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Design feasibility study for a 500 Gbits/s advanced encryption standard cipher/decipher engine

机译:500 Gbit / s高级加密标准密码/解密引擎的设计可行性研究

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A feasibility study for implementing the advanced encryption standard (AES) encryption algorithm in hardware achieving 500 Gbits/s is presented. Iterative processing cores are used to achieve the 500 Gbits/s. The throughput of the iterative cores is enhanced by processing four different flows of data in parallel. This does not increase the latency which is highly beneficial in the context of block cipher modes. The iterative core field-programmable gate array (FPGA) synthesis results in a throughput of 4.9 Gbits/s for an area of 6310 look-up tables (LUTs) outperforming several other contributions results. Several instances of the iterative processor are compared with pipelined architectures. The results have shown that for most implementations the group of iterative processors also outperforms pipelined architectures. The methodology followed in the process of obtaining the solution allowed us to reach a highly regular solution. The obtained architecture is highly modular and scalable. The key schedule generation is decoupled from the cipher/decipher engine. Block cipher mode datapath design is presented. The task of scheduling the different flows onto different iterative cores is realised through the use of a distributed scheduling architecture that implements a de-facto load balancing.
机译:提出了在硬件中实现500 Gbits / s的高级加密标准(AES)加密算法的可行性研究。迭代处理核心用于达到500 Gbit / s。通过并行处理四个不同的数据流,可以提高迭代核心的吞吐量。这不会增加等待时间,这在分组密码模式的上下文中是非常有益的。迭代的核心现场可编程门阵列(FPGA)综合对于6310个查找表(LUT)区域的吞吐量为4.9 Gbit / s,胜过其他一些贡献结果。将迭代处理器的几个实例与流水线体系结构进行了比较。结果表明,对于大多数实现,迭代处理器组也优于流水线架构。获取解决方案过程中遵循的方法论使我们能够达成高度常规的解决方案。所获得的体系结构具有高度的模块化和可扩展性。密钥调度生成与密码/解密引擎分离。提出了分组密码模式数据路径设计。通过使用实现实际负载平衡的分布式调度体系结构,可以实现将不同流调度到不同迭代核心上的任务。

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  • 来源
    《Computers & Digital Techniques, IET》 |2010年第4期|P.334-348|共15页
  • 作者

    Bouhraoua A.;

  • 作者单位

    King Fahd University of Petroleum and Minerals, Dhahran, Saudi Arabia;

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