Tang Yongli, Guo Menghao, Li Binyong, Geng Kaixin, Yu Jinxia, Qin Baodong
School of Software, Henan Polytechnic University, Jiaozuo 454000, China.
School of Computer Science and Technology, Henan Polytechnic University, Jiaozuo 454003, China.
Entropy (Basel). 2024 Dec 26;27(1):7. doi: 10.3390/e27010007.
Currently, most quantum homomorphic encryption (QHE) schemes only allow a single evaluator (server) to accomplish computation tasks on encrypted data shared by the data owner (user). In addition, the quantum computing capability of the evaluator and the scope of quantum computation it can perform are usually somewhat limited, which significantly reduces the flexibility of the scheme in quantum network environments. In this paper, we propose a novel (t,n)-threshold QHE (TQHE) network scheme based on the Shamir secret sharing protocol, which allows k(t≤k≤n) evaluators to collaboratively perform evaluation computation operations on each qubit within the shared encrypted sequence. Moreover, each evaluator, while possessing the ability to perform all single-qubit unitary operations, is able to perform arbitrary single-qubit gate computation task assigned by the data owner. We give a specific (3, 5)-threshold example, illustrating the scheme's correctness and feasibility, and simulate it on IBM quantum computing cloud platform. Finally, it is shown that the scheme is secure by analyzing encryption/decryption private keys, ciphertext quantum state sequences during transmission, plaintext quantum state sequence, and the result after computations on the plaintext quantum state sequence.
目前,大多数量子同态加密(QHE)方案仅允许单个评估者(服务器)对数据所有者(用户)共享的加密数据完成计算任务。此外,评估者的量子计算能力及其可执行的量子计算范围通常在一定程度上受到限制,这在量子网络环境中显著降低了该方案的灵活性。在本文中,我们基于 Shamir 秘密共享协议提出了一种新颖的(t,n)-阈值 QHE(TQHE)网络方案,该方案允许 k(t≤k≤n)个评估者对共享加密序列中的每个量子比特协同执行评估计算操作。此外,每个评估者在具备执行所有单量子比特酉操作能力的同时,还能够执行数据所有者分配的任意单量子比特门计算任务。我们给出了一个具体的(3,5)-阈值示例,说明了该方案的正确性和可行性,并在 IBM 量子计算云平台上对其进行了模拟。最后,通过分析加密/解密私钥、传输过程中的密文量子态序列、明文量子态序列以及对明文量子态序列进行计算后的结果,表明该方案是安全的。