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首页> 外文期刊>Journal of signal processing systems for signal, image, and video technology >An Ultra-Highly Parallel Polynomial Multiplier for the Bootstrapping Algorithm in a Fully Homomorphic Encryption Scheme
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An Ultra-Highly Parallel Polynomial Multiplier for the Bootstrapping Algorithm in a Fully Homomorphic Encryption Scheme

机译:用于全同态加密方案中的引导算法的超高度平行多项式乘法

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摘要

Fully homomorphic encryption (FHE) is a post-quantum secure cryptographic technology that enables privacy-preserving computing on an untrusted platform without divulging any secret or sensitive information. The core of FHE is the bootstrapping algorithm, which is the intermediate refreshing procedure of a processed ciphertext. However, this step has been the computational bottleneck that prevents real-world deployments among various FHE schemes. This paper, to the best of our knowledge, for the first time, presents a scalable and ultra-highly parallel design for the number theoretic transform (NTT)-based polynomial multiplier with a variable number of reconfigurable processing elements (PEs). Hence, the highest degree of acceleration can be achieved for any targeted hardware platform by implementing as many PEs as possible under the resource constraint. The corresponding addressing and scheduling schemes are also proposed to avoid memory access conflict for the PEs, which yields an extremely high utilization ratio of 99.18% on average. In addition, the latency of the proposed design with the general negative wrapped convolution algorithm is reduced by 59.20% compared to prior works.
机译:完全同性恋加密(FHE)是一种后级安全加密技术,可以在不受信任的平台上保留隐私计算,而不泄露任何秘密或敏感信息。 FHE的核心是引导算法,它是已加工密文的中间刷新过程。但是,这一步骤是计算瓶颈,可防止各种FHE方案中的实际部署。本文首次呈现了我们最佳知识,为具有可变数量的可重新配置的处理元件(PE)的数字定理变换(NTT)的多项式乘法器提供了可扩展和超强平行的设计。因此,通过在资源约束下实现尽可能多的PES,可以对任何目标硬件平台实现最高的加速度。还提出了相应的寻址和调度方案以避免PE的内存访问冲突,其平均产生99.18%的极高利用率。此外,与先前的作品相比,具有一般负包卷积算法的提出设计的潜伏期减少了59.20%。

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