors in the homomorphic evaluation of T gates, so as to realize universal quantum circuit evaluation on encrypted data. Thirdly, from the perspective of the application scenario of secure multi-party computation, this work is based on the probabilistic quantum homomorphic encryption scheme, allowing multiple parties to delegate the server to perform the secure homomorphic evaluation. The operation and the permission to access the data performed by the client and the server are clearly pointed out. Finally, a concrete security analysis shows that the proposed multiparty quantum homomorphic encryption scheme can securely resist outside and inside attacks.

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