自旋反转量子退火的同态加密

D. O’Malley, John K. Golden
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引用次数: 0

摘要

同态加密在经典计算领域已经研究了几十年。同态加密的基本目标是使(不受信任的)Oscar能够为Alice执行计算,而Oscar不知道计算的输入或计算的输出。Alice在将输入发送给Oscar之前对其进行加密,Oscar直接对加密的数据执行计算,产生加密的结果。奥斯卡然后将加密的计算结果发送回爱丽丝,爱丽丝可以对其进行解密。我们描述了一种基于自旋反转变换的量子退火的同态加密方法,并表明它几乎没有性能损失。这与用于经典计算的同态加密方法形成对比,后者会产生大量额外的计算成本。这意味着当量子退火和经典计算都使用同态加密时,两者之间的性能差距会减小。此外,同态加密对量子退火至关重要,因为量子退火是云原生的——第三方(如不受信任的Oscar)执行计算。如果敏感信息,如受《健康保险流通与责任法案》约束的健康相关数据,要用量子退火器处理,这种技术可能是有用的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Homomorphic Encryption for Quantum Annealing with Spin Reversal Transformations
Homomorphic encryption has been an area of study in classical computing for decades. The fundamental goal of homomorphic encryption is to enable (untrusted) Oscar to perform a computation for Alice without Oscar knowing the input to the computation or the output from the computation. Alice encrypts the input before sending it to Oscar, and Oscar performs the computation directly on the encrypted data, producing an encrypted result. Oscar then sends the encrypted result of the computation back to Alice, who can decrypt it. We describe an approach to homomorphic encryption for quantum annealing based on spin reversal transformations and show that it comes with little or no performance penalty. This is in contrast to approaches to homomorphic encryption for classical computing, which incur a significant additional computational cost. This implies that the performance gap between quantum annealing and classical computing is reduced when both paradigms use homomorphic encryption. Further, homomorphic encryption is critical for quantum annealing because quantum annealers are native to the cloud - a third party (such as untrusted Oscar) performs the computation. If sensitive information, such as health-related data subject to the Health Insurance Portability and Accountability Act, is to be processed with quantum annealers, such a technique could be useful.
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